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Die Bedeutung des Zwei-Partner-Sekretionssystems für die Adhärenz von Meningokokken an Epithelzellen
(2009)
Das two-partner secretion-system (TPS-System) ist ein unter Gram-negativen Bakterien weit verbreiteter Weg der Proteinsekretion. Die als TpsA bezeichneten Exoproteine des TPS Systems benötigen ein spezifisches Partnerprotein (genannt TpsB) in Form eines kanalbildenden Transporters. Im sequenzierten Genom des Meningokokkenstammes MC58 finden sich fünf putative tpsA Gene, die als hemagglutinin/hemolysin-related protein (hrps) bezeichnete werden. Neben MC58 finden sich auch in den anderen sequenzierten Meningokokkenstämmen (FAM18, Z2491, alpha14) hrps. Diese weisen N-terminal Homologien zum filamentösen Hämagglutinin (FHA) von B. pertussis auf, das als TpsA-Protein des two-partner-secretion-system (TPS) aus der Zelle transportiert wird. In dieser Arbeit werden die hrps als hrpA Gene bzw. HrpA-Proteine bezeichnet. Alle sequenzierten Meningokokkenstämme verfügen über tpsB homologe Gene (hrpB), die jeweils in enger Nachbarschaft zu den hrpA Genen zu finden sind. Das Vorhandensein von hrpA und hrpB Genen deutet darauf hin, dass auch Meningokokken über ein funktionales TPS-System verfügen. Bei einer Dot-Blot-Analyse von 830 Meningokokkenstämmen aus einer bayerischen Trägerstudie mit Sonden spezifisch für die C-terminalen Bereiche der im Stamm MC58 gefundenen hrpA Gene hybridisierten 80% der ausgewerteten Stämme mit mindestens einer der Sonden. Stämme der hypervirulenten klonalen Komplexen (ST-8, ST-11, ST32, ST-44) zeigten sogar in über 99% eine positive Reaktion. Dagegen wiesen die nicht-hypervirulenten klonalen Komplexe zu 29% im Dot Blot kein hrpA auf, das homolog zu den hrpA Genen von Stamm MC58 ist, wobei es sich hierbei mehrheitlich (82%) um cnl Stämme handelte, so dass sich nur in 10% der untersuchten Kapsel-null-locus-Stämme (cnl) ein zu den hrpA Genen von MC58 homologes Gen nachweisen ließ. Mit der Hypothese, dass auch diese Stämme ein hrpA besitzen, welches sich im C-terimalen Anteil von denen des MC58 unterscheidet wurden in dieser Arbeit Dot Blots durchgeführt, deren Sonde spezifisch für das hrpB NMC0443 war. 97,6% der mit dieser Sonde untersuchten Stämme zeigten die Anwesenheit eines hrpB Homologs. Um die Vermutung zu bestätigen, dass allen hrpB Genen ein zugehöriges hrpA Gen benachbart liegt, wurden repräsentativ PCRs von häufigen klonalen Komplexen durchgeführt. Dabei konnte gezeigt werden, dass ein TPS-System sowohl in den hypervirulenten als auch den nicht-hypervirulenten klonalen Komplexen der Meningokokken vorkommt. Die vielfältigen Funktionen von bereits untersuchten TpsA Proteinen sind zumeist mit der Pathogenität der Bakterien assoziiert. In dieser Arbeit wurde ein möglicher Einfluss der HrpA Proteine auf die Adhäsion der Bakterien an humane Zellen untersucht. Es konnte gezeigt werden, dass sowohl eine kapsellose, als auch eine kapsellose, LPS-trunkierte hrpA Deletionsmutante signifikant schlechter an Epithelzellen adhäriert als die parentalen Vergleichsstämme. Ebenso zeigten die analog durchgeführten Infektionsversuche mit der hrpB Deletionsmutante einen Adhärenzverlust, der jedoch nur für die unbekapselte und LPS trunkierte hrpB Deletionsmutante signifikant war. In dieser Arbeit ist es gelungen das HrpB Protein des Stammes 2120 in E. coli zu exprimieren und aufzureinigen, sodass die Entwicklung eines gegen HrpB gerichteten Antikörpers in Auftrag gegeben werden konnte. Mit Hilfe dieses Antikörpers sollen noch offene Fragen zur Synthese und dem Transport des HrpB Transportproteins beantwortet werden. Außerdem können weitere Untersuchungen zur Lage und Verteilung der HrpBs in der Meningokokkenmembran dazu beitragen, weiteren Aufschluss über die Komplexität von Pathogenität und Virulenz von N. meningitidis zu geben.
Parodontitis ist eine Erkrankung des Zahnhalteapparates, die durch einen komplexen bakteriellen Biofilm unterhalten wird. Neben Mikroorganismen wie A. actinomycetemcomitans, P. gingivalis, T. denticola und T. forsythensis werden Keime unbekannter Spezies in parodontalen Taschen ausfindig gemacht. Durch die Entschlüsselung von 16S rRNA-Gensequenzen konnte die orale Flora nahezu vollständig katalogisiert werden. Allerdings fehlen bei vielen Phylotypen die entsprechenden Typstämme für weitergehende phänotypische Analysen. Grundlage dieser Arbeit bildeten 59 Patientenisolate der Parodontitis-Stammsammlung des Instituts für Hygiene und Mikrobiologie bei denen partielle 16S rRNA Sequenzen keine Spezieszuordnung ermöglichten. Nahezu vollständige 16S rRNA-Sequenzen wurden erstellt und mit Datenbankeinträgen verglichen. Bei mehr als der Hälfte der Stämme konnte keine taxonomische Zuordnung auf Sequenzierebene getroffen werden. 43 Isolate wuchsen unter aerober Atmosphäre, 16 benötigten eine anaerobe Umgebung. Alle Kulturmorphologien und nach Gram gefärbten mikroskopischen Präparate wurden fotografisch dokumentiert und katalogisiert. Die hier untersuchten Stämme, die zufällig auf der Basis taxonomischer Fragestellungen ausgewählt wurden, waren zum überwiegenden Teil auf Amoxicillin und Metronidazol empfindlich. Diese Antibiotika finden alle ihre Verwendung bei der Parodontitistherapie. Ciprofloxacin, das wegen seiner intrazellulären Wirkung ein interessantes Agens ist, wies v.a. bei Actinomyceten und Streptokokken Wirkungslücken auf. Es bleibt zu diskutieren, ob dieser Umstand nachteilig ist, da auf der einen Seite diese Genera ein orales Reservoir für Gyrasehemmer-Resistenzen ausbilden können, auf der anderen Seite diese grampositiven Keime möglicherweise parodontalprotektiv wirken könnten. In dieser Studie konnte eine Stammsammlung charakterisiert werden, die zukünftig insbesondere angesichts der zu erwartenden Entschlüsselung des oralen Metagenoms für weitere funktionelle Untersuchungen von Interesse sein dürfte.
Die alveoläre Echinokokkose ist eine, vorrangig in der nördlichen Hemisphäre verbreitete, parasitäre Erkrankung. Verursacht wird sie beim Menschen durch das Larvenstadium des Fuchsbandwurms. Homeoboxgene sind hochkonservierte Gene, die die Morphogenese von Lebewesen steuern. Die Anzahl und die Bedeutung von Homeoboxgenen in der Entwicklung von E.multilocularis waren bislang unbekannt. Im Rahmen dieser Arbeit konnten mit Hilfe von Sequenzanalysen im Genom des Fuchsbandwurms erstmals Homeoboxgene identifiziert und deren Expressionsmuster mittels PCR in verschiedenen Larvenstadien charakterisiert werden. Von insgesamt 23 gefundenen Homeoboxgenen wurden 15 Gene auf ihre larvenstadienspezifische Expression untersucht. Neun der untersuchten Gene zeigten in dem gewählten Versuchsaufbau eine Expression in den untersuchten Larvenstadien, fünf davon zeigten eine verstärkte Expression in den späten Larvenstadien. Für acht dieser neun Gene ließen sich darüber hinaus Hinweise auf eine Prozessierung ihrer mRNA über den Mechanismus des Trans-Spleißens finden. Vorangehende Versuche der Arbeitsgruppe von Prof. Brehm hatten einen Zusammenhang zwischen einer Stimulation früher Entwicklungsstadien der Parasitenlarven mit dem Zytokin BMP-2 und dessen rascherer Entwicklung in spätere Entwicklungsstadien nahegelegt. Die Auswirkung einer Behandlung früher Entwicklungsstadien mit dem Zytokin BMP-2 auf die jeweilige Genexpression wurde daher für die ausgewählten 15 Gene überprüft. Fünf Gene zeigten unter dessen Einfluss eine verstärkte Expression. Zwei darunter waren solche, die eine stärkere Expression in späten Larvenstadien aufwiesen. Diese zwei Gene stellen nun Kandidaten dar, die an der Entwicklung von E.multilocularis maßgeblich beteiligt sein könnten. Durch die Untersuchungen dieser Arbeit ergaben sich wichtige Hinweise auf die Entwicklung und die Regulationsmechanismen der Genexpression von E. multilocularis. Sie bilden eine Grundlage, die Rolle der Homeoboxgene für den Fuchsbandwurm näher zu beschreiben und die hormonelle Kreuzregulation zwischen Parasit und Wirt weiter zu studieren.
Escherichia coli ist ein Kommensale des menschlichen und tierischen Gastrointestinaltraktes. Einige E. coli-Stämme sind in der Lage, extraintestinale Erkrankungen beim Menschen wie Harnwegsinfekte, Neugeborenen-Meningitis und Sepsis, sowie beim Tier aviäre Coliseptikämien, hervorzurufen. Ein wichtiger Virulenzfaktor des Bakteriums ist dabei die aus α-2,8-verknüpften Sialinsäuremonomeren aufgebaute K1-Kapsel, die phasenvariabel mit einer hohen Frequenz O-acetyliert werden kann. Im Jahr 2005 konnte gezeigt werden, dass es sich bei dem für die O-Acetylierung verantwortlichen Enzym um die O-Acetyltransferase NeuO handelt, die von dem K1-spezifischen Prophagen CUS-3 codiert wird. Die Verteilung von neuO in der E. coli K1-Population sowie die funktionelle Relevanz der K1-Kapsel O-Acetylierung für das Bakterium waren zu Beginn der vorliegenden Arbeit weitestgehend unklar. Eine E. coli K1-Stammsammlung mit 183 Isolaten wurde aufgebaut. Die E. coli K1-Isolate stammten sowohl aus Stuhlproben gesunder Freiwilliger, humanen Harnwegsinfekten, humanen invasiven Erkrankungen (Neugeborenen-Meningitis und Bakteriämie) und aus an Coliseptikämie erkrankten Vögeln. Die Isolate der E. coli K1-Stammsammlung wurden mit der Multilokus-Sequenztypisierung (MLST) typisiert. Es konnten 39 Sequenztypen (ST) sowie fünf Sequenztyp-Komplexe (STC) identifiziert werden. Bei dem mit Abstand häufigsten STC handelte es sich um den STC95, dem 80 Stämme (44%) angehörten. Insgesamt 103 der 183 E. coli K1-Stämme waren neuO-positiv (56%). Das Gen wurde in 78 (98%) der STC95-Isolate, aber nur in 25 (24%) der 103 nicht-STC95-Stämme gefunden. NeuO war also mit dem STC95 assoziiert. Über Sequenzanalysen des CUS-3-Prophagen konnten CUS-3-Genotypen bestimmt werden. Die Gruppierung der CUS-3-Genotypen und der E. coli K1-ST sowie der anschließende Vergleich beider Gruppierungen miteinander offenbarte eine Segregation der Prophagen-Genotypen entsprechend der ST. Daher legen die in dieser Arbeit ermittelten Ergebnisse eine Koevolution des Phagen mit seinem Wirt nahe. Einige humane und aviäre E. coli K1-Isolate waren weder auf Basis der MLST bzw. der CUS-3-Genotypisierung noch anhand des Vorhandenseins verschiedener, mit extraintestinal-pathogenen E. coli-assoziierter Gene voneinander unterscheidbar, was die Hypothese einer zoonotischen Transmission dieser Stämme unterstützt. In den in dieser Arbeit durchgeführten funktionellen Analysen konnte weder ein Effekt der NeuO-vermittelten E. coli K1-Kapsel O-Acetylierung auf die Fähigkeit der Bakterien an humane mikrovaskuläre Gehirnendothelzellen zu adhärieren oder in diese zu invadieren, noch auf die in vivo-Virulenz der Bakterien im Hühnermodell beobachtet werden. Die K1-Kapsel O-Acetylierung verringerte die in vivo-Kolonisierung des Hühner-Gastrointestinaltraktes und die in vitro-Biofilmbildung durch das Bakterium, wohingegen sie die Austrocknungsresistenz von E. coli K1 erhöhte. Möglicherweise dient die phasenvariable neuO-Expression und damit die E. coli K1-Kapsel O-Acetylierung der Anpassung des Bakteriums an wechselnde Umweltbedingungen.
Disruption of the blood-brain barrier (BBB) is a hallmark event in the pathophysiology of bacterial meningitis. Several inflammatory mediators, such as tumor necrosis factor alpha (TNF-a), nitric oxide and matrix metalloproteinases (MMPs), contribute to this disruption. Here we show that infection of human brain microvascular endothelial cells (HBMEC) with Neisseria meningitidis induced an increase of permeability at prolonged time of infection. This was paralleled by an increase in MMP-8 activity in supernatants collected from infected cells. A detailed analysis revealed that MMP-8 was involved in the proteolytic cleavage of the tight junction protein occludin, resulting in its disappearance from the cell periphery and cleavage to a lower-sized 50-kDa protein in infected HBMEC. Abrogation of MMP-8 activity by specific inhibitors as well as transfection with MMP-8 siRNA abolished production of the cleavage fragment and occludin remained attached to the cell periphery. In addition, MMP-8 affected cell adherence to the underlying matrix. A similar temporal relationship was observed for MMP activity and cell detachment. Injury of the HBMEC monolayer suggested the requirement of direct cell contact because no detachment was observed when bacteria were placed above a transwell membrane or when bacterial supernatant was directly added to cells. Inhibition of MMP-8 partially prevented detachment of infected HBMEC and restored BBB permeability. Together, we established that MMP-8 activity plays a crucial role in disassembly of cell junction components and cell adhesion during meningococcal infection.
Introduction: Chronic nonbacterial osteomyelitis (CNO) is an inflammatory disorder of unknown etiology. In children and adolescents CNO predominantly affects the metaphyses of the long bones, but lesions can occur at any site of the skeleton. Prospectively followed cohorts using a standardized protocol in diagnosis and treatment have rarely been reported. Methods: Thirty-seven children diagnosed with CNO were treated with naproxen continuously for the first 6 months. If assessment at that time revealed progressive disease or no further improvement, sulfasalazine and short-term corticosteroids were added. The aims of our short-term follow-up study were to describe treatment response in detail and to identify potential risk factors for an unfavorable outcome. Results: Naproxen treatment was highly effective in general, inducing a symptom-free status in 43% of our patients after 6 months. However, four nonsteroidal anti-inflammatory drug (NSAID) partial-responders were additionally treated with sulfasalazine and short-term corticosteroids. The total number of clinical detectable lesions was significantly reduced. Mean disease activity estimated by the patient/physician and the physical aspect of health-related quality of life including functional ability (global assessment/childhood health assessment questionnaire and childhood health assessment questionnaire) and pain improved significantly. Forty-one percent of our patients showed radiological relapses, but 67% of them were clinically silent. Conclusions: Most children show a favorable clinical course in the first year of anti-inflammatory treatment with NSAIDs. Relapses and new radiological lesions can occur at any time and at any site in the skeleton but may not be clinically symptomatic. Whole-body magnetic resonance imaging proved to be very sensitive for initial and follow-up diagnostics.
Neisseria meningitidis is a facultatively pathogenic human commensal and strictly adapted to its niche within the human host, the nasopharynx. Not much is known about the regulatory processes required for adaptation to this environment. Therefore the role of the transcriptional regulator NMB1843, one of the two predicted regulators of the MarR family in the meningococcal genome, was investigated. As this gene displayed a high sequence homology to FarR, the Fatty acid resistance Regulator in N. gonorrhoeae, we designated the meningococcal protein FarR (NmFarR). Homology modeling of this protein revealed a dimeric structure with the characteristic winged helix-turn-helix DNA binding motif of the MarR family. NmFarR is highly conserved among meningococcal strains and expression of farR during exponential growth is controlled post-transcriptionally, being highest in the late exponential phase. By means of electrophoretic mobility shift assays (EMSAs) the direct and specific binding of FarR to the farAB promoter region was shown, comparable to its homologue in gonococci. As FarR is involved in fatty acid resistance in N. gonorrhoeae, susceptibility assays with the medium chain lauric acid (C12:0), the long chain saturated palmitic acid (C16:0) and the long chain unsaturated linoleic acid (C18:2) were performed, testing a wide variety of strains of both species. In contrast to the unusually susceptible gonococci, a high intrinsic fatty acid resistance was detected in almost all meningococcal isolates. The molecular basis for this intrinsic resistance in N. meningitidis was elucidated, showing that both a functional FarAB efflux pump system as well as an intact lipopolysaccharide (LPS) are responsible for palmitic acid resistance. However, even despite circumvention of the intrinsic resistance, FarR could not be connected with fatty acid resistance in meningococci. Instead, FarR was shown to directly and specifically repress expression of the Neisseria adhesin A (nadA), a promising vaccine candidate absent in N. gonorrhoeae. Microarray analyses verified these results and disclosed no further similarly regulated genes, rendering the FarR regulon the smallest regulon in meningococci reported until now. The exact FarR binding site within the nadA promoter region was identified as a 16 bp palindromic repeat and its influence on nadA transcription was proved by reporter gene fusion assays. This repression was also shown to be relevant for infection as farR deficient mutant strains displayed an increased attachment to epithelial cells. Furthermore, farR transcription was attested to be repressed upon contact with active complement components within human serum. Concluding, it is shown that FarR adopted a role in meningococcal host niche adaptation, holding the balance between immune evasion by repressing the highly antigenic nadA and host cell attachment via this same adhesin.
OatC ist die O-Acetyltransferase von Serogruppe C Meningokokken. Sie katalysiert die O-Acetylierung der Sialinsäurekapsel. Das Enzym konnte vor Beginn dieser Arbeit keiner bekannten Gruppe von Enzymen zugeordnet werden. Durch in vivo-Versuche und in vitro-Studien sollten weitere Erkenntnisse zu Lage und Struktur des aktiven Zentrums von OatC gewonnen werden. Die vorliegende Arbeit besteht aus drei Teilen: 1. Es sollte eine Meningokokken-Mutante mit einer Deletion des oatC -Gens hergestellt werden. 2. Das oatC -Gen sollte schrittweise verkürzt und in trans auf dem pAP1His Vektor in die oatC-Deletionsmutante eingebracht werden. 3. Gerichtete Mutagenese von Histidinresten, Serin 286 und Aspartat 376 sollte Aussagen über die in vivo-Relevanz der Aminosäuren ermöglichen. Die Mutanten wurden im ELISA auf Ihren O-Acetylierungsstatus hin überprüft. Die oatC -Deletionsmutante war erwartungsgemäß negativ. Bereits die erste Verkürzung von OatC um 16 Aminosäuren führte zu einem vollständigen Verlust der O-Acetylierung, der Austausch der Aminosäuren Histidin 399, Serin 286 und Aspartat 376 durch gerichtete Mutagenese ebenfalls. Wir spekulieren, dass der Verlust des C-Terminus zu einer veränderten Proteinfaltung führt oder eine katalytische Funktion des Histidin 456 eliminiert. Die Ergebnisse dieser Arbeit unterstützen die Hypothese, dass OatC der Gruppe der α/β-Hydrolasen zugeordnet werden kann (s. a. Bergfeld et al. 2009). Das katalytische Zentrum besteht aus Serin 286, Aspartat 376 und Histidin 399. Der Bereich um Histidin 456 beeinflusst die Funktion erheblich.
Neisseria meningitidis ist ein humaner Infektionserreger, der Meningitis und Sepsis hervorruft. Das asymptomatische Trägertum im Nasenrachenraum ist entscheidend für die Übertragung des Bakteriums und dessen Interaktion mit dem menschlichen Wirt. Frühere Beobachtungen legen die Annahme nahe, dass Meningo¬kokken im Tonsillengewebe in einem biofilmähnlichen Stadium vorliegen. Daher werden in vitro Biofilme als Modell für das Trägertum verwendet. Expressionsunterschiede zwischen Biofilmen und planktonisch gewachsenen pathogenen Neisserien wurden in wenigen Transkriptomanalysen untersucht, während bisher keine Proteomanalysen durchgeführt wurden. Kartierungen des Proteoms und des Immunoproteoms von Meningokokken liegen allerdings vor. In dieser Studie wurde das Biofilmproteom des unbekapselten N. meningitidis Stammes WUE3671 im Vergleich zum Proteom der planktonisch gewachsenen Bakterien untersucht. Dazu wurde ein auf Silikonschläuchen basierendes Biofilmmodell mit kontinuierlichem Fluss etabliert. Es erfolgte eine Anreicherung bakterieller Biomasse über 48 h, wobei die kolonie-bildenden Einheiten bei 24 h ein Plateau erreichten. Licht- und Elektronen¬mikroskopie belegten die deutliche Zunahme der Biomasse über 48 h und zeigten zudem eine Struktur-ierung des 48 h Biofilms in eine apikale Region mit überwiegend vitalen Meningokokken und eine basale Region mit einer verstärkten Anzahl von Bakterien mit avitalem Erscheinungs-bild. Das Proteom von N. meningitidis Biofilmen, die 24 beziehungsweise 48 h gewachsen waren, wurde mit dem einer exponentiell gewachsenen planktonischen Kultur mit 2D-Gelelektro¬phorese verglichen. Unterschiedlich exprimierte Proteine wurden mit Massen-spektrometrie identifiziert und die Ergebnisse mit Spectral Counting und, wenn möglich, mit spezifischen Antikörpern abgesichert. Die Expression von ungefähr 2 % aller Proteinspots im Biofilm unterschied sich von der in planktonischen Zellen wenigstens um das 2-fache. Es wurden Veränderungen beobachtet, die mit einem Nährstoff- und Sauerstoffmangel sowie einer Zunahme von reaktiven Sauerstoffspezies (reactive oxygen species, ROS) in Verbindung gebracht werden können. Die Expression der Proteine SodC und MntC war im Biofilm deutlich erhöht, was mutmaßlich auf ROS im Biofilm zurückzuführen ist. In dieser Arbeit konnte gezeigt werden, dass MntC in der Tat essentiell für Biofilmwachstum, nicht aber für planktonisches Wachstum ist. Die Daten zu SodC und MntC legen die Hypothese nahe, dass Meningokokken im Biofilm trainiert werden mit Mediatoren des Immunsystems, wie ROS, umzugehen. Zudem wird NMB0573, ein Lrp-Homolog, als wesentlicher globaler Regulator für metabolische Anpassungen im Biofilm postuliert. Es konnte über die Proteomanalyse hinaus gezeigt werden, dass die Adhäsine Opc und Opa, die unter der Kontrolle von NMB0573 stehen, im Biofilm vermindert exprimiert werden.
In dieser Arbeit wurde das in vitro Wachstumsverhalten ausgesuchter MRSA in Konkurrenz zu Bakterien der Standortflora unter Optimalbedingungen und unter Mangelbedingungen getestet. Es lässt sich für alle getesteten MRSA-Stämme zusammenfassend sagen, dass ihre klinische Prävalenz nicht mit dem Wachstum in vitro korreliert, d.h. das häufige Spa-Typen nicht besser unter unseren Versuchbedingungen gewachsen sind als seltene. In vitro konnte kein verdrängendes Wachstum des Methicillin sensiblen S. aureus gegenüber den resistenten Stämme beobachtet werden. Vielmehr gelingt es den MRSA-Stämmen, ein Wachstumsgemisch zu ihrem Vorteil zu beeinflussen, indem sie die getesteten anderen Mikroorganismen (S. epidermidis, S. cerivisiae) im Wachstum hemmen, mit Ausnahme von E. faecium. Die Arbeit beleuchtet die Schwierigkeiten der Identifizierung von probiotischen Arten zur Verdrängung eines MRSA. In Zukunft sollte vielleicht an der Optimierung von in vitro Systemen gearbeitet werden (in vitro Organkulturen) oder Tiermodelle verwendet werden. Den Transmissionsunterschieden und der Tenazität sind weiterhin Aufmerksamkeit zu widmen. Wie in der Literatur beschrieben ist es zum Verständnis des Wachstumsverhal-tens der resistenten Stämme wichtig zu wissen, auf welchen molekularbiologischen Grundlagen die Resistenz beruht, da eine einzelne Site-Mutation zusätzliche Resistenzen bedeuten und einen eventuellen Wachstumsnachteil wieder ausgleichen kann. Im Klinikalltag scheinen sich die MRSA-Stämme auszubreiten, die den Wachstumsnachteil bereits ausgeglichen haben, beziehungsweise deren Methicillinresistenz keinen Wachstumsnachteil bedeutet.
Alveolar echinococcosis (AE) of human being caused by Echinococcus multilocularis is a rare but important zoonosis especially in tempered zones of middle Europe and Northern America with endemic character in many countries. Due to the long incubation period, various clinical manifestations, critical prognosis, and outcome AE presents a serious and severe disease. The primary focus of infection is usually the liver. Although secondary affection of visceral organs is possible extrahepatic AE is highly uncommon. Moreover, the involvement of bone and muscle presents with an even lower incidence. In the literature numerous cases on hepatic AE have been reported. However, extrahepatic AE involving bones and/or muscles was described very rarely. We report a case of an 80-year-old man with primary extrahepatic alveolar Echinococcosis of the lumbar spine and the psoas muscle. The etiology, diagnosis, differential diagnoses, treatment options and outcome of this rare disease are discussed in context with the current literature.
Visceral pentastomiasis caused by Armillifer armillatus larvae was diagnosed in 2 dogs in The Gambia. Parasites were subjected to PCR; phylogenetic analysis confirmed relatedness with branchiurans/crustaceans. Our investigation highlights transmission of infective A. armillatus ova to dogs and, by serologic evidence, also to 1 human, demonstrating a public health concern.
Durch die Immunsuppression bei Patienten nach Stammzell- oder Organtransplantation erhöht sich das Risiko für opportunistische Infektionen wie invasive Aspergillose (IA). IA wird hauptsächlich durch den Schimmelpilz Aspergillus fumigatus, der durch die Luft übertragen wird, verursacht. Deshalb haben Erkennung und Therapie von IA in den letzten Jahren eine immer größere Bedeutung erlangt. Für eine erfolgreiche Behandlung sind die Mechanismen des Immunsystems nach Kontaktaufnahme mit dem Pathogen von zentraler Bedeutung. Die Erstinfektion mit A. fumigatus findet in der Lunge statt. Als Bewohner der Alveolen wurden deshalb dendritische Zellen (DCs) auf ihre Fähigkeiten hin untersucht, das Immunsystem anzuregen. DCs besitzen vor allem die wichtigen Aufgaben, das Immunsystem zu modulieren und T-Lymphozyten zur Proliferation anzuregen. Ein Großteil dieser Arbeit befasst sich mit der Analyse des Einflusses des Immunsuppressivums 40-0-[2-Hydroxyethyl]rapamycin (RAD) auf neutrophile Granulozyten und auf die in vitro Generierung von moDCs sowie deren Fähigkeit mit dem Pathogen A. fumigatus zu interagieren. RAD bindet an das zytosolische FK506 bindende Protein (FKBP12), wodurch die Kinase mammalian target of rapamycin (mTOR) inhibiert und somit die T-Zellantwort unterdrückt wird. Klinische Anwendung findet RAD bereits, um eine Immunsuppression bei Patienten nach Stammzell- oder Organtransplantation zu erhalten. Der oxidative Burst neutrophiler Granulozyten war nach RAD-Behandlung und Konfrontation mit A. fumigatus signifikant verringert. Die Generierung der moDCs aus Monozyten erfolgte über 7 Tage, wobei ab dem Tag der Isolation der Monozyten 10 nM RAD oder EtOH zur Kontrolle hinzugegeben wurde. RAD zeigte vielfältige Effekte auf die Immunfunktion dendritischer Zellen. Obwohl sich keine Änderung in der Differenzierung der moDCs fand, was durch die Oberflächenmarker CD1a+, CD14- und HLA-DR+ überprüft wurde, zeigte sich eine signifikante Reduktion der Rezeptoren TLR4 und Dectin-1 sowie der kostimulatorischen Moleküle CD40, CD83 und CD86. Nach Konfrontation mit A. fumigatus verblieb CD40 unter RAD Behandlung signifikant reduziert, während CD83 genau dieses Schema als Trend aufwies. Ferner wies CD86 sowohl in der Kontrolle als auch mit RAD-Behandlung die gleiche Expression auf. Nach 6 h Konfrontation der moDCs mit A. fumigatus waren die Zytokine IL-12, TNF-α und CCL20 auf Genexpressionsebene unter RAD reduziert, was sich auf Proteinebene teilweise bestätigen ließ, da sich hier erst nach 12 h eine signifikante Reduktion von IL-12, TNF-α und CCL20 in RAD-behandelten Zellen im Vergleich zu Kontrollzellen zeigte. Des Weiteren war das anti-inflammatorische Zytokin IL-10 signifikant reduziert. Die Phagozytose sowohl von FITC-Dextran-Beads als auch von A. fumigatus Konidien und zugleich die Schädigung von A. fumigatus Keimschläuchen war in unreifen RAD-behandelten moDCs signifikant reduziert. Ob moDCs, die mit RAD behandelt wurden, schlechter in der Lage waren, CD8+-T-Lymphozyten zur Proliferation anzuregen, geht nicht mit Sicherheit aus dieser Studie hervor, da große spenderabhängige Unterschiede auftraten. Es wurde zudem ein Vergleich von in vitro aus Monozyten differenzierten DCs (moDCs) und myeloiden DCs (mDCs) angefertigt. Mittels eines home-made Microarrays, der vor allem Gene mit einschloss, die für Zytokine und Rezeptoren von Immunzellen kodieren, konnten in einem Modell der frühen IA in der Lunge differentiell regulierte Gene nach Konfrontation mit A. fumigatus identifiziert werden. Es wurden insgesamt 30 Gene mehr als 2-fach reguliert, wie zum Beispiel die Interleukine und Chemokine IL-1β, IL-8, CXCL2, CCL3, CCL4 und CCL20, der Immunrezeptor PTX3 und der Transkriptionsfaktor Nf-κB. Generell konnte beobachtet werden, dass moDCs mehr regulierte Gene aufwiesen als mDCs. Zuletzt wurde betrachtet, ob der Knock-down von CXCL10, dessen Fehlen ein erhöhtes Risiko für IA nach sich zieht, einen Einfluss auf moDCs hat, so dass sie schlechter auf A. fumigatus reagieren können. Diese Hypothese konnte in dieser Studie nicht bestätigt werden, da kein Unterschied in der Zytokinproduktion oder Expression kostimulatorischer Moleküle zwischen Kontroll-moDCs und moDCs, in denen das CXCL10-Gen ausgeschaltet wurde, festgestellt werden konnte. Zusammenfassend lässt sich sagen, dass durch die Microarray-Analyse wichtige Gene in moDCs und mDCs identifizierbar waren, die nach Konfrontation mit A. fumigatus reguliert wurden. Zudem fanden sich lediglich minimale Unterschiede zwischen artifiziellen DCs und myeloiden DCs, die direkt aus dem Körper isoliert wurden. Eine Behandlung mit RAD erhöht das Risiko eines Patienten an invasiver Aspergillose zu erkranken unabhängig von der Eigenschaft des RAD, die Proliferation von T-Lymphozyten zu inhibieren.
Neisseria meningitidis, Auslöser der Meningokokken-Meningitis und Sepsis, trägt auch heute noch zur hohen Kindersterblichkeit in Entwicklungsländern bei und sorgt, vor allem im afrikanischen Meningitis-Gürtel, immer wieder für Epidemien mit gravierenden Folgen für die Betroffenen. Im Rahmen dieser Arbeit wurden zwei an der Pathogenität von N. meningitidis beteiligte Proteine, der Transkriptionsregulator FarR und der Transportkanal HrpB, näher charakterisiert, um weitere Einblicke in die immer noch nicht vollständig entschlüsselte Pathogenese der Meningokokken-Meningitis zu erhalten. Das Neisseria adhesin A NadA ist Bestandteil der sich aktuell in der Entwicklung befindenden Impfung gegen Meningokokken der Serogruppe B. Im dem bekapselten B-Stamm MC58 wurde gezeigt, dass nadA unter der negativen Kontrolle des Transkriptionsregulators FarR steht (Schielke et al., 2009). In den ebenfalls zur Gattung Neisseria gehörenden Neisseria gonorrhoeae (Ng) wurde bereits 2001 ein FarR-Homolog beschrieben (Shafer et al., 2001). NgFarR ist an der Resistenz gegenüber antimikrobiellen, langkettigen Fettsäuren beteiligt, indem es die Expression des FarABEffluxpumpen-Systems reguliert, welches eingedrungene Fettsäuren wieder nach extrazellulär befördert. Dagegen zeigten Palmitinsäure-Resistenztests, dass FarR nicht an der intrinsischen Fettsäure-Resistenz der Meningokokken beteiligt ist. Die Deletion und die Komplementierung von farR hatten weder in bekapselten noch in unbekapselten Meningokokken Einfluss auf das normale Wachstumsverhalten. Ein Western Blot- Nachweis des FarR-Proteins in der frühen, mittleren und späten exponentiellen Wachstumsphase von Wildtyp, Kapsel-Deletionsmutante und farR-Komplementante zeigte, dass die Menge an FarR im zeitlichen Verlauf kontinuierlich zunimmt und FarR damit Wachstumsphasen-abhängig exprimiert wird. Dabei scheint es einer posttranskriptionalen oder posttranslationalen Regulation zu unterliegen, da auch in dem farRkomplementierten Stamm unabhängig vom farR-Promotor eine entsprechende Hochregulation stattfindet. In Infektionsversuchen wurde die Interaktion zwischen Meningokokken und humanen polymorphkernigen Granulozyten untersucht. In den Infektionsassays wurde die farRDeletionsmutante innerhalb des dreistündigen Versuchsrahmens deutlich stärker durch die Granulozyten abgetötet als der Serogruppe B-Wildtyp. Als Mitglied der in Bakterien und Archaeen weit verbreiteten Familie der MarR-Transkriptionsregulatoren (Multiple antibiotic resistance Regulator, MarR) bindet FarR mit hoher Wahrscheinlichkeit auch als Homodimer an seine Bindesequenz auf der DNA. FarR erkennt eine 16 bp lange, palindromische Sequenz in der Promotorregion von nadA (NMB1994), wodurch die nadA-Expression verhindert wird. Außerdem erkennt FarR eine ähnliche Bindesequenz im Promotorbereich von farAB (NMB0318/0319), wobei es aber keinen regulatorischen Einfluss ausübt. Mit einer aus diesen beiden Bindestellen berechneten minimalen Bindesequenz wurde im Genom von MC58 weitere mögliche Bindepartner detektiert. Eine Auswahl dieser möglichen Bindestellen wurde in Electrophoretic Mobility Shift Assays auf eine direkte Interaktion mit dem FarR-Protein hin untersucht, wobei sich allerdings keine direkte Bindung nachweisen ließ. Diese Ergebnisse darauf hin, dass der Transkriptionsregulator FarR hoch spezifisch bestimmte DNA-Bindesequenzen erkennt und die entsprechenden Gene reguliert. In der Promotorregion des TpsB-Proteins HrpB wurde in den sequenzierten Referenzstämmen Z2491, MC58, FAM18 und α14 eine mit der minimalen FarR-Bindesequenz kompatible Sequenz gefunden. In Electrophoretic Mobility Shift Assays konnte allerdings gezeigt werden, dass FarR nicht direkt daran bindet. Um das Transport-Protein HrpB näher zu charakterisieren, wurde das entsprechende Gen in 22 N. meningitidis-Isolaten sequenziert. Dabei zeigte sich, dass das Transportprotein hrpB in allen untersuchten invasiven und nicht-invasiven Stämmen vorhanden ist. Dieses äußerst konservierte Protein weist nur im seinem C-terminalen Bereich eine relativ variable Region auf, was vermutlich auf Rekombinationsereignisse zurückzuführen ist. Ein Alignment der Aminosäure-Sequenz des Serogruppe C-Stamms FAM18 mit der des homologen Bordetella pertussis TpsB-Proteins FhaC zeigte, dass die dreidimensionale Struktur des HrpB ebenfalls eine α-Helix, eine transmembranöse Domäne und variable extrazelluläre Loops enthält. Zusammengenommen erfüllt HrpB somit wichtige Bedingungen, um als Vakzine-Bestandteil in Betracht gezogen zu werden.
Echinococcus multilocularis besitzt als Lebergewebe - infiltrierender Parasit und Erreger der Alveolären Echinokokkose evolutionär konservierte Faktoren des TGF-β / BMP Signalsystems, die im Konzept der hormonellen Wirt - Parasit Kreuzkommunikation nicht nur hinsichtlich des Wirts - Einflusses auf die Entwicklung des Parasiten sondern auch umgekehrt in Bezug auf Immunantwort und Physiologie des Wirts eine mögliche regulierende Funktion besitzen. Die vorliegende Arbeit befasst sich primär mit den Auswirkungen von TGF-β / BMP Signaling auf den Fuchsbandwurm E. multilocularis. Dazu wurde zunächst durch Immunlokalisation das Vorliegen aller Echinokokken TGF-β / BMP Rezeptoren während einer natürlich aufgetretenen Alveolären Echinokokkose überprüft, sowie die funktionelle Interaktion von EmRSK3 und EmRSK4 mit humanem TGF-β1 in vitro nachgewiesen. Mit Hilfe von humanen Zytokinen (BMP2 und TGF β1) und Rezeptor - spezifischen Inhibitoren (SB431542, Dorsomorphin und LY364947) wurde die Rolle von TGF β / BMP Signaling in Bezug auf Vitalität, Wachstum, Differenzierung und Regeneration von E. multilocularis in verschiedenen Stadien untersucht. Zusätzlich wurde der Einfluss von humanem BMP2 und von SB431542 auf die Genexpression in E. multilocularis analysiert. Die Möglichkeit einer intra - Spezies Kommunikation durch Echinokokken Faktoren des TGF-β / BMP Signaling wurde ebenfalls adressiert. Dabei konnte gezeigt werden, dass Echinokokken TGF-β / BMP Rezeptoren in vitro durch sekretierte Faktoren aus Metazestoden aktiviert werden können. Auf Basis von Genomsequenzierungsdaten wurden zudem weitere Komponenten des TGF-β / BMP Signaling in E. multilocularis, wie die bisher unbekannten TGF β / BMP Homologe EmBMP2 und EmAct, die Noggin-like Homologe EmNlg1 und 2, ein I-Smad (EmSmadF) sowie ein zweiter BR-Smad (EmSmadE) identifiziert, strukturell charakterisiert und die jeweilige Genexpression in verschiedenen Stadien überprüft. EmSmadE wurde zudem in weiterführenden Studien funktionell charakterisiert. Fragestellungen bezüglich der Spezifität, Funktionalität und Möglichkeit der konstitutiven Aktivierung von TGF-β / BMP Signaling in E. multilocularis wurden auf Basis von EmSmadA, EmRSK3 und EmRSK3b in weiteren molekularbiologischen Studien untersucht und dienen dem tieferen Verständnis von TGF-β / BMP Signaling. In der vorliegenden Arbeit konnten damit alle grundlegenden Faktoren von TGF-β / BMP Signaling in E. multilocularis identifiziert werden und es wurden erstmals die eindeutige Sensierung von Wirts TGF-β / BMP Zytokinen durch Metazestoden sowie die Möglichkeit einer intra - Spezies Kommunikation über Echinokokken TGF-β / BMP Faktoren belegt. Zusätzlich deuten die neu identifizierten potenziell sekretierten TGF-β / BMP Faktoren auf eine mögliche Beeinflussung von Physiologie und Immunantwort des Wirts durch Echinokokken TGF-β / BMP Zytokine hin.
Background: Specific cell targeting is an important, yet unsolved problem in bacteria-based therapeutic applications, like tumor or gene therapy. Here, we describe the construction of a novel, internalin A and B (InlAB)-deficient Listeria monocytogenes strain (Lm-spa+), which expresses protein A of Staphylococcus aureus (SPA) and anchors SPA in the correct orientation on the bacterial cell surface. Results: This listerial strain efficiently binds antibodies allowing specific interaction of the bacterium with the target recognized by the antibody. Binding of Trastuzumab (Herceptin®) or Cetuximab (Erbitux®) to Lm-spa+, two clinically approved monoclonal antibodies directed against HER2/neu and EGFR/HER1, respectively, triggers InlABindependent internalization into non-phagocytic cancer cell lines overexpressing the respective receptors. Internalization, subsequent escape into the host cell cytosol and intracellular replication of these bacteria are as efficient as of the corresponding InlAB-positive, SPA-negative parental strain. This specific antibody/receptormediated internalization of Lm-spa+ is shown in the murine 4T1 tumor cell line, the isogenic 4T1-HER2 cell line as well as the human cancer cell lines SK-BR-3 and SK-OV-3. Importantly, this targeting approach is applicable in a xenograft mouse tumor model after crosslinking the antibody to SPA on the listerial cell surface. Conclusions: Binding of receptor-specific antibodies to SPA-expressing L. monocytogenes may represent a promising approach to target L. monocytogenes to host cells expressing specific receptors triggering internalization.
Neisseria meningitidis ist mit jahrlich etwa 700.000 Erkrankungsfallen weltweit und einer Mortalitat von circa 7% einer der häufigsten Ausloser der bakteriellen Hirnhautentzündung. Der entscheidende Schritt zur Auslosung einer Meningitis ist die Uberwindung der Blut-Hirn-Schranke. Diese im menschlichen Korper einmalig dichte Barriere wird maßgeblich durch Tight-Junctions spezialisierter Endothelzellen der Hirnkapillaren aufrecht erhalten. Ob N. Meningitidis diese Barriere auf einem parazellulären oder transzellulärem Weg uberwindet, ist nicht vollstandig geklart. In dieser Arbeit wurde der Einfluss von N. meningitidis auf die Tight-Junction Proteine Occludin und ZO-1 unter Nutzung des HBMEC Zellkulurmodelles untersucht. Neben einer verminderten Genexpression von Occludin zeigte sich dabei eine Abspaltung eines 50 kDa Fragmentes von Occludin. Gleichzeitig konnte eine Umverteilung von Occludin von den Zellgrenzen in das Zytoplasma beobachtet werden. ZO-1 hingegen wurde weder in seiner Exprimierung, noch in seiner intrazellularen Verteilung beeinflusst. Mittels eines in dieser Arbeit etablierten Assays zur Bestimmung der Permeabilitat eines HBMEC-Monolayer als vereinfachtes in-vitro Modell der Blut-Hirn-Schranke konnte bestatigt werden, dass durch die Beeinflussung von Tight-Junction Proteinen die parazellulare Permeabilitat steigt. In weiteren Analysen konnten diese Prozesse auf eine gesteigerte Aktivitat von Matrixmetalloproteinase 8 zurückgefuhrt werden. Die Ergebnisse dieser Arbeit zeigen einen neuen Mechanismus auf, durch den N. meningitidis im Stande ist, die-Hinr-Schranke auf einem parazellulärem Weg zu überwinden.
Hintergrund: Zunehmend wird der Eigenschaft von Staphylococcus aureus als fakultativ intrazellulärem Erreger Bedeutung zugemessen. Ein direkter Nachweis der in vivo Relevanz von fakultativ intrazellulärem S. aureus bleibt allerdings bisher aus. Der Mechanismus zellulärer Invasivität ist bekannt und korreliert mit verschiedenen molekularen Markern (spa-Typ, SCCmec-Typ und pls/Pls). In dieser Studie wurde die Zuverlässigkeit und Ausweitbarkeit dieser Marker getestet. Des Weiteren wurde überprüft, ob sich die zelluläre Invasivität von kolonisierenden und Infektions-assoziierten MRSA-Isolaten unterscheidet und, ob die alleinige Bestimmung molekularer Marker in vitro die Virulenz eines Isolats in vivo abzuschätzen vermag. Methoden:Insgesamt wurden 109 MRSA-Isolate gesammelt, molekular charakterisiert (spa-Typ, BURP-Analyse, SCCmec-Typ, pls, agr-Typ, Hämolyseverhalten) und das Potential zellulärer Invasivität in vitro ermittelt. Die Assoziation eines Isolates mit einer Infektion in vivo wurde nachverfolgt (93 Kolonisierer versus 16 Infektions-assoziierte-Isolate). Zusätzlich wurde eine Referenzgruppe aus 13 S. aureus-Isolaten etabliert, die klinisch mit vergleichsweise invasiven Infektionen assoziiert waren (12 Osteomyelitis-Isolate und 1 Endokarditis-Isolat). Ergebnisse: Die bekannten molekularen Marker zellulärer Invasivität korrelieren zuverlässig in einer Population klinischer MRSA-Isolate und lassen sich auch auf bisher nicht bekannte (spa- und SCCmec-) Typen ausweiten. Das Hämolyseverhalten korrelierte nicht mit der zellulären Invasivität. Der agr-Typ wurde als weiterer molekularer Marker identifiziert. Die zelluläre Invasivität war unabhängig von der Etablierung einer Infektion in vivo (mediane Invasivität der Kolonisierer 100% versus 108% der Infektions-assoziierten Studienisolate und 110% der externen Referenzisolate). Des Weiteren waren die molekularen Marker spa- und agr-Typ nicht in der Lage, die Virulenz eines MRSA-Isolats in vivo abzuschätzen. Diskussion: Die zelluläre Invasivität klinischer MRSA-Isolate korreliert zuverlässig mit molekularen Markern. Allerdings vermögen weder die zelluläre Invasivität, noch mit ihr assoziierte molekulare Marker die Etablierung einer Infektion in vivo vorherzusagen. Beide scheinen also als Surrogat-Parameter zur Abschätzung der klinischen Virulenz eines Isolats ungeeignet. Zur Klärung der Frage, ob molekulare Marker zellulärer Invasivität in anderen Abschnitten der Pathogenese von S. aureus- Infektionen eine Rolle spielen, bedarf es weiterer Studien.
Background
Neisseria meningitidis is a naturally transformable, facultative pathogen colonizing the human nasopharynx. Here, we analyze on a genome-wide level the impact of recombination on gene-complement diversity and virulence evolution in N. meningitidis. We combined comparative genome hybridization using microarrays (mCGH) and multilocus sequence typing (MLST) of 29 meningococcal isolates with computational comparison of a subset of seven meningococcal genome sequences.
Principal Findings
We found that lateral gene transfer of minimal mobile elements as well as prophages are major forces shaping meningococcal population structure. Extensive gene content comparison revealed novel associations of virulence with genetic elements besides the recently discovered meningococcal disease associated (MDA) island. In particular, we identified an association of virulence with a recently described canonical genomic island termed IHT-E and a differential distribution of genes encoding RTX toxin- and two-partner secretion systems among hyperinvasive and non-hyperinvasive lineages. By computationally screening also the core genome for signs of recombination, we provided evidence that about 40% of the meningococcal core genes are affected by recombination primarily within metabolic genes as well as genes involved in DNA replication and repair. By comparison with the results of previous mCGH studies, our data indicated that genetic structuring as revealed by mCGH is stable over time and highly similar for isolates from different geographic origins.
Conclusions
Recombination comprising lateral transfer of entire genes as well as homologous intragenic recombination has a profound impact on meningococcal population structure and genome composition. Our data support the hypothesis that meningococcal virulence is polygenic in nature and that differences in metabolism might contribute to virulence.
Alveolar echinococcosis (AE), a severe and life-threatening disease is caused by the small fox tapeworm Echinococcus multilocularis. Currently, the options of chemotherapeutic treatment are very limited and are based on benzimidazole compounds, which act merely parasitostatic in vivo and often display strong side effects. Therefore, new therapeutic drugs and targets are urgently needed. In the present work the role of two evolutionarily conserved signalling pathways in E. multilocularis, namely the insulin signalling cascade and Abl kinases, has been studied in regard to host-parasite interaction and the possible use in anti-AE chemotherapy.
Wie das pathogene Bakterium Neisseria meningitidis kolonisiert auch Neisseria lactamica als Kommensale den oberen Nasopharynx des Menschen. Penicillin G ist ein first-line-Therapeutikum gegen Meningokokkeninfektionen. Reduzierte Empfindlichkeit gegenüber Penicillin wird bei Meningokokken durch Mutationen im penA-Gen verursacht. Horizontaler Gentransfer zwischen den verschiedenen Neisseria spp. wurde auch für das penA-Gen beschrieben. Ziel dieser Arbeit war daher eine phänotypische und genotypische Analyse der Penicillinresistenz von N. lactamica. Aus den Versuchen sollten Prognosen über die zukünftige Resistenzentwicklung von Meningokokken abgeleitet werden. Die phänotypische Analyse von 123 N. lactamica-Stämmen (MIC [Minimum inhibitory concentration]-Bereich: 0,064 – 2,0 µg/ml, Median: 0,38 µg/ml) und 129 N. meningitidis- Stämmen (MIC-Bereich: 0,016 – 0,25 µg/ml, Median: 0,064 µg/ml) zeigte signifikant höhere MIC-Werte gegenüber Penicillin G bei den N. lactamica-Stämmen als bei den untersuchten Meningokokken. Bei Meningokokken sind Polymorphismen (fünf spezifische Mutationen betreffend) im penA-Gen (kodiert für das PBP2 (penicillin binding protein 2)) für verminderte Penicillinsensibilität verantwortlich, weshalb der betroffene Abschnitt des penA-Gens in allen N. lactamica-Stämmen und N. meningitidis-Stämmen untersucht und mit den bekannten Allelen der penA-Datenbank verglichen wurde. Bei den 123 N. lactamica-Stämmen konnten 60 verschiedene penA-Allele nachgewiesen werden, wovon 51 neu in die internationale penA-Datenbank eingefügt werden konnten. Im Gegensatz zu Meningokokken trugen die N. lactamica-Stämme entweder drei oder fünf der für intermediär resistente Meningokokken charakteristischen Mutationen im penA-Gen. N. lactamica-Stämme mit fünf Mutationen (MIC-Bereich: 0,25 – 2,0 µg/ml, Median: 0,5 µg/ml) zeigten signifikant höhere MIC-Werte als Stämme mit drei Mutationen (MIC-Bereich: 0,064 – 0,38 µg/ml, Median: 0,125 µg/ml), aber auch als Meningokokken mit fünf Mutationen (MIC-Bereich: 0,064 – 0,25 µg/ml, Median: 0,125 µg/ml). Eine phylogenetische Analyse aller in der penA-Datenbank hinterlegten Allele zusammen mit den 51 neuen dieser Studie ergab, dass die Allele mit fünf Mutationen unabhängig von der Spezies eine gemeinsame phylogenetische Linie bildeten, während sowohl die Allele mit drei Mutationen (N. lactamica) als auch die ohne Mutationen (N. meningitidis) jeweils eine separate phylogenetische Gruppe formten. Im Rahmen von in vitro-Transformationen mit chromosomaler DNA von N. lactamica konnte der MIC-Wert des Penicillin-sensiblen Meningokokkenstamms 14 in einem single-step-Ereignis durch Übernahme des betreffenden penA-Gens von N. lactamica erhöht werden. Allerdings konnten nur MIC-Werte erreicht werden, die mit intermediär-sensiblen Meningokokken vergleichbar waren und somit weit unter den MIC-Werten der benutzten N. lactamica-Stämme lagen. Dieser Befund legt nahe, dass erhöhte MIC-Werte bei N. lactamica wie auch bei Meningokokken mit Mutationen in der Transpeptidaseregion des PBP2 assoziiert sind. Jedoch sind die im Vergleich zu Meningokokken generell höheren MIC-Werte bei N. lactamica auf andere Faktoren zurückzuführen, die bei N. lactamica eine verminderte Empfindlichkeit gegenüber Penicillin bedingen. In den in vitro-Experimenten der vorliegenden Studie konnten diese Faktoren nicht auf Meningokokken übertragen werden. Demnach kann eine Co-Kolonisation mit N. lactamica zwar die MIC-Werte von Meningokokken erhöhen, das Erreichen von bei N. lactamica beobachteten Resistenzniveaus ist allerdings auf diesem Wege nicht möglich. Es ist somit nicht zu befürchten, dass Meningokokken – wie bei Pneumokokken beobachtet – über kommensale Spezies der gleichen Gattung eine massive Reduktion der Empfindlichkeit gegenüber Penicillin entwickeln werden.
The eradication of infectious agents is an attractive means of disease control that, to date, has been achieved for only one human pathogen, the smallpox virus. The introduction of vaccines against Neisseria meningitidis into immunisation schedules, and particularly the conjugate polysaccharide vaccines which can interrupt transmission, raises the question of whether disease caused by this obligate human bacterium can be controlled, eliminated, or even eradicated. The limited number of meningococcal serogroups, lack of an animal reservoir, and importance of meningococcal disease are considerations in favour of eradication; however, the commensal nature of most infections, the high diversity of meningococcal populations, and the lack of comprehensive vaccines are all factors that suggest that this is not feasible. Indeed, any such attempt might be harmful by perturbing the human microbiome and its interaction with the immune system. On balance, the control and possible elimination of disease caused by particular disease-associated meningococcal genotypes is a more achievable and worthwhile goal.
Background: Alveolar echinococcosis (AE) is caused by the metacestode stage of Echinococcus multilocularis. Differential diagnosis with cystic echinococcosis (CE) caused by E. granulosus and AE is challenging. We aimed at improving diagnosis of AE on paraffin sections of infected human tissue by immunohistochemical testing of a specific antibody.
Methodology/Principal Findings: We have analysed 96 paraffin archived specimens, including 6 cutting needle biopsies and 3 fine needle aspirates, from patients with suspected AE or CE with the monoclonal antibody (mAb) Em2G11 specific for the Em2 antigen of E. multilocularis metacestodes. In human tissue, staining with mAb Em2G11 is highly specific for E. multilocularis metacestodes while no staining is detected in CE lesions. In addition, the antibody detects small particles of E. multilocularis (spems) of less than 1 mm outside the main lesion in necrotic tissue, liver sinusoids and lymphatic tissue most probably caused by shedding of parasitic material. The conventional histological diagnosis based on haematoxylin and eosin and PAS stainings were in accordance with the immunohistological diagnosis using mAb Em2G11 in 90 of 96 samples. In 6 samples conventional subtype diagnosis of echinococcosis had to be adjusted when revised by immunohistology with mAb Em2G11.
Conclusions/Significance: Immunohistochemistry with the mAb Em2G11 is a new, highly specific and sensitive diagnostic tool for AE. The staining of small particles of E. multilocularis (spems) outside the main lesion including immunocompetent tissue, such as lymph nodes, suggests a systemic effect on the host.
Neisseria meningitidis employs polysaccharides and outer membrane proteins to cope with human serum complement attack. To screen for factors influencing serum resistance, an assay was developed based on a colorimetric serum bactericidal assay. The screening used a genetically modified sequence type (ST)-41/44 clonal complex (cc) strain lacking LPS sialylation, polysaccharide capsule, the factor H binding protein (fHbp) and MutS, a protein of the DNA repair mechanism. After killing of >99.9% of the bacterial cells by serum treatment, the colorimetric assay was used to screen 1000 colonies, of which 35 showed enhanced serum resistance. Three mutant classes were identified. In the first class of mutants, enhanced expression of Opc was identified. Opc expression was associated with vitronectin binding and reduced membrane attack complex deposition confirming recent observations. Lipopolysaccharide (LPS) immunotype switch from immunotype L3 to L8/L1 by lgtA and lgtC phase variation represented the second class. Isogenic mutant analysis demonstrated that in ST-41/44 cc strains the L8/L1 immunotype was more serum resistant than the L3 immunotype. Consecutive analysis revealed that the immunotypes L8 and L1 were frequently observed in ST-41/44 cc isolates from both carriage and disease. Immunotype switch to L8/L1 is therefore suggested to contribute to the adaptive capacity of this meningococcal lineage. The third mutant class displayed a pilE allelic exchange associated with enhanced autoaggregation. The mutation of the C terminal hypervariable region D of PilE included a residue previously associated with increased pilus bundle formation. We suggest that autoaggregation reduced the surface area accessible to serum complement and protected from killing. The study highlights the ability of meningococci to adapt to environmental stress by phase variation and intrachromosomal recombination affecting subcapsular antigens.
Acute bacterial meningitis is a life-threatening disease in humans. Discussed as entry sites for pathogens into the brain are the blood-brain and the blood-cerebrospinal fluid barrier (BCSFB). Although human brain microvascular endothelial cells (HBMEC) constitute a well established human in vitro model for the blood-brain barrier, until now no reliable human system presenting the BCSFB has been developed. Here, we describe for the first time a functional human BCSFB model based on human choroid plexus papilloma cells (HIBCPP), which display typical hallmarks of a BCSFB as the expression of junctional proteins and formation of tight junctions, a high electrical resistance and minimal levels of macromolecular flux when grown on transwell filters. Importantly, when challenged with the zoonotic pathogen Streptococcus suis or the human pathogenic bacterium Neisseria meningitidis the HIBCPP show polar bacterial invasion only from the physiologically relevant basolateral side. Meningococcal invasion is attenuated by the presence of a capsule and translocated N. meningitidis form microcolonies on the apical side of HIBCPP opposite of sites of entry. As a functionally relevant human model of the BCSFB the HIBCPP offer a wide range of options for analysis of disease-related mechanisms at the choroid plexus epithelium, especially involving human pathogens.
Introduction: Although there has been a worldwide emergence and spread of methicillin-resistant Staphylococcus aureus (MRSA), little is known about the molecular epidemiology of MRSA in Tanzania.
Methodology: In this study, we characterized MRSA strains isolated from clinical specimens at the Bugando Medical Centre, Tanzania, between January and December 2008. Of 160 S. aureus isolates from 600 clinical specimens, 24 (15%) were found to be MRSA. Besides molecular screening for the Panton Valentine leukocidin (PVL) genes by PCR, MRSA strains were further characterized by Multi-Locus Sequence Typing (MLST) and spa typing.
Results: Despite considerable genetic diversity, the spa types t690 (29.1%) and t7231 (41.6%), as well as the sequence types (ST) 88 (54.2%) and 1797 (29.1%), were dominant among clinical isolates. The PVL genes were detected in 4 isolates; of these, 3 were found in ST 88 and one in ST1820. Resistance to erythromycin, clindamicin, gentamicin, tetracycline and co-trimoxazole was found in 45.8%, 62.5%, 41.6%, 45.8% and 50% of the strains, respectively.
Conclusion: We present the first thorough typing of MRSA at a Tanzanian hospital. Despite considerable genetic diversity, ST88 was dominant among clinical isolates at the Bugando Medical Centre. Active and standardized surveillance of nosocomial MRSA infection should be conducted in the future to analyse the infection and transmission rates and implement effective control measures.
Background: Alveolar echinococcosis, caused by Echinococcus multilocularis larvae, is a chronic disease associated with considerable modulation of the host immune response. Dendritic cells (DC) are key effectors in shaping the immune response and among the first cells encountered by the parasite during an infection. Although it is assumed that E. multilocularis, by excretory/secretory (E/S)-products, specifically affects DC to deviate immune responses, little information is available on the molecular nature of respective E/S-products and their mode of action. Methodology/Principal Findings: We established cultivation systems for exposing DC to live material from early (oncosphere), chronic (metacestode) and late (protoscolex) infectious stages. When co-incubated with Echinococcus primary cells, representing the invading oncosphere, or metacestode vesicles, a significant proportion of DC underwent apoptosis and the surviving DC failed to mature. In contrast, DC exposed to protoscoleces upregulated maturation markers and did not undergo apoptosis. After pre-incubation with primary cells and metacestode vesicles, DC showed a strongly impaired ability to be activated by the TLR ligand LPS, which was not observed in DC pre-treated with protoscolex E/S-products. While none of the larvae induced the secretion of pro-inflammatory IL-12p70, the production of immunosuppressive IL-10 was elevated in response to primary cell E/S-products. Finally, upon incubation with DC and naive T-cells, E/S-products from metacestode vesicles led to a significant expansion of Foxp3+ T cells in vitro. Conclusions: This is the first report on the induction of apoptosis in DC by cestode E/S-products. Our data indicate that the early infective stage of E. multilocularis is a strong inducer of tolerance in DC, which is most probably important for generating an immunosuppressive environment at an infection phase in which the parasite is highly vulnerable to host attacks. The induction of CD4+CD25+Foxp3+ T cells through metacestode E/S-products suggests that these cells fulfill an important role for parasite persistence during chronic echinococcosis.
Alveolar echinococcosis (AE) is a severe and life-threatening disease caused by the metacestode larva of the fox-tapeworm Echinococcus multilocularis. Parasite entry into the host evokes an early and potentially parasiticidal Th1 immune response that is gradually replaced by a permissive Th2 response. An immunoregulatory environment has also been reported in the host as the disease progresses. As a result of immunomodulation, E. multilocularis larvae persist in the host for decades without being expelled, and thus almost act like a perfect transplant. Very little is currently known on the molecular basis of the host immunomodulation by E. multilocularis. In this work, in vitro cultivation systems were used to assess the influence of metabolites released by the parasite larvae (E/S products) on host immune effector cells. E/S products of cultivated larvae that respresent the early (primary cells) and chronic (metacestode vesicles) phase of AE induced apoptosis and tolerogenic properties (poor responsiveness to LPS stimulation) in host dendritic cells (DC) whereas those of control larvae (protoscoleces) failed to do so. These findings show that the early infective stage of E. multilocularis induces tolerogenicity in host DC, which is most probably important for generating an immunosuppressive environment at an infection phase in which the parasite is highly vulnerable to host attacks. Interestingly, metacestode E/S products promoted the conversion of naïve CD4+ T-cells into Foxp3+ regulatory T-cells in vitro, whereas primary cell and protoscolex E/S products failed to do it. Since Foxp3+ regulatory T-cells are generally known to mediate immunosuppression, the present finding indicates that Foxp3+ regulatory T-cells, expanded by E/S products of the metacestode larva, could play a role in the parasite-driven immunomodulation of the host observed during AE. Furthermore, a substantial increase in number and frequency of suppressive Foxp3+ regulatory T-cells could be observed within peritoneal exudates of mice following intraperitoneal injection of E. multilocularis metacestodes, indicating that Foxp3+ regulatory T-cells could also play an important role in E. multilocularis-driven immunomodulation in vivo. Interestingly, a parasite activin ortholog, EmACT, secreted by metacestodes, was shown to expand host regulatory T-cells in a TGF-β-dependent manner, similarly to mammalian activin A. This observation indicated that E. multilocularis utilizes evolutionarily conserved TGF-β superfamily ligands, like EmACT, to expand host regulatory T-cells. Taken together, the present findings suggest EmACT, a parasite activin secreted by the metacestode and capable of expanding host regulatory T-cells, as an important player in the host immunomodulation by E. multilocularis larvae. Another parasite factor EmTIP, homologous to mammalian T-cell immunomodulatory protein (TIP) was characterized in this work. EmTIP could be detected in the secretions of the parasite primary cells and localized to the intercellular space within the parasite larvae. EmTIP blockade inhibited the proliferation of E. multilocularis primary cells and the formation of metacestode vesicles indicating a major role for parasite development. Furthermore, EmTIP evoked a strong release of IFN-γ by CD4+ T-cells hence suggesting that the secretion of this factor as a result of its role in parasite development could “secondarily” induce a potentially protective Th1 response. In conclusion, this work identified two molecules, EmACT and EmTIP, with high immunomodulatory potential that are released by E. multilocularis larvae. The data presented do provide insights into the mechanisms of parasite-driven host immunomodulation during AE that are highly relevant for the development of anti-parasitic immune therapies.
Entry of Neisseria meningitidis (the meningococcus) into human brain microvascular endothelial cells (HBMEC) is mediated by fibronectin or vitronectin bound to the surface protein Opc forming a bridge to the respective integrins. This interaction leads to cytoskeletal rearrangement and uptake of meningococci. In this study, we determined that the focal adhesion kinase (FAK), which directly associates with integrins, is involved in integrin-mediated internalization of N. meningitidis in HBMEC. Inhibition of FAK activity by the specific FAK inhibitor PF 573882 reduced Opc-mediated invasion of HBMEC more than 90%. Moreover, overexpression of FAK mutants that were either impaired in the kinase activity or were not capable of autophosphorylation or overexpression of the dominant-negative version of FAK (FRNK) blocked integrin-mediated internalization of N. meningitidis. Importantly, FAK-deficient fibroblasts were significantly less invaded by N. meningitidis. Furthermore, N. meningitidis induced tyrosine phosphorylation of several host proteins including the FAK/Src complex substrate cortactin. Inhibition of cortactin expression by siRNA silencing and mutation of critical amino acid residues within cortactin, that encompass Arp2/3 association and dynamin binding, significantly reduced meningococcal invasion into eukaryotic cells suggesting that both domains are critical for efficient uptake of N. meningitidis into eukaryotic cells. Together, these results indicate that N. meningitidis exploits the integrin signal pathway for its entry and that FAK mediates the transfer of signals from activated integrins to the cytoskeleton. A cooperative interplay between FAK, Src and cortactin then enables endocytosis of N. meningitidis into host cells.
Cytosine methylation is a conserved epigenetic feature found throughout the phylum Platyhelminthes
(2013)
Background: The phylum Platyhelminthes (flatworms) contains an important group of bilaterian organisms responsible for many debilitating and chronic infectious diseases of human and animal populations inhabiting the planet today. In addition to their biomedical and veterinary relevance, some platyhelminths are also frequently used models for understanding tissue regeneration and stem cell biology. Therefore, the molecular (genetic and epigenetic) characteristics that underlie trophic specialism, pathogenicity or developmental maturation are likely to be pivotal in our continued studies of this important metazoan group. Indeed, in contrast to earlier studies that failed to detect evidence of cytosine or adenine methylation in parasitic flatworm taxa, our laboratory has recently defined a critical role for cytosine methylation in Schistosoma mansoni oviposition, egg maturation and ovarian development. Thus, in order to identify whether this epigenetic modification features in other platyhelminth species or is a novelty of S. mansoni, we conducted a study simultaneously surveying for DNA methylation machinery components and DNA methylation marks throughout the phylum using both parasitic and non-parasitic representatives.
Results: Firstly, using both S. mansoni DNA methyltransferase 2 (SmDNMT2) and methyl-CpG binding domain protein (SmMBD) as query sequences, we illustrate that essential DNA methylation machinery components are well conserved throughout the phylum. Secondly, using both molecular (methylation specific amplification polymorphism, MSAP) and immunological (enzyme-linked immunoabsorbent assay, ELISA) methodologies, we demonstrate that representative species (Echinococcus multilocularis, Protopolystoma xenopodis, Schistosoma haematobium, Schistosoma japonicum, Fasciola hepatica and Polycelis nigra) within all four platyhelminth classes (Cestoda, Monogenea, Trematoda and 'Turbellaria') contain methylated cytosines within their genome compartments.
Conclusions: Collectively, these findings provide the first direct evidence for a functionally conserved and enzymatically active DNA methylation system throughout the Platyhelminthes. Defining how this epigenetic feature shapes phenotypic diversity and development within the phylum represents an exciting new area of metazoan biology.
Human alveolar echinococcosis (AE) is a potentially deadly disease; recent studies have shown that the endemic area of Echinococcus multilocularis, its causative agent, is larger than previously known. This disease has low prevalence and remains underreported in Europe. Emerging clinical data show that diagnostic difficulties are still common. We report on a 76-year old patient suffering from AE lesions restricted to the left lobe of the liver who underwent a curative extended left hemihepatectomy. Prior to the resection a liver biopsy under the suspicion of an atypical malignancy was performed. After the intervention he developed a pseudoaneurysm of the hepatic artery that was successfully coiled. Surprisingly, during surgery, the macroscopic appearance of the tumour revealed a growth pattern that was rather typical for cystic echinococcosis (CE), i.e., a gross tumour composed of multiple large vesicles with several centimeters in diameter. In addition, there were neither extensive adhesions nor infiltrations of the neighboring pancreas and diaphragm as was expected from previous imaging results. The unexpected diagnosis of AE was confirmed by definite histopathology, specific polymerase chain reaction and serology results. This is a rare case of unusual macroscopic presentation of AE that posed immense diagnostic challenges and had an eventful course. To our knowledge this is the first case of an autochthonous infection in this particular geographic area of Germany, the federal state of Saxony. This report may provide new hints for an expanding area of risk for AE and emphasizes the risk of complications in the scope of diagnostic procedures and the limitations of modern radiological imaging.
Pathogenic Neisseria meningitidis isolates contain a polysaccharide capsule that is the main virulence determinant for this bacterium. Thirteen capsular polysaccharides have been described, and nuclear magnetic resonance spectroscopy has enabled determination of the structure of capsular polysaccharides responsible for serogroup specificity. Molecular mechanisms involved in N. meningitidis capsule biosynthesis have also been identified, and genes involved in this process and in cell surface translocation are clustered at a single chromosomal locus termed cps. The use of multiple names for some of the genes involved in capsule synthesis, combined with the need for rapid diagnosis of serogroups commonly associated with invasive meningococcal disease, prompted a requirement for a consistent approach to the nomenclature of capsule genes. In this report, a comprehensive description of all N. meningitidis serogroups is provided, along with a proposed nomenclature, which was presented at the 2012 XVIIIth International Pathogenic Neisseria Conference.
Staphylococcus aureus is a frequent human commensal bacterium and pathogen. Here we report the complete genome sequence of strain 6850 (spa type t185; sequence type 50 [ST50]), a highly cytotoxic and clinically virulent methicillin-sensitive strain from a patient with complicated S. aureus bacteremia associated with osteomyelitis and septic arthritis.
Background
The metacestode larva of Echinococcus multilocularis (Cestoda: Taeniidae) develops in the liver of intermediate hosts (typically rodents, or accidentally in humans) as a labyrinth of interconnected cysts that infiltrate the host tissue, causing the disease alveolar echinococcosis. Within the cysts, protoscoleces (the infective stage for the definitive canid host) arise by asexual multiplication. These consist of a scolex similar to that of the adult, invaginated within a small posterior body. Despite the importance of alveolar echinococcosis for human health, relatively little is known about the basic biology, anatomy and development of E. multilocularis larvae, particularly with regard to their nervous system.
Results
We describe the existence of a subtegumental nerve net in the metacestode cysts, which is immunoreactive for acetylated tubulin-α and contains small populations of nerve cells that are labeled by antibodies raised against several invertebrate neuropeptides. However, no evidence was found for the existence of cholinergic or serotoninergic elements in the cyst wall. Muscle fibers occur without any specific arrangement in the subtegumental layer, and accumulate during the invaginations of the cyst wall that form brood capsules, where protoscoleces develop. The nervous system of the protoscolex develops independently of that of the metacestode cyst, with an antero-posterior developmental gradient. The combination of antibodies against several nervous system markers resulted in a detailed description of the protoscolex nervous system, which is remarkably complex and already similar to that of the adult worm.
Conclusions
We provide evidence for the first time of the existence of a nervous system in the metacestode cyst wall, which is remarkable given the lack of motility of this larval stage, and the lack of serotoninergic and cholinergic elements. We propose that it could function as a neuroendocrine system, derived from the nervous system present in the bladder tissue of other taeniids. The detailed description of the development and anatomy of the protoscolex neuromuscular system is a necessary first step toward the understanding of the developmental mechanisms operating in these peculiar larval stages.
Neisseria meningitidis is a facultative human pathogen that occasionally shows strong resistance against serum complement exposure. Previously described factors that mediate meningococcal serum resistance are for example the capsule, LPS sialylation, and expression of the factor H binding protein. I aimed for identification of novel serum resistance factors, thereby following two approaches, i) the analysis of the impact of global regulators of gene expression on serum resistance; and ii) a comparative analysis of closely related strains differing in serum resistance. (i) Of six meningococcal global regulators of gene expression studied, only mutation of the zinc uptake regulator Zur reduced complement deposition on meningococci. Little was known about meningococcal Zur and regulatory processes in response to zinc. I therefore elucidated the yet unidentified meningococcal Zur regulon comparing the transcriptional response of the N. meningitidis strain MC58 under zinc-rich and zinc-deficient conditions using a common reference design of microarray analysis. The meningococcal Zur regulon comprises 17 genes, of which 15 genes were repressed and two genes were activated at high zinc condition. Amongst the Zur-repressed genes were genes involved in zinc uptake, tRNA modification, and ribosomal assembly. A 23 bp meningococcal consensus Zur binding motif (Zur box) with a conserved central palindrome was established (TGTTATDNHATAACA) and detected in the promoter region of all regulated transcriptional units (genes/operons). In vitro binding of meningococcal Zur to the Zur box of three selected genes was shown for the first time using EMSAs. Binding of meningococcal Zur to DNA depended specifically on zinc, and mutations in the palindromic sequence constrained Zur binding to the DNA motif. ii) Three closely related strains of ST-41/44 cc from invasive disease and carriage which differed in their resistance to serum complement exposure were analysed to identify novel mediators of serum resistance. I compared the strains’ gene content by microarray analysis which revealed six genes being present in both carrier isolates, but absent in the invasive isolate. Four of them are part of two Islands of horizontally transferred DNA, i.e. IHT-B and –C. The working group furthermore applied a comprehensive screening assay, a transcriptome and a proteome analysis leading to identification of three target proteins. I contributed to establish the role of these three proteins in serum resistance: The adhesin Opc mediates serum resistance by binding of vitronectin, a negative regulator of the complement system; the hypothetical protein NMB0865 slightly contributes to serum resistance by a yet unknown mechanism; and NspA, recently identified to bind the negative complement regulator factor H, led to considerable reduced complement-mediated killing.
Neisseria meningitidis ist ein wichtiger Erreger von Meningitis und Sepsis insbesondere bei jungen Menschen, gleichzeitig sind hohe Raten asymptomatischen Trägertums bekannt. Als die Virulenz begünstigende Faktoren wurden unter anderem die Kapsel, Pili, äußere Membranvesikel (OMV) und Lipopolysaccharid (LPS) identifiziert, die es dem Erreger erleichtern, das menschliche Immunsystem zu überwinden.
Dabei war bisher die Rolle von Neutrophil Extracellular Traps (NETs) als neu beschriebene Komponente der angeborenen Immunantwort nicht untersucht worden. NETs stellen spinnennetzartige DNA-Strukturen mit globulären Proteindomänen dar, die aus neutrophilen Granulozyten entstehen und als antimikrobiell gelten. Ziel dieser Arbeit war es, die Wirkung von NETs auf Meningokokken zu charakterisieren und mögliche Resistenzmechanismen der Bakterien zu identifizieren.
In den vorliegenden Versuchen konnte gezeigt werden, dass Meningokokken an NETs binden und durch diese in ihrer Proliferation gehemmt werden. Eine Lokalisation der Bakterien an die NETs konnte dargestellt werden, LPS und Pili wurden als wichtige Strukturen für die Vermittlung der NET-Bindung identifiziert. OMVs zeigten sich als protektiv gegenüber dem Einfluss der NETs, indem sie die Bindung der Erreger an die NETs blockierten.
Wenig empfindlich zeigten sich die Bakterien gegenüber Histonen als den quantitativ bedeutsamsten NET-Proteinen. Meningokokken schützen sich gegenüber dem Einfluss der NETs durch Ausbildung von Kapsel und LPS mit intakter Phosphoethanolamin-Modifikation. Ebenso vermitteln zwei Cathelicidin-Resistenzgene den Bakterien einen Überlebensvorteil. Keine Rolle bei der NET-Resistenz spielten die untersuchten Effluxmechanismen.
Neuere Untersuchungen von Lappann et al. indentifizierten Meningokokken und OMVs als potente NET-Induktoren. Damit könnten durch die relativ NET-resistenten Mikroorganismen andere Abwehrmechanismen der Neutrophilen konterkariert werden und eine Immunevasion begünstigt werden. Genauere Untersuchungen diesbezüglich stehen noch aus.
Background
Published models predicting nasal colonization with Methicillin-resistant Staphylococcus aureus among hospital admissions predominantly focus on separation of carriers from non-carriers and are frequently evaluated using measures of discrimination. In contrast, accurate estimation of carriage probability, which may inform decisions regarding treatment and infection control, is rarely assessed. Furthermore, no published models adjust for MRSA prevalence.
Methods
Using logistic regression, a scoring system (values from 0 to 200) predicting nasal carriage of MRSA was created using a derivation cohort of 3091 individuals admitted to a European tertiary referral center between July 2007 and March 2008. The expected positive predictive value of a rapid diagnostic test (GeneOhm, Becton & Dickinson Co.) was modeled using non-linear regression according to score. Models were validated on a second cohort from the same hospital consisting of 2043 patients admitted between August 2008 and January 2012. Our suggested correction score for prevalence was proportional to the log-transformed odds ratio between cohorts. Calibration before and after correction, i.e. accurate classification into arbitrary strata, was assessed with the Hosmer-Lemeshow-Test.
Results
Treating culture as reference, the rapid diagnostic test had positive predictive values of 64.8% and 54.0% in derivation and internal validation corhorts with prevalences of 2.3% and 1.7%, respectively. In addition to low prevalence, low positive predictive values were due to high proportion (> 66%) of mecA-negative Staphylococcus aureus among false positive results. Age, nursing home residence, admission through the medical emergency department, and ICD-10-GM admission diagnoses starting with “A” or “J” were associated with MRSA carriage and were thus included in the scoring system, which showed good calibration in predicting probability of carriage and the rapid diagnostic test’s expected positive predictive value. Calibration for both probability of carriage and expected positive predictive value in the internal validation cohort was improved by applying the correction score.
Conclusions
Given a set of patient parameters, the presented models accurately predict a) probability of nasal carriage of MRSA and b) a rapid diagnostic test’s expected positive predictive value. While the former can inform decisions regarding empiric antibiotic treatment and infection control, the latter can influence choice of screening method.
Background
Occupational exposure to live meningococci can potentially cause invasive meningococcal disease in laboratory staff. While, until recently, immunization with quadrivalent polysaccharide vaccine represented one cornerstone of protection, data on long-term persistence of antibodies in adults remain scarce.
Methods
We analyzed the relationship of antibody levels and time following quadrivalent polysaccharide vaccination (Mencevax® ACWY, GlaxoSmithKline) in a cross-sectional sample of 20 laboratory workers vaccinated at ages between 16.4 to 40.7 years from Germany. Sera were obtained 0.4 to 158.5 (median 35.3) months after vaccination. At the time of sampling, laboratory workers had been regularly exposed to meningococci for periods between 3.2 to 163.8 (median 41.2) months. Serum bactericidal assay (SBA) with rabbit complement and a microsphere-based flow analysis method were used to determine bactericidal titers and concentrations of IgG, respectively, against serogroups A, C, W135, and Y. Decay of antibodies was modeled using linear regression. Protective levels were defined as SBA titers ≥ 8.
Results
Half-lives of SBA titers against serogroups A, C, W135, and Y were estimated at 27.4, 21.9, 18.8, and 28.0 months, respectively. Average durations of protection were estimated at 183.9, 182.0, 114.6, and 216.4 months, respectively. Inter-individual variation was high; using lower margins of 95% prediction intervals, minimal durations of protection against serogroups A, C, W135 and Y were estimated at 33.5, 24.6, 0.0, and 55.1 months, respectively. The proportion of staff with protective SBA titers against W135 (65.0%) was significantly lower than proportions protected against A (95.0%), C (94.7%), and Y (95.0%). Consistently, geometric mean titer (97.0) and geometric mean concentration of IgG (2.1 μg/ml) was lowest against serogroup W135. SBA titers in a subset of individuals with incomplete protection rose to ≥ 128 (≥ 8 fold) after reimmunization with a quadrivalent glycoconjugate vaccine.
Conclusions
The average duration of protection following immunization with a quadrivalent polysaccharide vaccine in adults was ≥ 115 months regardless of serogroup. A substantial proportion (approximately 23% according to our decay model) of adult vaccinees may not retain protection against serogroup W135 for five years, the time suggested for reimmunization.
Flatworm parasites (platyhelminths) cause serious infection diseases in humans, such as schistosomiasis and hydatid disease, mainly prevalent in developing countries. However, the current repertoire of drug armamentarium used to combat flatworm infections is limited. For instance, praziquantel is the only drug available for mass treatment of Schistosoma infections. In contrast to their hosts, flatworm parasites possess a distinct redox arrangement of redox pathways in which the selenoenzyme thioredoxin glutathione reductase (TGR) controls the overall redox homeostasis. Interference with this enzyme leads to parasite death. Hence, this key redox enzyme seems to be a new promising drug target against flatworm infections.
Because most flatworms are difficult to cultivate in the laboratory (e.g. Echinococcus granulosus experimental infection in mice takes about 10 month to develop into cysts), this work was focused on Mesocestoides vogae (syn. corti), a non-human flatworm parasite which is an interesting laboratory model to study other flatworm infections: it is very rare in humans, can be easily manipulated both in vivo and in vitro and grows extremely fast in mice. With the aim to assess TGR inhibitors as possible drugs to treat flatworm infections, the thioredoxin and glutathione pathways of M.vogae were studied. Here, the objectives were to study whether the biochemical pathways that maintain the redox homeostasis in M. vogae conform to the general biochemical scenario proposed for other platyhelminth parasites.
Here, it was proven that M. vogae extracts possess both thioredoxin and glutathione reductase activities. The thioredoxin and glutathione reductase activities were partially purified from total extracts by a combination of ammonium sulfate precipitation, anion exchange and hydroxyapatite chromatography. Both activities co-purified in all steps which strongly indicates the existence of TGR rather than a single TR and GR. Furthermore partially purified activities could be inhibited by the organogold compound auranofin, a known TGR inhibitor. Moreover, the glutathione reductase activity displays hysteresis (a peculiar kinetic behavior) at high concentrations of oxidised glutathione, a feature typical of flatworm TGRs, but not of conventional GR. Although M. vogae activities could not be purified to homogeneity, the overall results strongly indicate that this flatworm possesses TGR and lacks conventional GR and TR.
Furthermore the thiadiazole WPQ75 and the N-oxide VL16E (a furoxan derivate) were identified as inhibitors of TGR activity of M.vogae at a 10 µM concentration. These inhibitors were able to kill M.vogae larval worms in vitro as well as in experimental infection in mice.
Due to the existence of TGR activity in M.vogae, the possibility to inhibit this activity with recently discovered inhibitors of flatworm TGR and the successes achieved by testing these inhibitors both in vitro and in vivo, it is strongly evident that M. vogae would be an excellent model to assess TGR inhibitors in flatworm infections.
Background
Alveolar echinococcosis (AE), caused by the metacestode of the tapeworm Echinococcus multilocularis, is a lethal zoonosis associated with host immunomodulation. T helper cells are instrumental to control the disease in the host. Whereas Th1 cells can restrict parasite proliferation, Th2 immune responses are associated with parasite proliferation. Although the early phase of host colonization by E. multilocularis is dominated by a potentially parasitocidal Th1 immune response, the molecular basis of this response is unknown.
Principal Findings
We describe EmTIP, an E. multilocularis homologue of the human T-cell immunomodulatory protein, TIP. By immunohistochemistry we show EmTIP localization to the intercellular space within parasite larvae. Immunoprecipitation and Western blot experiments revealed the presence of EmTIP in the excretory/secretory (E/S) products of parasite primary cell cultures, representing the early developing metacestode, but not in those of mature metacestode vesicles. Using an in vitro T-cell stimulation assay, we found that primary cell E/S products promoted interferon (IFN)-γ release by murine CD4+ T-cells, whereas metacestode E/S products did not. IFN-γ release by T-cells exposed to parasite products was abrogated by an anti-EmTIP antibody. When recombinantly expressed, EmTIP promoted IFN-γ release by CD4+ T-cells in vitro. After incubation with anti-EmTIP antibody, primary cells showed an impaired ability to proliferate and to form metacestode vesicles in vitro.
Conclusions
We provide for the first time a possible explanation for the early Th1 response observed during E. multilocularis infections. Our data indicate that parasite primary cells release a T-cell immunomodulatory protein, EmTIP, capable of promoting IFN-γ release by CD4+ T-cells, which is probably driving or supporting the onset of the early Th1 response during AE. The impairment of primary cell proliferation and the inhibition of metacestode vesicle formation by anti-EmTIP antibodies suggest that this factor fulfills an important role in early E. multilocularis development within the intermediate host.
BACKGROUND:
Campylobacteriosis, a zoonotic bacterial disease observed world-wide, is becoming the most commonly recognized cause of bacterial gastroenteritis in humans. This study was done to determine the prevalence and determinants of Campylobacter infection among under-fives with acute watery diarrhea in Mwanza City, Tanzania.
METHOD:
This cross-sectional hospital-based study was conducted at Bugando Medical Centre (BMC) and Sekou Toure Hospital in Mwanza City. All inpatients and outpatients under-fives who met the inclusion criteria from October 2012 to April 2013 were enrolled in the study. Demographic and clinical data were obtained using standardized data collection tools. Stool samples were collected for gram staining and culture for Campylobacter spp. on Preston selective agar media. In addition, blood slides for malaria and HIV tests were done to all patients.
RESULTS:
A total of 300 children were enrolled with a median age of 12 [interquartile range, 8-19] months. Of these, 169 (56.5%) were from BMC and 131 (43.7%) from Sekou-Toure hospital. One hundred and seventy (56.7%) of the participating children were male. Of 300 under-fives with acute watery diarrhea, 29 patients (9.7%) were found to have Campylobacter infection. A significant higher number of children with Campylobacter infection were found in Sekou Toure hospital compared to BMC [16.0% (21/29) versus 4.7% (8/29), p = 0.002)]. Age above 2 years was independently found to predict campylobacter infection (OR: 2.9, 95% CI 1.1-7.7, p = 0.0037). Of 30 patients with a positive blood slide for Plasmodium falciparum, 20.0% were also positive for Campylobacter infection (OR: 3.9, 95% CI 1.2-10.1, p = 0.021).
CONCLUSION:
Campylobacter infection shows a comparatively low prevalence in under-fives with acute watery diarrhea in Mwanza city and is independently associated with positive slides for malaria and an age above 2 years. Further studies are needed to type the most prevalent Campylobacter species and to determine their antibiotic susceptibility pattern.
New vaccines targeting meningococci expressing serogroup B polysaccharide have been developed, with some being licensed in Europe. Coverage depends on the distribution of disease-associated genotypes, which may vary by age. It is well established that a small number of hyperinvasive lineages account for most disease, and these lineages are associated with particular antigens, including vaccine candidates. A collection of 4,048 representative meningococcal disease isolates from 18 European countries, collected over a 3-year period, were characterized by multilocus sequence typing (MLST). Age data were available for 3,147 isolates. The proportions of hyperinvasive lineages, identified as particular clonal complexes (ccs) by MLST, differed among age groups. Subjects <1 year of age experienced lower risk of sequence type 11 (ST-11) cc, ST-32 cc, and ST-269 cc disease and higher risk of disease due to unassigned STs, 1- to 4-year-olds experienced lower risk of ST-11 cc and ST-32 cc disease, 5- to 14-year-olds were less likely to experience ST-11 cc and ST-269 cc disease, and ≥25-year-olds were more likely to experience disease due to less common ccs and unassigned STs. Younger and older subjects were vulnerable to a more diverse set of genotypes, indicating the more clonal nature of genotypes affecting adolescents and young adults. Knowledge of temporal and spatial diversity and the dynamics of meningococcal populations is essential for disease control by vaccines, as coverage is lineage specific. The nonrandom age distribution of hyperinvasive lineages has consequences for the design and implementation of vaccines, as different variants, or perhaps targets, may be required for different age groups.
Haemophilus influenzae is a Gram-negative bacillus and a frequent commensal of the human nasopharynx. Earlier work demonstrated that in H. influenzae type b, l-lactate metabolism is associated with serum resistance and in vivo survival of the organism. To further gain insight into lactate utilization of the non-typeable (NTHi) isolate 2019 and laboratory prototype strain Rd KW20, deletion mutants of the l-lactate dehydrogenase (lctD) and permease (lctP) were generated and characterized. It is shown, that the apparent KM of l-lactate uptake is 20.1μM as determined for strain Rd KW20. Comparison of the COPD isolate NTHi 2019-R with the corresponding lctP knockout strain for survival in human serum revealed no lactate dependent serum resistance. In contrast, we observed a 4-fold attenuation of the mutant strain in a murine model of nasopharyngeal colonization. Characterization of lctP transcriptional control shows that the lactate utilization system in H. influenzae is not an inductor inducible system. Rather negative feedback regulation was observed in the presence of l-lactate and this is dependent on the ArcAB regulatory system. Additionally, for 2019 it was found that lactate may have signaling function leading to increased cell growth in late log phase under conditions where no l-lactate is metabolized. This effect seems to be ArcA independent and was not observed in strain Rd KW20. We conclude that l-lactate is an important carbon-source and may act as host specific signal substrate which fine tunes the globally acting ArcAB regulon and may additionally affect a yet unknown signaling system and thus may contribute to enhanced in vivo survival.
The life-threatening diseases alveolar and cystic echinococcoses are caused by larvae of the tapeworms Echinococcus multilocularis and E. granulosus, respectively. In both cases, intermediate hosts, such as humans, are infected by oral uptake of oncosphere larvae, followed by asexual multiplication and almost unrestricted growth of the metacestode within host organs. Besides surgery, echinococcosis treatment relies on benzimidazole-based chemotherapy, directed against parasite beta-tubulin. However, since beta-tubulins are highly similar between cestodes and humans, benzimidazoles can only be applied at parasitostatic doses and are associated with adverse side effects. Mostly aiming at identifying alternative drug targets, the nuclear genome sequences of E. multilocularis and E. granulosus have recently been characterized, revealing a large number of druggable targets that are expressed by the metacestode. Furthermore, recent cell biological investigations have demonstrated that E. multilocularis employs pluripotent stem cells, called germinative cells, which are the only parasite cells capable of proliferation and which give rise to all differentiated cells. Hence, the germinative cells are the crucial cell type mediating proliferation of E. multilocularis, and most likely also E. granulosus, within host organs and should also be responsible for parasite recurrence upon discontinuation of chemotherapy. Interestingly, recent investigations have also indicated that germinative cells might be less sensitive to chemotherapy because they express a beta-tubulin isoform with limited affinity to benzimidazoles. In this article, we briefly review the recent findings concerning Echinococcus genomics and stem cell research and propose that future research into anti-echinococcosis drugs should also focus on the parasite’s stem cell population.
A longstanding question in infection biology addresses the genetic basis for invasive behavior in commensal pathogens. A prime example for such a pathogen is Neisseria meningitidis. On the one hand it is a harmless commensal bacterium exquisitely adapted to humans, and on the other hand it sometimes behaves like a ferocious pathogen causing potentially lethal disease such as sepsis and acute bacterial meningitis. Despite the lack of a classical repertoire of virulence genes in N. meningitidis separating commensal from invasive strains, molecular epidemiology suggests that carriage and invasive strains belong to genetically distinct populations. In recent years, it has become increasingly clear that metabolic adaptation enables meningococci to exploit host resources, supporting the concept of nutritional virulence as a crucial determinant of invasive capability. Here, we discuss the contribution of core metabolic pathways in the context of colonization and invasion with special emphasis on results from genome-wide surveys. The metabolism of lactate, the oxidative stress response, and, in particular, glutathione metabolism as well as the denitrification pathway provide examples of how meningococcal metabolism is intimately linked to pathogenesis. We further discuss evidence from genome-wide approaches regarding potential metabolic differences between strains from hyperinvasive and carriage lineages and present new data assessing in vitro growth differences of strains from these two populations. We hypothesize that strains from carriage and hyperinvasive lineages differ in the expression of regulatory genes involved particularly in stress responses and amino acid metabolism under infection conditions.
Targeting Echinococcus multilocularis Stem Cells by Inhibition of the Polo-Like Kinase EmPlk1
(2014)
Background
Alveolar echinococcosis (AE) is a life-threatening disease caused by larvae of the fox-tapeworm Echinococcus multilocularis. Crucial to AE pathology is continuous infiltrative growth of the parasite's metacestode stage, which is driven by a population of somatic stem cells, called germinative cells. Current anti-AE chemotherapy using benzimidazoles is ineffective in eliminating the germinative cell population, thus leading to remission of parasite growth upon therapy discontinuation.
Methodology/Principal findings
We herein describe the characterization of EmPlk1, encoded by the gene emplk1, which displays significant homologies to members of the Plk1 sub-family of Polo-like kinases that regulate mitosis in eukaryotic cells. We demonstrate germinative cell-specific expression of emplk1 by RT-PCR, transcriptomics, and in situ hybridization. We also show that EmPlk1 can induce germinal vesicle breakdown when heterologously expressed in Xenopus oocytes, indicating that it is an active kinase. This activity was significantly suppressed in presence of BI 2536, a Plk1 inhibitor that has been tested in clinical trials against cancer. Addition of BI 2536 at concentrations as low as 20 nM significantly blocked the formation of metacestode vesicles from cultivated Echinococcus germinative cells. Furthermore, low concentrations of BI 2536 eliminated the germinative cell population from mature metacestode vesicles in vitro, yielding parasite tissue that was no longer capable of proliferation.
Conclusions/Significance
We conclude that BI 2536 effectively inactivates E. multilocularis germinative cells in parasite larvae in vitro by direct inhibition of EmPlk1, thus inducing mitotic arrest and germinative cell killing. Since germinative cells are decisive for parasite proliferation and metastasis formation within the host, BI 2536 and related compounds are very promising compounds to complement benzimidazoles in AE chemotherapy.
Author Summary
The lethal disease AE is characterized by continuous and infiltrative growth of the metacestode larva of the tapeworm E. multilocularis within host organs. This cancer-like progression is exclusively driven by a population of parasite stem cells (germinative cells) that have to be eliminated for an effective cure of the disease. Current treatment options, using benzimidazoles, are parasitostatic only, and thus obviously not effective in germinative cell killing. We herein describe a novel, druggable parasite enzyme, EmPlk1, that specifically regulates germinative cell proliferation. We show that a compound, BI 2536, originally designed to inhibit the human ortholog of EmPlk1, can also inhibit the parasite protein at low doses. Furthermore, low doses of BI 2536 eliminated germinative cells from Echinococcus larvae in vitro and prevented parasite growth and development. We propose that BI 2536 and related compounds are promising drugs to complement current benzimidazole treatment for achieving parasite killing.
The interaction with brain endothelial cells is central to the pathogenicity of Neisseria meningitidis infections. Here, we show that N. meningitidis causes transient activation of acid sphingomyelinase (ASM) followed by ceramide release in brain endothelial cells. In response to N. meningitidis infection, ASM and ceramide are displayed at the outer leaflet of the cell membrane and condense into large membrane platforms which also concentrate the ErbB2 receptor. The outer membrane protein Opc and phosphatidylcholine-specific phospholipase C that is activated upon binding of the pathogen to heparan sulfate proteoglycans, are required for N. meningitidis-mediated ASM activation. Pharmacologic or genetic ablation of ASM abrogated meningococcal internalization without affecting bacterial adherence. In accordance, the restricted invasiveness of a defined set of pathogenic isolates of the ST-11/ST-8 clonal complex into brain endothelial cells directly correlated with their restricted ability to induce ASM and ceramide release. In conclusion, ASM activation and ceramide release are essential for internalization of Opc-expressing meningococci into brain endothelial cells, and this segregates with invasiveness of N. meningitidis strains.
Author Summary
Neisseria meningitidis, an obligate human pathogen, is a causative agent of septicemia and meningitis worldwide. Meningococcal infection manifests in a variety of forms, including meningitis, meningococcemia with meningitis or meningococcemia without obvious meningitis. The interaction of N. meningitidis with human cells lining the blood vessels of the blood-cerebrospinal fluid barrier is a prerequisite for the development of meningitis. As a major pathogenicity factor, the meningococcal outer membrane protein Opc enhances bacterial entry into brain endothelial cells, however, mechanisms underlying trapping of receptors and signaling molecules following this interaction remained elusive. We now show that Opc-expressing meningococci activate acid sphingomyelinase (ASM) in brain endothelial cells, which hydrolyses sphingomyelin to cause ceramide release and formation of extended ceramide-enriched membrane platforms wherein ErbB2, an important receptor involved in bacterial uptake, clusters. Mechanistically, ASM activation relied on binding of N. meningitidis to its attachment receptor, HSPG, followed by activation of PC-PLC. Meningococcal isolates of the ST-11 clonal complex, which are reported to be more likely to cause severe sepsis, but rarely meningitis, barely invaded brain endothelial cells and revealed a highly restricted ability to induce ASM and ceramide release. Thus, our results unravel a differential activation of the ASM/ceramide system by the species N. meningitidis determining its invasiveness into brain endothelial cells.
The unique stem cell system of the immortal larva of the human parasite Echinococcus multilocularis
(2014)
Background
It is believed that in tapeworms a separate population of undifferentiated cells, the germinative cells, is the only source of cell proliferation throughout the life cycle (similar to the neoblasts of free living flatworms). In Echinococcus multilocularis, the metacestode larval stage has a unique development, growing continuously like a mass of vesicles that infiltrate the tissues of the intermediate host, generating multiple protoscoleces by asexual budding. This unique proliferation potential indicates the existence of stem cells that are totipotent and have the ability for extensive self-renewal.
Results
We show that only the germinative cells proliferate in the larval vesicles and in primary cell cultures that undergo complete vesicle regeneration, by using a combination of morphological criteria and by developing molecular markers of differentiated cell types. The germinative cells are homogeneous in morphology but heterogeneous at the molecular level, since only sub-populations express homologs of the post-transcriptional regulators nanos and argonaute. Important differences are observed between the expression patterns of selected neoblast marker genes of other flatworms and the E. multilocularis germinative cells, including widespread expression in E. multilocularis of some genes that are neoblast-specific in planarians. Hydroxyurea treatment results in the depletion of germinative cells in larval vesicles, and after recovery following hydroxyurea treatment, surviving proliferating cells grow as patches that suggest extensive self-renewal potential for individual germinative cells.
Conclusions
In E. multilocularis metacestodes, the germinative cells are the only proliferating cells, presumably driving the continuous growth of the larval vesicles. However, the existence of sub-populations of the germinative cells is strongly supported by our data. Although the germinative cells are very similar to the neoblasts of other flatworms in function and in undifferentiated morphology, their unique gene expression pattern and the evolutionary loss of conserved stem cells regulators suggest that important differences in their physiology exist, which could be related to the unique biology of E. multilocularis larvae.
Background
The metacestode of the tapeworm Echinococcus multilocularis is the causative agent of alveolar echinococcosis, a lethal zoonosis. Infections are initiated through establishment of parasite larvae within the intermediate host’s liver, where high concentrations of insulin are present, followed by tumour-like growth of the metacestode in host organs. The molecular mechanisms determining the organ tropism of E. multilocularis or the influences of host hormones on parasite proliferation are poorly understood.
Results
Using in vitro cultivation systems for parasite larvae we show that physiological concentrations (10 nM) of human insulin significantly stimulate the formation of metacestode larvae from parasite stem cells and promote asexual growth of the metacestode. Addition of human insulin to parasite larvae led to increased glucose uptake and enhanced phosphorylation of Echinococcus insulin signalling components, including an insulin receptor-like kinase, EmIR1, for which we demonstrate predominant expression in the parasite’s glycogen storage cells. We also characterized a second insulin receptor family member, EmIR2, and demonstrated interaction of its ligand binding domain with human insulin in the yeast two-hybrid system. Addition of an insulin receptor inhibitor resulted in metacestode killing, prevented metacestode development from parasite stem cells, and impaired the activation of insulin signalling pathways through host insulin.
Conclusions
Our data indicate that host insulin acts as a stimulant for parasite development within the host liver and that E. multilocularis senses the host hormone through an evolutionarily conserved insulin signalling pathway. Hormonal host-parasite cross-communication, facilitated by the relatively close phylogenetic relationship between E. multilocularis and its mammalian hosts, thus appears to be important in the pathology of alveolar echinococcosis. This contributes to a closer understanding of organ tropism and parasite persistence in larval cestode infections. Furthermore, our data show that Echinococcus insulin signalling pathways are promising targets for the development of novel drugs.
Taeniid cestodes (including the human parasites Echinococcus spp. and Taenia solium) have very few mobile genetic elements (MGEs) in their genome, despite lacking a canonical PIWI pathway. The MGEs of these parasites are virtually unexplored, and nothing is known about their expression and silencing. In this work, we report the discovery of a novel family of small nonautonomous long terminal repeat retrotransposons (also known as terminal-repeat retrotransposons in miniature, TRIMs) which we have named ta-TRIM (taeniid TRIM). ta-TRIMs are only the second family of TRIM elements discovered in animals, and are likely the result of convergent reductive evolution in different taxonomic groups. These elements originated at the base of the taeniid tree and have expanded during taeniid diversification, including after the divergence of closely related species such as Echinococcus multilocularis and Echinococcus granulosus. They are massively expressed in larval stages, from a small proportion of full-length copies and from isolated terminal repeats that show transcriptional read-through into downstream regions, generating novel noncoding RNAs and transcriptional fusions to coding genes. In E. multilocularis, ta-TRIMs are specifically expressed in the germinative cells (the somatic stem cells) during asexual reproduction of metacestode larvae. This would provide a developmental mechanism for insertion of ta-TRIMs into cells that will eventually generate the adult germ line. Future studies of active and inactive ta-TRIM elements could give the first clues on MGE silencing mechanisms in cestodes.
Alveolar and cystic echinococcosis, caused by Echinococcus multilocularis and Echinococcus
granulosus respectively, are severe zoonotic diseases with limited treatment
options. The sole curative treatment is the surgical removal of the complete parasite
material. Due to late diagnosis, chemotherapeutic treatment often is the only treatment
option. Treatment is based on benzimidazoles, which merely act parasitostatic
and often display strong side effects. Therefore, new therapeutic drugs are urgently
needed.
Evolutionarily conserved signalling pathways are known to be involved in hostparasite
cross-communication, parasite development and survival. Moreover, they
represent potential targets for chemotherapeutic drugs. In this context the roles of
the serotonin- and cAMP-signalling pathways in Echinococcus were studied.
Genes encoding serotonin receptors, a serotonin transporter and enzymes involved in
serotonin biosynthesis could be identified in the E. multilocularis and E. granulosus
genomes indicating that these parasites are capable of synthesizing and perceiving
serotonin signals. Also the influence of exogenous serotonin on parasite development
was studied. Serotonin significantly increased metacestode vesicle formation
from primary cells and re-differentiation of protoscoleces. Inhibition of serotonin
transport with citalopram significantly reduced metacestode vesicle formation from
primary cells and caused death of protoscoleces and metacestodes. Furthermore, it
could be shown that serotonin increased phosphorylation of protein kinase A substrates.
Taken together, these results show that serotonin and serotonin transport
are essential for Echinococcus development and survival. Consequently, components
of the serotonin pathway represent potential drug targets.
In this work the cAMP-signalling pathway was researched with focus on G-protein
coupled receptors and adenylate cyclases. 76 G-protein coupled receptors, including
members of all major families were identified in the E. multilocularis genome.
Four genes homologous to adenylate cyclase IX were identified in the E. multilocularis
genome and three in the E. granulosus genome. While glucagon caused
no significant effects, the adenylate cyclase activator forskolin and the adenylate
cyclase inhibitor 2’, 5’ didesoxyadenosine influenced metacestode vesicle formation
from primary cells, re-differentiation of protoscoleces and survival of metacestodes.
It was further shown that forskolin increases phosphorylation of protein kinase A
substrates, indicating that forskolin activates the cAMP-pathway also in cestodes.
These results indicate that the cAMP signalling pathway plays an important role in
Echinococcus development and survival.
To complement this work, the influence of different media and additives on E. granulosus protoscoleces was investigated. Anaerobic conditions and the presence of FBS
prolonged protoscolex survival while different media influenced protoscolex activation
and development.
Taken together, this work provided important insights into developmental processes
in Echinococcus and potential drug targets for echinococcosis chemotherapy.
Staphylococcus aureus (S. aureus) ist einer der häufigsten Erreger schwerer endovaskulärer Infektionen, die häufig mit einer Dissemination des Erregers in andere Organe und lebensbedrohlichen Komplikationen wie Endokarditis, Osteomyelitis oder Abszessen assoziiert sind. Entscheidender Schritt in der Pathogenese endovaskulärer Infektionen ist die Schädigung und Überwindung der Endothelbarriere. Für deren Integrität ist die Intaktheit von Zell-Zell-Verbindungen elementar, diese werden unter anderem durch Src-Kinasen reguliert. Es ist bekannt, dass S. aureus Fibronektin-Bindeproteine (FnBPs) maßgeblich für die Adhärenz und Invasion des Erregers in Endothelzellen sind. Die Invasion erfolgt über eine indirekte Bindung an α5β1-Integrine, invasive Eigenschaften finden sich in nahezu allen klinischen Isolaten. In verschiedenen Tiermodellen konnte außerdem ein Zusammenhang zwischen der Expression von FnBPs und der Dissemination von S. aureus in andere Organe gezeigt werden. Bislang ist jedoch nicht untersucht, welche Auswirkung die S. aureus-Infektion auf die Endothelbarriere hat und welche Mechanismen für die Translokation des Erregers verantwortlich sind.
In dieser Arbeit wurde analysiert, ob die Infektion mit S. aureus- und S. carnosus-Stämmen in vitro zu einer Schädigung der endothelialen Integrität von EA.hy926-Zellen führt. Hierzu wurden Änderungen der transendothelialen Impedanz und der Endothelpermeabeabilität nach Infektion im xCELLigence- bzw. Transwell-System erfasst. Zytotoxische Effekte wurden durch Kristallviolettfärbungen, immunfluoreszenz-mikroskopische Untersuchungen der Mitochondrien und Nuklei sowie die Erfassung der hypodiploiden Zellkerne mittels Durchflusszytometrie quantifiziert. Zur Entschlüsselung des molekularen Mechanismus wurden Veränderungen der Adherens und Tight Junction-Proteine ZO-1 und VE-Cadherin in der Immunfluoreszenz untersucht. Die Rolle von Src-Kinasen wurde durch pharmakologische Inhibition analysiert.
Es konnte gezeigt werden, dass FnBP-exprimierende S. aureus-Stämme eine Abnahme der transendothelialen Impedanz verursachen und dass es 4 und 24 Stunden nach Infektion zu einer signifikanten Zunahme der Endothelpermeabilität kommt. Zytotoxische Effekte auf die Endothelzellen durch die Infektion traten nach 24 Stunden auf, jedoch nicht nach 4 Stunden. VE-Cadherin und ZO-1 zeigten 4 Stunden nach Infektion eine FnBP-abhängige Konformationsänderung und Reduktion der Signalintensität. Außerdem konnte demonstriert werden, dass die Inhibition von Src-Kinasen den Anstieg der Endothelpermeabilität signifikant reduziert.
In dieser Arbeit wurde zum ersten Mal belegt, dass S. aureus FnBPs eine Erhöhung der Endothelpermeabilität bewirken. Während hierfür zu späten Zeitpunkten Apoptose verantwortlich ist, muss nach 4 Stunden ein anderer Mechanismus ursächlich sein. Da es zu einer Abschwächung der ZO-1- und VE-Cadherin-Signalintensität in der Immunfluoreszenz kam, ist anzunehmen, dass Adherens und Tight Junctions durch die Infektion geschädigt werden. Es ist bekannt, dass Src-Kinasen durch die Infektion mit S. aureus aktiviert werden. Außerdem sind sie elementar für die Regulation der Endothelpermeabilität und vermitteln diesen Effekt unter anderem über eine Phosphorylierung von Adherens und Tight Junction-Proteinen. Eine Src-vermittelte Phosphorylierung von Zell-Zell-Verbindungsproteinen wäre daher eine mögliche Erklärung für die beobachteten Veränderungen von ZO-1 und VE-Cadherin. Dieser Mechanismus könnte Wegbereiter für die parazelluläre Passage über die Endothelbarriere sein. Darüber hinaus könnte die erhöhte Endothelpermeabilität den Zugang zur Extrazellulärematrix und zum größten Pool an Fibronektin und Integrinen ermöglichen und so die Invasion und Transzytose begünstigen. Die hier gewonnenen Ergebnisse tragen dazu bei, die komplexe Interaktion zwischen S. aureus und dem Endothel und somit wichtige Schritte in der Pathogenese endovaskulärer Infektionen besser zu verstehen und neue Zielstrukturen für therapeutische Interventionen zu identifizieren.
Accumulating evidences have assigned a central role to parasite-derived proteins in immunomodulation. Here, we report on the proteomic identification and characterization of immunomodulatory excretory-secretory (ES) products from the metacestode larva (tetrathyridium) of the tapeworm Mesocestoides corti (syn. M. vogae). We demonstrate that ES products but not larval homogenates inhibit the stimuli-driven release of the pro-inflammatory, Th1-inducing cytokine IL-12p70 by murine bone marrow-derived dendritic cells (BMDCs). Within the ES fraction, we biochemically narrowed down the immunosuppressive activity to glycoproteins since active components were lipid-free, but sensitive to heat- and carbohydrate-treatment. Finally, using bioassay-guided chromatographic analyses assisted by comparative proteomics of active and inactive fractions of the ES products, we defined a comprehensive list of candidate proteins released by M. corti tetrathyridia as potential suppressors of DC functions. Our study provides a comprehensive library of somatic and ES products and highlight some candidate parasite factors that might drive the subversion of DC functions to facilitate the persistence of M. corti tetrathyridia in their hosts.
Einfluss des Komplementsystems und der neuartigen Meningokokken-Vakzine 4CMenB auf cnl-Meningokokken
(2016)
In dieser Arbeit wurden verschiedene Vakzine-relevante Oberflächenantigene von cnl-Meningokokken typisiert und die Interaktion von cnl-Meningokokken mit dem Komplementsystem, v.a. mit dessen Hauptregulatoren fH und C4bp, analysiert. Mit den gewonnenen Daten sollten Schlussfolgerungen bzgl. der erwarteten Wirkung von 4CMenB, einem 2013 in Deutschland eingeführten und auf Meningokokken der Serogruppe B abzielenden Impfstoff, auf cnl-Meningokokken gezogen werden. Des Weiteren sollte die Interaktion der natürlicherweise unbekapselten cnl-Meningokokken, die als apathogen und möglicherweise günstig für die Entwicklung einer natürlichen Immunität eingeschätzt werden, untersucht werden.
Eine Auswahl von cnl-Meningokokken-Stämmen, die die genetische Variabilität dieser Bakterienpopulation abbilden, wurde mittels PCR (porA, porB, fetA, opc, fHbp, nhba und nadA) oder Western Blot-Analyse (Opc) typisiert. Hierbei konnte eine deutliche Assoziation einzelner Allele zu klonalen Komplexen gezeigt werden. Allerdings lässt die Analyse bezweifeln, dass cnl-Meningokokken durch Bexsero-induzierte Antikörper erkannt werden,
da ihr Antigenmuster stark von den Vakzineantigenen abweicht. Unklarheit herrscht lediglich bzgl. des Antigens NhbA.
In der Folge wurde die fH- und C4bp-Bindung bei cnl-Meningokokken mittels Durchflusszytometrie untersucht. Es konnte beobachtet werden, dass im Vergleich zu fH bzw. C4bp bindenden Kontrollstämmen die Bindung der Hauptregulatoren des Komplementsystems an cnl-Meningokokken sehr gering ist. Weiterhin konnte gezeigt werden, dass cnl-Meningokokken eine sehr geringe Serumresistenz in vitro haben, was ebenfalls für eine schwache Akquirierung der Komplementregulatoren spricht. Dieser Befund unterstreicht die apathogene Natur der Bakterien. Er zeigt aber auch, dass mit herkömmlichen Methoden wie dem Serumbakterizidietest, der bei bekapselten Stämmen angewendet wird, funktionelle Aussagen bzgl. der Wirkung bakterizider Antikörper, die durch Impfstoffe auf Proteinbasis induziert werden, nur schwer zu tätigen sein werden. Sehr geringe Komplementmengen müssten eingesetzt werden oder alternative Verfahren wie die Opsonophagozytose Anwendung finden.
Die Interaktion mit Gehirnendothelzellen stellt ein zentraler Schritt in der Infektionspathogenese von Neisseria meningitidis dar. In dieser Promotionsarbeit konnte gezeigt werden, dass die Infektion von menschlichen Gehirnendothelzellen mit N. meningitidis zu einer transienten Aktivierung der sauren Sphingomyelinase (ASM) gefolgt von einer vermehrten Ceramidproduktion führt. Als Antwort auf die Infektion mit N. meningitidis kommt es zu einer vermehrten Präsentation der ASM und von Ceramiden an der äusseren Seite der Plasmamembran und zu einer Ausbildung von großen Ceramid-reichen Membran-Domänen, welche mit cortical plaque assoziierten Proteinen kolokalisieren. Bei dieser N. meningitids vermittelten Aktivierung der ASM spielt das bakterielle Aussenmembranprotein Opc sowie die Aktivierung der Phosphatidylcholin-spezifische Phospholipase C über die Interaktion von Opc mit Heparansulfat-Proteoglykane eine entscheidende Rolle. Die pharmakologische oder genetische Inhibition der ASM Funktion führt zu einer geringeren Invasivität der Meningokokken ohne dabei die Adhärenz zu beeinflussen. Im Einklang mit diesen Ergebnissen steht die Beobachtung, dass die geringere Invasivität von ausgewählten Isolaten des ST-11/ST-8 Komplex in menschlichen Gehirnendothelzellen direkt mit ihrer eingeschränkter Fähigkeit korreliert, die ASM zu aktivieren bzw. eine Ceramidproduktion zu induzieren. Schlussfolgernd ist die ASM Aktivierung und eine nachfolgende Ceramidproduktion essenziell für die Internalisierung von Opc-exprimierende Meningokokken in Gehirnendothelzellen und bietet einen Erklärungsansatz für die unterschiedliche Invasivität von verschiedenen N. meningitidis Stämmen.
Background
Early developmental patterns of flatworms are extremely diverse and difficult to compare between distant groups. In parasitic flatworms, such as tapeworms, this is confounded by highly derived life cycles involving indirect development, and even the true orientation of the tapeworm antero-posterior (AP) axis has been a matter of controversy. In planarians, and metazoans generally, the AP axis is specified by the canonical Wnt pathway, and we hypothesized that it could also underpin axial formation during larval metamorphosis in tapeworms.
Results
By comparative gene expression analysis of Wnt components and conserved AP markers in the tapeworms Echinococcus multilocularis and Hymenolepis microstoma, we found remarkable similarities between the early stages of larval metamorphosis in tapeworms and late embryonic and adult development in planarians. We demonstrate posterior expression of specific Wnt factors during larval metamorphosis and show that scolex formation is preceded by localized expression of Wnt inhibitors. In the highly derived larval form of E. multilocularis, which proliferates asexually within the mammalian host, we found ubiquitous expression of posterior Wnt factors combined with localized expression of Wnt inhibitors that correlates with the asexual budding of scoleces. As in planarians, muscle cells are shown to be a source of secreted Wnt ligands, providing an explanation for the retention of a muscle layer in the immotile E. multilocularis larva.
Conclusions
The strong conservation of gene expression between larval metamorphosis in tapeworms and late embryonic development in planarians suggests, for the first time, a homologous developmental period across this diverse phylum. We postulate these to represent the phylotypic stages of these flatworm groups. Our results support the classical notion that the scolex is the true anterior end of tapeworms. Furthermore, the up-regulation of Wnt inhibitors during the specification of multiple anterior poles suggests a mechanism for the unique asexual reproduction of E. multilocularis larvae.
Meningococci spread via respiratory droplets, whereas the closely related gonococci are transmitted sexually. Several outbreaks of invasive meningococcal disease have been reported in Europe and the United States among men who have sex with men (MSM). We recently identified an outbreak of serogroup C meningococcal disease among MSM in Germany and France. In this study, genomic and proteomic techniques were used to analyze the outbreak isolates. In addition, genetically identical urethritis isolates were recovered from France and Germany and included in the analysis. Genome sequencing revealed that the isolates from the outbreak among MSM and from urethritis cases belonged to a clade within clonal complex 11. Proteome analysis showed they expressed nitrite reductase, enabling anaerobic growth as previously described for gonococci. Invasive isolates from MSM, but not urethritis isolates, further expressed functional human factor H binding protein associated with enhanced survival in a newly developed transgenic mouse model expressing human factor H, a complement regulatory protein. In conclusion, our data suggest that urethritis and outbreak isolates followed a joint adaptation route including adaption to the urogenital tract.
Neisseria meningitidis is a commensal bacterium which sometimes causes serious disease in humans. Recent studies in numerous human pathogenic bacteria have shown that the stringent response contributes to bacterial virulence. Therefore, this study analyzed the regulation of the stringent response in meningococci and in particular of RelA as well as its contribution to ex vivo fitness in a strain- and condition- dependent manner by using the carriage strain α522 and the hyperinvasive strain MC58 in different in vitro and ex vivo conditions.
Growth experiments revealed that both wild-type strains were almost indistinguishable in their ex vivo phenotypes. However, quantitative real time PCR (qRT-PCR) found differences in the gene expression of relA between both strains. Furthermore, in contrast to the MC58 RelA mutant strain α522 deficient in RelA was unable to survive in human whole blood, although both strains showed the same ex vivo phenotypes in saliva and cerebrospinal fluid. Moreover, strain α522 was depended on a short non-coding AT-rich repeat element (ATRrelA) in the promoter region of relA to survive in human blood. Furthermore, cell culture experiments with human epithelial cells revealed that in both strains the deletion of relA resulted in a significantly decreased invasion rate while not significantly affecting adhesion. In order to better understand the conditional lethality of the relA deletion, computational and experimental analyses were carried out to unravel differences in amino acid biosynthetic pathways between both strains. Whereas strain MC58 is able to synthesize all 20 amino acids, strain α522 has an auxotrophy for cysteine and glutamine. In addition, the in vitro growth experiments found that RelA is required for growth in the absence of external amino acids in both strains. Furthermore, the mutant strain MC58 harboring an ATRrelA in its relA promoter region showed improved growth in minimal medium supplemented with L-cysteine and/or L-glutamine compared to the wild-type strain. Contrary, in strain α522 no differences between the wild-type and the ATRrelA deletion mutant were observed.
Together this indicates that ATRrelA interferes with the complex regulatory interplay between the stringent response pathway and L-cysteine as well as L-glutamine metabolism. It further suggests that meningococcal virulence is linked to relA in a strain- and condition- depended manner. In conclusion, this work highlighted the role of the stringent response and of non-coding regulatory elements for bacterial virulence and indicates that virulence might be related to the way how meningococci accomplish growth within the host environments.
Meningococcal serogroup C (MenC) vaccination of men who have sex with men (MSM) was temporarily recommended to control an outbreak of invasive MenC disease among MSM in Berlin in 2012–2013. Vaccination was offered to HIV-infected MSM free of charge; others had to request reimbursement or pay out of pocket. We aimed to assess (i) awareness and acceptance of this recommendation through an online survey of MSM, (ii) implementation through a survey of primary care physicians and analysis of vaccine prescriptions, and (iii) impact through analysis of notified cases. Among online survey respondents, 60% were aware of the recommendation. Of these, 39% had obtained vaccination (70% of HIV-infected, 13% of HIV-negative/non-tested MSM). Awareness of recommendation and vaccination were positively associated with HIV infection, primary care physicians’ awareness of respondents’ sexual orientation, and exposure to multiple information sources. Most (26/30) physicians informed clients about the recommendation. Physicians considered concerns regarding reimbursement, vaccine safety and lack of perceived disease risk as primary barriers. After the recommendation, no further outbreak-related cases occurred. To reach and motivate target groups, communication of a new outbreak-related vaccination recommendation should address potential concerns through as many information channels as possible and direct reimbursement of costs should be enabled.
Bacterial meningitis is a devastating disease occurring worldwide with up to half of the survivors left with permanent neurological sequelae. Due to intrinsic properties of the meningeal pathogens and the host responses they induce, infection can cause relatively specific lesions and clinical syndromes that result from interference with the function of the affected nervous system tissue. Pathogenesis is based on complex host-pathogen interactions, some of which are specific for certain bacteria, whereas others are shared among different pathogens. In this review, we summarize the recent progress made in understanding the molecular and cellular events involved in these interactions. We focus on selected major pathogens, Streptococcus pneumonia, S. agalactiae (Group B Streptococcus), Neisseria meningitidis, and Escherichia coli K1, and also include a neglected zoonotic pathogen, Streptococcus suis. These neuroinvasive pathogens represent common themes of host-pathogen interactions, such as colonization and invasion of mucosal barriers, survival in the blood stream, entry into the central nervous system by translocation of the blood-brain and blood-cerebrospinal fluid barrier, and induction of meningeal inflammation, affecting pia mater, the arachnoid and subarachnoid spaces.
Background
This study presents the results of a multidisciplinary, nosocomial MRSA outbreak investigation in an 8-bed medical intensive care unit (ICU). The identification of seven MRSA positive patients in the beginning of 2014 led to the closure of the ward for several weeks. A multidisciplinary, retrospective investigation was initiated in order to identify the reason and the source for the outbreak, describe MRSA transmission in the department and identify limitations in infection control.
Methods
The investigation comprised an epidemiological description of MRSA cases from 2012 to 2014 and a characterization of MRSA isolates, including phage-, spa- and PFGE-typing. Additionally, MRSA screening was performed from the hospital staff and the environment. To identify the reason for the outbreak, work-related, psychological and behavioral factors were investigated by impartial audits and staff interviews.
Results
Thirty-one MRSA cases were registered during the study period, and 36 isolates were investigated. Molecular typing determined the outbreak strain (phage type 54/812, PFGE type A4, spa type t003) and identified the probable index case. Nasal carriage in one employee and a high environmental contamination with the outbreak strain was documented. Important gaps in nursing procedures and general management were identified. Elevated stress levels and communication problems preceded the outbreak. Compliance with hand hygiene and isolation procedures was evaluated as appropriate.
Conclusion
This study demonstrates the complexity of controlling hospital-associated infections. The combined use of different typing methods is beneficial for outbreak investigations. Psychological, behavioral and other work-related factors have an important impact on the spread of nosocomial pathogens. These factors should be addressed and integrated in routine infection control practice.
Background
Antimicrobial resistance has been declared by the World Health Organization as a threat to the public health. The aim of this study was to analyze antimicrobial resistance patterns of the common pathogens occurring at the Bugando Medical Centre (BMC), Mwanza, Tanzania to provide data for antimicrobial stewardship programmes.
Methods
A total of 3330 microbiological culture results scripts representing non-repetitive specimens reported between June 2013 and May 2015 were retrieved and analyzed for pathogens and their susceptibility patterns using STATA-11 software.
Results
Out of 3330 specimens, 439 (13.2%) had positive culture. Staphylococcus aureus (n = 100; 22.8%), Klebsiella pneumoniae (n = 65; 14.8%) and Escherichia coli (n = 41; 9.3%) were the most frequently isolated bacteria. Of 78 Staphylococcus aureus tested, 27 (34.6%) were found to be methicillin resistant Staphylococcus aureus (MRSA). Rates of resistance of Klebsiella pneumoniae and Escherichia coli isolates to third generation cephalosporins were 38.5% (25/65) and 29.3% (12/41) respectively. Staphylococcus aureus and Klesbiella pneumoniae were commonly isolated from bloodstream infections while Escherichia coli and Pseudomonas aeruginosa were the predominant isolates from urinary tract and wounds infections respectively. Of 23 Salmonella species isolated, 22 (95%) were recovered from the blood. Nine of the 23 Salmonella species isolates (39%) were found to be resistant to third generation cephalosporins. The resistance rate of gram-negative bacteria to third generation cephalosporins increased from 26.5% in 2014 to 57.9% in 2015 (p = 0.004) while the rate of MRSA decreased from 41.2% in 2013 to 9.5% in 2015 (p = 0.016). Multidrug-resistant gram-negative isolates were commonly isolated from Intensive Care Units and it was noted that, the majority of invasive infections were due to gram-negative bacteria.
Conclusion
There is an increase in proportion of gram-negative isolates resistant to third generation cephalosporins. The diversity of potential pathogens resistant to commonly prescribed antibiotics underscores the importance of sustained and standardized antimicrobial resistance surveillance and antibiotic stewardship programmes in developing countries.
Background
We undertook investigations in response to an invasive meningococcal disease (IMD) outbreak in men who have sex with men (MSM) in Berlin 2012–2013 to better understand meningococcal transmission and IMD risk in MSM.
Methods
We retrospectively searched for further IMD cases in MSM in Germany through local health departments and undertook exploratory interviews. We performed antigen sequence typing, characterized fHbp and aniA genes of strains with the outbreak finetype and reviewed epidemiologically or spatiotemporally linked cases from 2002–2014.
Results
Among the 148 IMD-cases notified from 01.01.2012–30.09.2013 in 18–59 year-old men we identified 13 MSM in 6 federal states: 11 serogroup C (MenC, all finetype C:P1.5–1,10–8:F3-6), 2 MenB. Interviews with 7 MSM revealed frequent meeting of multiple partners online or via mobile apps and illicit drug use as potential risk factors. MenC incidence was 13-fold higher in MSM than non-MSM. MenC isolates from 9/11 MSM had a novel fHbp allele 766. All C:P1.5–1,10–8:F3-6 strains from MSM versus 16/23 from non-MSM had intact aniA genes (p = 0.04). Although definitive evidence for transmission among MSM in epidemiological or spatiotemporal clusters in 2002–2014 was lacking, clusters were more frequent in men aged 20–49 years. Molecular analysis of C:P1.5–1,10–8:F3-6 strains revealed cases with intact aniA since 2007, mainly associated with fHbp361, fHbp766 and fHbp813, all involving one or more MSM.
Conclusions
MenC incidence was elevated in MSM during the study period. Multiple casual sexual contacts and illicit drug use were common in affected MSM. In all strains from MSM we detected an intact aniA gene coding for a nitrite reductase, which permits survival in microanaerobic environments and could play a role in meningococcal transmission in MSM through urogenital colonization. Furthermore, meningococcal transmission among MSM may be sustained over large areas and thus require modified spatiotemporal scanning algorithms for timely detection and control.
Tuberculosis (TB) and the spread of Mycobacterium tuberculosis complex (MTBC) strains resistant against rifampin (RIF) and isoniazid (INH) pose a serious threat to global health. However, rapid and reliable MTBC detection along with RIF/INH susceptibility testing are challenging in low prevalence countries due to the higher rate of false positives. Here, we provide the first performance data for the artus MTBC PCR assay in a low prevalence setting. We analyze 1323 respiratory and 311 non-respiratory samples with the artus MTBC PCR assay as well as by mycobacterial culture and microscopy. We propose retesting of specimens in duplicate and consideration of a determined cycle-threshold value cut-off greater than 34, as this significantly increases accuracy, specificity, and negative predictive value without affecting sensitivity. Furthermore, we tested fourteen MTBC positive samples with the GenoType MTBDRplus test and demonstrate that using an identical DNA extraction protocol for both assays does not impair downstream genotypic testing for RIF and INH susceptibility. In conclusion, our procedure optimizes the use of the artus MTB assay with workload efficient methods in a low incidence setting. Combining the modified artus MTB with the GenoType MTBDRplus assays allows rapid and accurate detection of MTBC and RIF/INH resistance.
Background:
Commensal bacteria like Neisseria meningitidis sometimes cause serious disease. However, genomic comparison of hyperinvasive and apathogenic lineages did not reveal unambiguous hints towards indispensable virulence factors. Here, in a systems biological approach we compared gene expression of the invasive strain MC58 and the carriage strain α522 under different ex vivo conditions mimicking commensal and virulence compartments to assess the strain-specific impact of gene regulation on meningococcal virulence.
Results:
Despite indistinguishable ex vivo phenotypes, both strains differed in the expression of over 500 genes under infection mimicking conditions. These differences comprised in particular metabolic and information processing genes as well as genes known to be involved in host-damage such as the nitrite reductase and numerous LOS biosynthesis genes. A model based analysis of the transcriptomic differences in human blood suggested ensuing metabolic flux differences in energy, glutamine and cysteine metabolic pathways along with differences in the activation of the stringent response in both strains. In support of the computational findings, experimental analyses revealed differences in cysteine and glutamine auxotrophy in both strains as well as a strain and condition dependent essentiality of the (p)ppGpp synthetase gene relA and of a short non-coding AT-rich repeat element in its promoter region.
Conclusions:
Our data suggest that meningococcal virulence is linked to transcriptional buffering of cryptic genetic variation in metabolic genes including global stress responses. They further highlight the role of regulatory elements for bacterial virulence and the limitations of model strain approaches when studying such genetically diverse species as N. meningitidis.
Some members of the physiological human microbiome occasionally cause life-threatening disease even in immunocompetent individuals. A prime example of such a commensal pathogen is Neisseria meningitidis, which normally resides in the human nasopharynx but is also a leading cause of sepsis and epidemic meningitis. Using N. meningitidis as model organism, we tested the hypothesis that virulence of commensal pathogens is a consequence of within host evolution and selection of invasive variants due to mutations at contingency genes, a mechanism called phase variation. In line with the hypothesis that phase variation evolved as an adaptation to colonize diverse hosts, computational comparisons of all 27 to date completely sequenced and annotated meningococcal genomes retrieved from public databases showed that contingency genes are indeed enriched for genes involved in host interactions. To assess within-host genetic changes in meningococci, we further used ultra-deep whole-genome sequencing of throat-blood strain pairs isolated from four patients suffering from invasive meningococcal disease. We detected up to three mutations per strain pair, affecting predominantly contingency genes involved in type IV pilus biogenesis. However, there was not a single (set) of mutation(s) that could invariably be found in all four pairs of strains. Phenotypic assays further showed that these genetic changes were generally not associated with increased serum resistance, higher fitness in human blood ex vivo or differences in the interaction with human epithelial and endothelial cells in vitro. In conclusion, we hypothesize that virulence of meningococci results from accidental emergence of invasive variants during carriage and without within host evolution of invasive phenotypes during disease progression in vivo.
Background
The role of hospital water systems in the development of Pseudomonas aeruginosa (P. aeruginosa) surgical site infections (SSIs) in low-income countries is barely studied. This study characterized P. aeruginosa isolates from patients and water in order to establish possible epidemiological links.
Methods:
Between December 2014 and September 2015, rectal and wound swabs, and water samples were collected in the frame of active surveillance for SSIs in the two Tanzanian hospitals. Typing of P. aeruginosa was done by multi-locus sequence typing.
Results:
Of 930 enrolled patients, 536 were followed up, of whom 78 (14.6%, 95% CI; 11.6–17.5) developed SSIs. P. aeruginosa was found in eight (14%) of 57 investigated wounds. Of the 43 water sampling points, 29 were positive for P. aeruginosa. However, epidemiological links to wound infections were not confirmed. The P. aeruginosa carriage rate on admission was 0.9% (8/930). Of the 363 patients re-screened upon discharge, four (1.1%) possibly acquired P. aeruginosa during hospitalization. Wound infections of the three of the eight P. aeruginosa SSIs were caused by a strain of the same sequence type (ST) as the one from intestinal carriage. Isolates from patients were more resistant to antibiotics than water isolates.
Conclusions:
The P. aeruginosa SSI rate was low. There was no evidence for transmission from tap water. Not all P. aeruginosa SSI were proven to be endogenous, pointing to other routes of transmission.
Introduction.
Tropheryma whipplei is the causative agent of Whipple’s disease. Gastrointestinal and lymphatic tissues are affected in the majority of cases, resulting in diarrhoea, malabsorption and fever. Here, we report a rare case of ocular manifestation in a patient lacking the typical Whipple symptoms.
Case presentation.
A 74-year-old Caucasian female presented with blurred vision in the right eye over a period of 1–2 months, accompanied by stinging pain and conjunctival hyperaemia for the last 2 days. Upon admission, visual acuity was hand motion in the affected eye. Ophthalmological examination showed typical signs of intraocular inflammation. Diagnostic and therapeutic pars plana vitrectomy including vitreous biopsy and intravitreal instillation of vancomycin and amikacin was performed within hours of initial presentation. Both microscopic analysis and microbial cultures of the vitreous biopsy remained negative for bacteria and fungi. The postoperative antibiotic regime included intravenous administration of ceftriaxone in combination with topical tobramycin and ofloxacin. Due to the empirical therapy the inflammation ceased and the patient was discharged after 5 days with cefpodoxime orally and local antibiotic and steroidal therapy. Meanwhile, the vitreous body had undergone testing by PCR for the eubacterial 16S rRNA gene, which was found to be positive. Analysis of the PCR product revealed a specific sequence of T. whipplei.
Conclusion.
In our patient, endophthalmitis was the first and only symptom of Morbus Whipple, while most patients with Whipple’s disease suffer from severe gastrointestinal symptoms. 16S rDNA PCR should be considered for any intraocular infection when microscopy and standard culture methods remain negative.
Background
Data on ESBL carriage of healthy people including children are scarce especially in developing countries. We analyzed the prevalence and genotypes of ESBL-producing Enterobacteriaceae (EPE) in Tanzanian street children with rare contact to healthcare facilities but significant interactions with the environment, animals and other people.
Methodology/ Principle findings
Between April and July 2015, stool samples of 107 street children, who live in urban Mwanza were analyzed for EPE. Intestinal carriage of EPE was found in 34 (31.8%, 95% CI; 22.7–40.3) children. Of the 36 isolates from 34 children, 30 (83.3%) were Escherichia coli (E. coli) and six Klebsiella pneumoniae (K. pneumoniae). Out of 36 isolates, 36 (100%), 35 (97%), 25 (69%) and 16 (44%) were resistant to tetracycline, trimethoprim-sulfamethoxazole, ciprofloxacin and gentamicin, respectively. Beta-lactamase genes and the multilocus sequence types of E. coli and K. pneumoniae were characterized. ESBL gene bla\(_{CTX-M-15}\) was detected in 75% (27/36) of ESBL isolates. Sequence types (STs) 131, 10, 448 and 617 were the most prevalent in E. coli. Use of local herbs (OR: 3.5, 95% CI: 1.51–8.08, P = 0.003) and spending day and night on streets (OR: 3.6, 95% CI: 1.44–8.97, P = 0.005) were independent predictors of ESBL carriage.
Conclusions/ Significance
We observed a high prevalence of bla\(_{CTX-M-15}\) in EPE collected from street children in Tanzania. Detection of E. coli STs 131, 10, 38 and 648, which have been observed worldwide in animals and people, highlights the need for multidisciplinary approaches to understand the epidemiology and drivers of antimicrobial resistance in low-income countries.
Certain fatty acids and sphingoid bases found at mucosal surfaces are known to have antibacterial activity and are thought to play a more direct role in innate immunity against bacterial infections. Herein, we analysed the antibacterial activity of sphingolipids, including the sphingoid base sphingosine as well as short-chain C\(_{6}\) and long-chain C\(_{16}\)-ceramides and azido-functionalized ceramide analogs against pathogenic Neisseriae. Determination of the minimal inhibitory concentration (MIC) and minimal bactericidal concentration (MBC) demonstrated that short-chain ceramides and a ω-azido-functionalized C\(_{6}\)-ceramide were active against Neisseria meningitidis and N. gonorrhoeae, whereas they were inactive against Escherichia coli and Staphylococcus aureus. Kinetic assays showed that killing of N. meningitidis occurred within 2 h with ω–azido-C\(_{6}\)-ceramide at 1 X the MIC. Of note, at a bactericidal concentration, ω–azido-C\(_{6}\)-ceramide had no significant toxic effect on host cells. Moreover, lipid uptake and localization was studied by flow cytometry and confocal laser scanning microscopy (CLSM) and revealed a rapid uptake by bacteria within 5 min. CLSM and super-resolution fluorescence imaging by direct stochastic optical reconstruction microscopy demonstrated homogeneous distribution of ceramide analogs in the bacterial membrane. Taken together, these data demonstrate the potent bactericidal activity of sphingosine and synthetic short-chain ceramide analogs against pathogenic Neisseriae.
Echinocandin antifungals represent one of the most important drug classes for the treatment of invasive fungal infections. The mode of action of the echinocandins relies on inhibition of the β-1,3-glucan synthase, an enzyme essentially required for the synthesis of the major fungal cell wall carbohydrate β-1,3-glucan. Depending on the species, echinocandins may exert fungicidal or fungistatic activity. Apparently independent of this differential activity, a surprising in vitro phenomenon called the “paradoxical effect” can be observed. The paradoxical effect is characterized by the ability of certain fungal isolates to reconstitute growth in the presence of higher echinocandin concentrations, while being fully susceptible at lower concentrations. The nature of the paradoxical effect is not fully understood and has been the focus of multiple studies in the last two decades. Here we concisely review the current literature and propose an updated model for the paradoxical effect, taking into account recent advances in the field.
Background:
Ureaplasma species have been associated with chorioamnionitis and preterm birth and have been implicated in the pathogenesis of neonatal short and long-term morbidity. However, being mostly commensal bacteria, controversy remains on the pro-inflammatory capacity of Ureaplasma. Discussions are ongoing on the incidence and impact of prenatal, perinatal, and postnatal infection. The present study addressed the impact of Ureaplasma isolates on monocyte-driven inflammation.
Methods:
Cord blood monocytes of term neonates and adult monocytes, either native or LPS-primed, were cultured with Ureaplasma urealyticum (U. urealyticum) serovar 8 (Uu8) and Ureaplasma parvum serovar 3 (Up3). Using qRT-PCR, cytokine flow cytometry, and multi-analyte immunoassay, we assessed mRNA and protein expression of tumor necrosis factor (TNF)-α, interleukin (IL)-1β, IL-8, IL-12p40, IL-10, and IL-1 receptor antagonist (IL-1ra) as well as Toll-like receptor (TLR) 2 and TLR4.
Results:
Uu8 and Up3 induced mRNA expression and protein release of TNF-α, IL-1β and IL-8 in term neonatal and adult monocytes (p < 0.01 and p < 0.05). Intracellular protein expression of TNF-α, IL-1β and IL-8 in Ureaplasma-stimulated cells paralleled those results. Ureaplasma-induced cytokine levels did not significantly differ from LPS-mediated levels except for lower intracellular IL-1β in adult monocytes (Uu8: p < 0.05). Remarkably, ureaplasmas did not induce IL-12p40 response and promoted lower amounts of anti-inflammatory IL-10 and IL-1ra than LPS, provoking a cytokine imbalance more in favor of pro-inflammation (IL-1β/IL-10, IL-8/IL-10 and IL-8/IL-1ra: p < 0.01, vs. LPS). In contrast to LPS, both isolates induced TLR2 mRNA in neonatal and adult cells (p < 0.001 and p < 0.05) and suppressed TLR4 mRNA in adult monocytes (p < 0.05). Upon co-stimulation, Uu8 and Up3 inhibited LPS-induced intracellular IL-1β (p < 0.001 and p < 0.05) and IL-8 in adult monocytes (p < 0.01), while LPS-induced neonatal cytokines were maintained or aggravated (p < 0.05).
Conclusion:
Our data demonstrate a considerable pro-inflammatory capacity of Ureaplasma isolates in human monocytes. Stimulating pro-inflammatory cytokine responses while hardly inducing immunomodulatory and anti-inflammatory cytokines, ureaplasmas might push monocyte immune responses toward pro-inflammation. Inhibition of LPS-induced cytokines in adult monocytes in contrast to sustained inflammation in term neonatal monocytes indicates a differential modulation of host immune responses to a second stimulus. Modification of TLR2 and TLR4 expression may shape host susceptibility to inflammation.
The primary transcriptome of Neisseria meningitidis and its interaction with the RNA chaperone Hfq
(2017)
Neisseria meningitidis is a human commensal that can also cause life-threatening meningitis and septicemia. Despite growing evidence for RNA-based regulation in meningococci, their transcriptome structure and output of regulatory small RNAs (sRNAs) are incompletely understood. Using dRNA-seq, we have mapped at single-nucleotide resolution the primary transcriptome of N. meningitidis strain 8013. Annotation of 1625 transcriptional start sites defines transcription units for most protein-coding genes but also reveals a paucity of classical σ70-type promoters, suggesting the existence of activators that compensate for the lack of −35 consensus sequences in N. meningitidis. The transcriptome maps also reveal 65 candidate sRNAs, a third of which were validated by northern blot analysis. Immunoprecipitation with the RNA chaperone Hfq drafts an unexpectedly large post-transcriptional regulatory network in this organism, comprising 23 sRNAs and hundreds of potential mRNA targets. Based on this data, using a newly developed gfp reporter system we validate an Hfq-dependent mRNA repression of the putative colonization factor PrpB by the two trans-acting sRNAs RcoF1/2. Our genome-wide RNA compendium will allow for a better understanding of meningococcal transcriptome organization and riboregulation with implications for colonization of the human nasopharynx.
Das Opc-Protein ist ein Außenmembranprotein von Meningokokken, das über extrazelluläre Matrixproteine mit Integrinen der Wirtszelle interagiert. Opc ist in Menschen immunogen und induziert bakterizide Antikörper. Das Opc-Protein wurde daher als aussichtsreicher Impfstoff-Kandidat angesehen, da es außerdem relativ gut konserviert ist. Allerdings wird das Opc-Protein nicht von allen Meningokokkenstämmen exprimiert. Einerseits fehlt das opc-Gen in einigen klonalen Komplexen (z.B. ST-8, ST-11, ST-53), andererseits ist die Opc-Expression nicht konstitutiv wegen einer phasenvariablen Transkription, die auf einem Poly-Cytidin-Bereich im Promotor des opc-Gens beruht.
In dieser Arbeit wurde die Präsenz des opc-Gens und die Opc-Expression in zwei großen Sammlungen deutscher Meningokokkenisolate von invasiven Erkrankungen (n=1141) und gesunden Trägern (n=792) untersucht.
Das opc-Gen war bei 71% der invasiven und 77% der Trägerstämme nachweisbar. Der größte Teil der opc-Gen negativen Stämme gehörte zu den klonalen Komplexen ST-8, ST-11, ST-213, ST-231, ST-334 und ST-53.
Der Anteil opc-positiver Stämme, die Opc in vitro exprimieren, war bei den invasiven Stämmen kleiner als bei den Trägerstämmen (13% vs. 29%, p<0,001, Chi-square-Test).
Der größere Anteil Opc-exprimierender Trägerstämme ist u.a. am ehesten mit der Überrepräsentation von wenig pathogenen klonalen Komplexen (ST-23, ST-35, ST-198) mit einer hohen Opc-Expressionsrate zu erklären.
24 von den 176 invasiven Stämmen mit einer Anzahl von 11 - 14 Cs in der Promotor-Region, die die Opc-Expression begünstigt, zeigten weder im ELISA noch im Westernblot eine Opc-Expression. Bei 14 dieser 24 Stämme wurde als Ursache ein phasenvariabler, intragenischer Poly-Adenin-Bereich identifiziert, der zu einer Leserasterverschiebung führte.
Die Vermutung mehrerer Autoren, dass die Opc-Expression mit dem klinischen Bild der Meningitis verknüpft ist, konnte mit der hier genutzten großen Stammsammlung nicht bestätigt werden. Invasive Stämme, die das Opc-Protein exprimierten, wurden genauso häufig von Patienten mit dem klinischen Bild der Meningitis isoliert wie Stämme, die das Opc-Protein nicht exprimierten (46% vs. 47%, Chi-square-Test: p<0,9). Allerdings gibt es eine starke Assoziation der Gegenwart des opc-Gens mit dem klinischen Merkmal Meningitis. Dieser Befund gibt Anlass zu der Hypothese, dass in vitro und in vivo Expression von Opc sich unterscheiden.
Zusammenfassend lässt sich festhalten, dass das Opc-Protein nur in 19,8% aller Isolate (invasive und Trägerstämme zusammengenommen) exprimiert wurde. Es zeigte sich eine Tendenz zu häufigerer Opc-Expression in apathogenen Trägerisolaten. Das Vorhandensein des opc-Gens, nicht aber die in vitro Expression konnten mit dem klinischen Merkmal Meningitis assoziiert werden. Zusätzlich wurde ein weiterer Mechanismus der intragenischen Phasenvariation beschrieben.
Sepsis caused by Neisseria meningitidis (meningococcus) is a rapidly progressing, life-threatening disease. Because its initial symptoms are rather unspecific, medical attention is often sought too late, i.e., when the systemic inflammatory response is already unleashed. This in turn limits the success of antibiotic treatment. The complement system is generally accepted as the most important innate immune determinant against invasive meningococcal disease since it protects the host through the bactericidal membrane attack complex. However, complement activation concomitantly liberates the C5a peptide, and it remains unclear whether this potent anaphylatoxin contributes to protection and/or drives the rapidly progressing immunopathogenesis associated with meningococcal disease. Here, we dissected the specific contribution of C5a receptor 1 (C5aR1), the canonical receptor for C5a, using a mouse model of meningococcal sepsis. Mice lacking C3 or C5 displayed susceptibility that was enhanced by >1,000-fold or 100-fold, respectively, consistent with the contribution of these components to protection. In clear contrast, C5ar1\(^{-/-}\) mice resisted invasive meningococcal infection and cleared N. meningitidis more rapidly than wild-type (WT) animals. This favorable outcome stemmed from an ameliorated inflammatory cytokine response to N. meningitidis in C5ar1\(^{-/-}\) mice in both in vivo and ex vivo whole-blood infections. In addition, inhibition of C5aR1 signaling without interference with the complement bactericidal activity reduced the inflammatory response also in human whole blood. Enticingly, pharmacologic C5aR1 blockade enhanced mouse survival and lowered meningococcal burden even when the treatment was administered after sepsis induction. Together, our findings demonstrate that C5aR1 drives the pathophysiology associated with meningococcal sepsis and provides a promising target for adjunctive therapy.
Importance:
The devastating consequences of N. meningitidis sepsis arise due to the rapidly arising and self-propagating inflammatory response that mobilizes antibacterial defenses but also drives the immunopathology associated with meningococcemia. The complement cascade provides innate broad-spectrum protection against infection by directly damaging the envelope of pathogenic microbes through the membrane attack complex and triggers an inflammatory response via the C5a peptide and its receptor C5aR1 aimed at mobilizing cellular effectors of immunity. Here, we consider the potential of separating the bactericidal activities of the complement cascade from its immune activating function to improve outcome of N. meningitidis sepsis. Our findings demonstrate that the specific genetic or pharmacological disruption of C5aR1 rapidly ameliorates disease by suppressing the pathogenic inflammatory response and, surprisingly, allows faster clearance of the bacterial infection. This outcome provides a clear demonstration of the therapeutic benefit of the use of C5aR1-specific inhibitors to improve the outcome of invasive meningococcal disease.
Background:
Atypical chemokine receptor 3 (ACKR3, synonym CXCR7) is increasingly considered relevant in neuroinflammatory conditions, in which its upregulation contributes to compromised endothelial barrier function and may ultimately allow inflammatory brain injury. While an impact of ACKR3 has been recognized in several neurological autoimmune diseases, neuroinflammation may also result from infectious agents, including Ureaplasma species (spp.). Although commonly regarded as commensals of the adult urogenital tract, Ureaplasma spp. may cause invasive infections in immunocompromised adults as well as in neonates and appear to be relevant pathogens in neonatal meningitis. Nonetheless, clinical and in vitro data on Ureaplasma-induced inflammation are scarce.
Methods:
We established a cell culture model of Ureaplasma meningitis, aiming to analyze ACKR3 variances as a possible pathomechanism in Ureaplasma-associated neuroinflammation. Non-immortalized human brain microvascular endothelial cells (HBMEC) were exposed to bacterial lipopolysaccharide (LPS) or tumor necrosis factor-α (TNF-α), and native as well as LPS-primed HBMEC were cultured with Ureaplasma urealyticum serovar 8 (Uu8) and U. parvum serovar 3 (Up3). ACKR3 responses were assessed via qRT-PCR, RNA sequencing, flow cytometry, and immunocytochemistry.
Results:
LPS, TNF-α, and Ureaplasma spp. influenced ACKR3 expression in HBMEC. LPS and TNF-α significantly induced ACKR3 mRNA expression (p < 0.001, vs. control), whereas Ureaplasma spp. enhanced ACKR3 protein expression in HBMEC (p < 0.01, vs. broth control). Co-stimulation with LPS and either Ureaplasma isolate intensified ACKR3 responses (p < 0.05, vs. LPS). Furthermore, stimulation wielded a differential influence on the receptor’s ligands.
Conclusions:
We introduce an in vitro model of Ureaplasma meningitis. We are able to demonstrate a pro-inflammatory capacity of Ureaplasma spp. in native and, even more so, in LPS-primed HBMEC, underlining their clinical relevance particularly in a setting of co-infection. Furthermore, our data may indicate a novel role for ACKR3, with an impact not limited to auto-inflammatory diseases, but extending to infection-related neuroinflammation as well. AKCR3-induced blood-brain barrier breakdown might constitute a potential common pathomechanism.
Neisseria meningitidis (meningococcus) causes invasive diseases such as meningitis or septicaemia. Ex vivo infection of human whole blood is a valuable tool to study meningococcal virulence factors and the host innate immune responses. In order to consider effects of cellular mediators, the coagulation cascade must be inhibited to avoid clotting. There is considerable variation in the anticoagulants used among studies of N. meningitidis whole blood infections, featuring citrate, heparin or derivatives of hirudin, a polypeptide from leech saliva. Here, we compare the influence of these three different anticoagulants, and additionally Mg/EGTA, on host innate immune responses as well as on viability of N. meningitidis strains isolated from healthy carriers and disease cases, reflecting different sequence types and capsule phenotypes. We found that the anticoagulants significantly impact on cellular responses and, strain-dependently, also on bacterial survival. Hirudin does not inhibit complement and is therefore superior over the other anticoagulants; indeed hirudin-plasma most closely reflects the characteristics of serum during N. meningitidis infection. We further demonstrate the impact of heparin on complement activation on N. meningitidis and its consequences on meningococcal survival in immune sera, which appears to be independent of the heparin binding antigens Opc and NHBA.
The host's defense against invasive mold infections relies on diverse antimicrobial activities of innate immune cells. However, studying these mechanisms in vitro is complicated by the filamentous nature of such pathogens that typically form long, branched, multinucleated and compartmentalized hyphae. Here we describe a novel method that allows for the visualization and quantification of the antifungal killing activity exerted by human granulocytes against hyphae of the opportunistic pathogen Aspergillus fumigatus. The approach relies on the distinct impact of fungal cell death on the morphology of mitochondria that were visualized with green fluorescent protein (GFP). We show that oxidative stress induces complete fragmentation of the tubular mitochondrial network which correlates with cell death of affected hyphae. Live cell microscopy revealed a similar and non-reversible disruption of the mitochondrial morphology followed by fading of fluorescence in Aspergillus hyphae that were killed by human granulocytes. Quantitative microscopic analysis of fixed samples was subsequently used to estimate the antifungal activity. By utilizing this assay, we demonstrate that lipopolysaccharides as well as human serum significantly increase the killing efficacy of the granulocytes. Our results demonstrate that evaluation of the mitochondrial morphology can be utilized to assess the fungicidal activity of granulocytes against A. fumigatus hyphae.
Bloodstream infections by the human-pathogenic fungi Candida albicans and Candida glabrata increasingly occur in hospitalized patients and are associated with high mortality rates. The early immune response against these fungi in human blood comprises a concerted action of humoral and cellular components of the innate immune system. Upon entering the blood, the majority of fungal cells will be eliminated by innate immune cells, i.e., neutrophils and monocytes. However, recent studies identified a population of fungal cells that can evade the immune response and thereby may disseminate and cause organ dissemination, which is frequently observed during candidemia. In this study, we investigate the so far unresolved mechanism of fungal immune evasion in human whole blood by testing hypotheses with the help of mathematical modeling. We use a previously established state-based virtual infection model for whole-blood infection with C. albicans to quantify the immune response and identified the fungal immune-evasion mechanism. While this process was assumed to be spontaneous in the previous model, we now hypothesize that the immune-evasion process is mediated by host factors and incorporate such a mechanism in the model. In particular, we propose, based on previous studies that the fungal immune-evasion mechanism could possibly arise through modification of the fungal surface by as of yet unknown proteins that are assumed to be secreted by activated neutrophils. To validate or reject any of the immune-evasion mechanisms, we compared the simulation of both immune-evasion models for different infection scenarios, i.e., infection of whole blood with either C. albicans or C. glabrata under non-neutropenic and neutropenic conditions. We found that under non-neutropenic conditions, both immune-evasion models fit the experimental data from whole-blood infection with C. albicans and C. glabrata. However, differences between the immune-evasion models could be observed for the infection outcome under neutropenic conditions with respect to the distribution of fungal cells across the immune cells. Based on these predictions, we suggested specific experimental studies that might allow for the validation or rejection of the proposed immune-evasion mechanism.
Neisseria meningitidis ist Auslöser invasiver Infektionen, die Sepsis und Meningitis hervorrufen. Bakterielle ADP-Ribosyltransferasen wurden als Toxine zahlreicher Bakterien wie E.coli, V. cholerae und B. pertussis beschrieben, die postranslationale Modifikationen bei eukaryotischen Proteinen mit pathologischer Wirkung für den Menschen hervorrufen. Die ADP-Ribosyltransferase NarE von Neisserien ist auf der Basis von Sequenzhomologien identifiziert worden. Die enzymatische Aktivität des Proteins wurde bereits in Studien gezeigt. Ziel dieser Arbeit war, NarE aus epidemiologischem und populationsbiologischem Blickwinkel zu betrachten.
Insgesamt wurden 576 Meningokokkenisolate (109 Isolate aus der Stammsammlung des Instituts für Hygiene und Mikrobiologie Würzburg und 467 Isolate der Meningococcus Genome Library der Meningitis Research Foundation) auf das Vorhandensein von narE sowie auf Sequenzvariationen untersucht. Das Ergebnis zeigte den Besitz des Gens bei insgesamt 247 Stämmen. Bis auf zwei Punktmutationen waren alle untersuchten narE-Sequenzen identisch. Die narE-positiven Isolate konnten neun klonalen Komplexen zugeordnet werden.
Zusätzlich wurde veranschaulicht, dass das Gen in Komplexen vorkommt, die verwandtschaftlich nicht eng miteinander verbunden sind.
Mittels Western Blot konnte bei allen narE-positiven Meningokokken die Proteinexpression bestätigt werden, wobei ein signifikanter Unterschied zwischen Stämmen des cc32 und cc41/44 festzustellen war. Auf Transkriptionsebene konnte mittels qRT-PCR kein Unterschied zwischen diesen Komplexen ermittelt werden, so dass der Expressionsunterschied auf einem posttranskriptionellen Mechanismus beruhen muss.
Neisseria gonorrhoeae ist ebenfalls im Besitz des Gens wie von Masignani et al. (2003) am Beispiel weniger Isolate beschrieben. In dieser Arbeit konnte für alle 29 getesteten Gonokokken die Insertion von vier Basenpaaren bestätigt werden, die zu einer Verschiebung im Leseraster führt, so dass NarE nicht exprimiert wird. Auch ein Neisseria sicca Stamm beinhaltet und exprimiert das narE-Gen.
Die alveoläre Echinokokkose ist eine lebensbedrohliche Erkrankung, die durch tumorartig in der Leber wachsende Larven (Metazestoden) des Fuchsbandwurms ausgelöst wird. Während Th1-dominierte Immunantworten zur Expulsion des Parasiten führen können, sind Th2-Antworten mit chronischer Infektion assoziiert. Über seine exkretorisch-sekretorischen Produkte (ESPs) nimmt Echinococcus multilocularis Einfluss auf die Polarisierung der Immunantwort. Allerdings ist bislang nur wenig über die zugrundeliegenden Mechanismen und aktiven Komponenten der ESPs bekannt.
Die Immunmodulation durch Eier des Pärchenegels Schistosoma mansoni, der wie E. multilocularis zu den Plattwürmern gehört, ist dagegen schon besser charakterisiert. Hier hat omega-1, eine Ribonuklease der T2-Familie, Aufmerksamkeit als starker Induktor von Th2-Antworten und als Hepatotoxin erregt.
Die Fragestellung dieser Arbeit war nun, ob die T2-RNase des Fuchsbandwurms (EmRNASET2) hinsichtlich ihrer Wirkungen auf Zellen des Immunsystems und der Leber Ähnlichkeiten mit omega-1 besitzt. Es konnte gezeigt werden, dass EmRNASET2 von allen Larvenstadien und auch vom adulten Wurm exprimiert wird. Der Einsatz polyklonaler Antikörper gegen rekombinant in Escherichia coli exprimierte recEmRNASET2 ermöglichte den Nachweis des Proteins in den ESPs von Primärzellen, die das frühe Stadium sich entwickelnder Metazestoden darstellen, und, wenngleich geringer ausgeprägt, in ESPs reifer Metazestoden.
Zur Untersuchung einer möglichen immunmodulatorischen Wirkung wurden dendritische Zellen (DCs) aus murinem Knochenmark generiert und mit Überständen recEmRNASET2-produzierender HEK-Zellen exponiert. Diese zeigten im Vergleich zu Überständen von mit leerem Transfektionsvektor behandelten HEK-Zellen keine signifikante Inhibition der LPS-induzierten Reifung und Interleukin-12-Produktion von DCs, wie sie für omega-1 beschrieben ist. Auch ein Pilotexperiment mit der Leberzelllinie Hep3B lieferte keinen Anhalt für eine hepatotoxische Wirkung von EmRNASET2. Somit sprechen die Ergebnisse dieser Arbeit gegen eine funktionelle Verwandtschaft von EmRNASET2 und omega-1. Unterstützt wird diese Beobachtung durch eine orientierende phylogenetische Untersuchung, in der sich EmRNASET2 näher verwandt zu einer zweiten T2-RNase von S. mansoni zeigte. Omega-1 könnte also das Resultat einer Genduplikation mit anschließender Akquirierung immunmodulatorischer Funktionen sein.
Neisseria meningitidis (meningococcus) is a Gram-negative bacterium responsible for epidemic meningitis and sepsis worldwide. A critical step in the development of meningitis is the interaction of bacteria with cells forming the blood-cerebrospinal fluid barrier, which requires tight adhesion of the pathogen to highly specialized brain endothelial cells. Two endothelial receptors, CD147 and the β2-adrenergic receptor, have been found to be sequentially recruited by meningococci involving the interaction with type IV pilus. Despite the identification of cellular key players in bacterial adhesion the detailed mechanism of invasion is still poorly understood. Here, we investigated cellular dynamics and mobility of the type IV pilus receptor CD147 upon treatment with pili enriched fractions and specific antibodies directed against two extracellular Ig-like domains in living human brain microvascular endothelial cells. Modulation of CD147 mobility after ligand binding revealed by single-molecule tracking experiments demonstrates receptor activation and indicates plasma membrane rearrangements. Exploiting the binding of Shiga (STxB) and Cholera toxin B (CTxB) subunits to the two native plasma membrane sphingolipids globotriaosylceramide (Gb3) and raft-associated monosialotetrahexosylganglioside GM1, respectively, we investigated their involvement in bacterial invasion by super-resolution microscopy. Structured illumination microscopy (SIM) and direct stochastic optical reconstruction microscopy (dSTORM) unraveled accumulation and coating of meningococci with GM1 upon cellular uptake. Blocking of CTxB binding sites did not impair bacterial adhesion but dramatically reduced bacterial invasion efficiency. In addition, cell cycle arrest in G1 phase induced by serum starvation led to an overall increase of GM1 molecules in the plasma membrane and consequently also in bacterial invasion efficiency. Our results will help to understand downstream signaling events after initial type IV pilus-host cell interactions and thus have general impact on the development of new therapeutics targeting key molecules involved in infection.
Background
Ureaplasma species (spp.) are commonly regarded as low-virulent commensals but may cause invasive diseases in immunocompromised adults and in neonates, including neonatal meningitis. The interactions of Ureaplasma spp. with host defense mechanisms are poorly understood. This study addressed Ureaplasma-driven cell death, concentrating on apoptosis as well as inflammatory cell death.
Methods
Human brain microvascular endothelial cells (HBMEC) were exposed to Ureaplasma (U.) urealyticum serovar 8 (Uu8) and U. parvum serovar 3 (Up3). Resulting numbers of dead cells as well as mRNA levels and enzyme activity of key agents in programmed cell death were assessed by flow cytometry, RNA sequencing, and qRT-PCR, respectively. xCELLigence data were used for real-time monitoring of changes in cell adhesion properties.
Results
Both Ureaplasma isolates induced cell death (p < 0.05, vs. broth). Furthermore, Ureaplasma spp. enhanced mRNA levels for genes in apoptosis, including caspase 3 (Up3 p < 0.05, vs. broth), caspase 7 (p < 0.01), and caspase 9 (Up3 p < 0.01). Caspase 3 activity was increased upon Uu8 exposure (p < 0.01). Vice versa, Ureaplasma isolates downregulated mRNA levels for proteins involved in inflammatory cell death, namely caspase 1 (Uu8 p < 0.01, Up3 p < 0.001), caspase 4 (Uu8 p < 0.05, Up3 p < 0.01), NOD-like receptor pyrin domain-containing 3 (Uu8 p < 0.05), and receptor-interacting protein kinase 3 (p < 0.05).
Conclusions
By inducing apoptosis in HBMEC as main constituents of the blood-brain barrier, Ureaplasma spp. may provoke barrier breakdown. Simultaneous suppression of inflammatory cell death may additionally attenuate host defense strategies. Ultimate consequence could be invasive and long-term CNS infections by Ureaplasma spp.
Fungi of the order Mucorales colonize all kinds of wet, organic materials and represent a permanent part of the human environment. They are economically important as fermenting agents of soybean products and producers of enzymes, but also as plant parasites and spoilage organisms. Several taxa cause life-threatening infections, predominantly in patients with impaired immunity. The order Mucorales has now been assigned to the phylum Mucoromycota and is comprised of 261 species in 55 genera. Of these accepted species, 38 have been reported to cause infections in humans, as a clinical entity known as mucormycosis. Due to molecular phylogenetic studies, the taxonomy of the order has changed widely during the last years. Characteristics such as homothallism, the shape of the suspensors, or the formation of sporangiola are shown to be not taxonomically relevant. Several genera including Absidia, Backusella, Circinella, Mucor, and Rhizomucor have been amended and their revisions are summarized in this review. Medically important species that have been affected by recent changes include Lichtheimia corymbifera, Mucor circinelloides, and Rhizopus microsporus. The species concept of Rhizopus arrhizus (syn. R. oryzae) is still a matter of debate. Currently, species identification of the Mucorales is best performed by sequencing of the internal transcribed spacer (ITS) region. Ecologically, the Mucorales represent a diverse group but for the majority of taxa, the ecological role and the geographic distribution remain unknown. Understanding the biology of these opportunistic fungal pathogens is a prerequisite for the prevention of infections, and, consequently, studies on the ecology of the Mucorales are urgently needed.
Zahlreiche humanpathogene bakterielle Erreger können ihre Fähigkeit zur Kolonisation epithelialer Barrieren optimieren, indem sie mit dem Zellzyklus der infizierten Wirtszelle in Wechselwirkung treten und so die Abschilferung und Erneuerung des Epithels verzögern. Die hierbei wirksamen bakteriellen Effektoren sind als „Cyclomoduline“ bekannt und gelten als neue Klasse bakterieller Pathogenitätsfaktoren. Ziel der vorliegenden Promotionsarbeit war es zu untersuchen, ob durch die Infektion menschlicher pharyngealer Epithelzellen mit N. meningitidis der Zellzyklus der Wirtszelle beeinflusst wird. Mit zwei verschiedenen Untersuchungsmethoden konnte übereinstimmend gezeigt werden, dass die Infektion der Epithelzelllinie Detroit 562 mit verschiedenen Meningokokkenisolaten zu einer signifikanten Akkumulation von Epithelzellen in der G1-Phase führte. Dieser Effekt wurde sowohl von pathogenen Meningokokkenstämmen als auch von Trägerstämmen ausgelöst, jedoch nur durch Isolate, die fähig zur Adhärenz und zur Invasion in die Epithelzelle waren. Durch Hitzebehandlung der Bakterien konnte der Zellzyklusarrest vollständig aufgehoben werden. Ebenso konnte der Effekt durch Inkubation der Epithelzellen mit bakteriellen Kulturüberständen und durch Infektion der Zellen mit E. coli-Stämmen, welche die Meningokokkenadhäsine Opa und Opc überexprimieren, nicht ausgelöst werden.
Es konnte weiterhin nachgewiesen werden, dass die Infektion mit N. meningitidis in der Zielzelle zu einer signifikant gesteigerten Expression des CDK-Inhibitors p21WAF1/Cip1 führte, begleitet von einer vermehrten Lokalisation im Zellkern. Auch zeigte sich eine veränderte Proteinexpression der für die G1-Phase relevanten Cycline D und E. Diese scheint sich erst posttranslational zu ereignen, da die unterschiedliche Expression auf mRNA-Ebene nicht festgestellt werden konnte.
Zusammenfassend konnte dargestellt werden, dass die Infektion von Pharynxepithelzellen mit lebenden, zur Adhärenz und Invasion fähigen Meningokokkenstämmen in der menschlichen Zielzelle einen Zellzyklusarrest in der G1-Phase verursacht, vermutlich durch veränderte Expression der Zellzyklusregulatoren p21WAF1/Cip1, Cyclin D und Cyclin E. Möglicherweise stellt die Induktion dieses Zellzyklusarrestes einen wichtigen Schritt in der Pathogenese der bakteriellen Kolonisation des oberen Atemwegsepithels durch N. meningitidis dar.
Meningococcal meningitis is a severe central nervous system infection that occurs when Neisseria meningitidis (Nm) penetrates brain endothelial cells (BECs) of the meningeal blood-cerebrospinal fluid barrier. As a human-specific pathogen, in vivo models are greatly limited and pose a significant challenge. In vitro cell models have been developed, however, most lack critical BEC phenotypes limiting their usefulness. Human BECs generated from induced pluripotent stem cells (iPSCs) retain BEC properties and offer the prospect of modeling the human-specific Nm interaction with BECs. Here, we exploit iPSC-BECs as a novel cellular model to study Nm host-pathogen interactions, and provide an overview of host responses to Nm infection. Using iPSC-BECs, we first confirmed that multiple Nm strains and mutants follow similar phenotypes to previously described models. The recruitment of the recently published pilus adhesin receptor CD147 underneath meningococcal microcolonies could be verified in iPSC-BECs. Nm was also observed to significantly increase the expression of pro-inflammatory and neutrophil-specific chemokines IL6, CXCL1, CXCL2, CXCL8, and CCL20, and the secretion of IFN-γ and RANTES. For the first time, we directly observe that Nm disrupts the three tight junction proteins ZO-1, Occludin, and Claudin-5, which become frayed and/or discontinuous in BECs upon Nm challenge. In accordance with tight junction loss, a sharp loss in trans-endothelial electrical resistance, and an increase in sodium fluorescein permeability and in bacterial transmigration, was observed. Finally, we established RNA-Seq of sorted, infected iPSC-BECs, providing expression data of Nm-responsive host genes. Altogether, this model provides novel insights into Nm pathogenesis, including an impact of Nm on barrier properties and tight junction complexes, and suggests that the paracellular route may contribute to Nm traversal of BECs.
The complement system is pivotal in the defense against invasive disease caused by Neisseria meningitidis (Nme, meningococcus), particularly via the membrane attack complex. Complement activation liberates the anaphylatoxins C3a and C5a, which activate three distinct G-protein coupled receptors, C3aR, C5aR1 and C5aR2 (anaphylatoxin receptors, ATRs). We recently discovered that C5aR1 exacerbates the course of the disease, revealing a downside of complement in Nme sepsis. Here, we compared the roles of all three ATRs during mouse nasal colonization, intraperitoneal infection and human whole blood infection with Nme. Deficiency of complement or ATRs did not alter nasal colonization, but significantly affected invasive disease: Compared to WT mice, the disease was aggravated in C3ar\(^{-/-}\) mice, whereas C5ar1\(^{-/-}\) and C5ar2\(^{-/-}\) mice showed increased resistance to meningococcal sepsis. Surprisingly, deletion of either of the ATRs resulted in lower cytokine/chemokine responses, irrespective of the different susceptibilities of the mice. This was similar in ex vivo human whole blood infection using ATR inhibitors. Neutrophil responses to Nme were reduced in C5ar1\(^{-/-}\) mouse blood. Upon stimulation with C5a plus Nme, mouse macrophages displayed reduced phosphorylation of ERK1/2, when C5aR1 or C5aR2 were ablated or inhibited, suggesting that both C5a-receptors prime an initial macrophage response to Nme. Finally, in vivo blockade of C5aR1 alone (PMX205) or along with C5aR2 (A8\(^{Δ71−73}\)) resulted in ameliorated disease, whereas neither antagonizing C3aR (SB290157) nor its activation with a “super-agonist” peptide (WWGKKYRASKLGLAR) demonstrated a benefit. Thus, C5aR1 and C5aR2 augment disease pathology and are interesting targets for treatment, whereas C3aR is protective in experimental meningococcal sepsis.
Background
Tapeworms lack a canonical piRNA-pathway, raising the question of how they can silence existing mobile genetic elements (MGE). Investigation towards the underlying mechanisms requires information on tapeworm transposons which is, however, presently scarce.
Methods
The presence of densovirus-related sequences in tapeworm genomes was studied by bioinformatic approaches. Available RNA-Seq datasets were mapped against the Echinococcus multilocularis genome to calculate expression levels of densovirus-related genes. Transcription of densovirus loci was further analyzed by sequencing and RT-qPCR.
Results
We herein provide evidence for the presence of densovirus-related elements in a variety of tapeworm genomes. In the high-quality genome of E. multilocularis we identified more than 20 individual densovirus integration loci which contain the information for non-structural and structural virus proteins. The majority of densovirus loci are present as head-to-tail concatemers in isolated repeat containing regions of the genome. In some cases, unique densovirus loci have integrated close to histone gene clusters. We show that some of the densovirus loci of E. multilocularis are actively transcribed, whereas the majority are transcriptionally silent. RT-qPCR data further indicate that densovirus expression mainly occurs in the E. multilocularis stem cell population, which probably forms the germline of this organism. Sequences similar to the non-structural densovirus genes present in E. multilocularis were also identified in the genomes of E. canadensis, E. granulosus, Hydatigera taeniaeformis, Hymenolepis diminuta, Hymenolepis microstoma, Hymenolepis nana, Taenia asiatica, Taenia multiceps, Taenia saginata and Taenia solium.
Conclusions
Our data indicate that densovirus integration has occurred in many tapeworm species. This is the first report on widespread integration of DNA viruses into cestode genomes. Since only few densovirus integration sites were transcriptionally active in E. multilocularis, our data are relevant for future studies into gene silencing mechanisms in tapeworms. Furthermore, they indicate that densovirus-based vectors might be suitable tools for genetic manipulation of cestodes.
Bacterial meningitis is a serious life threatening infection of the CNS. To cause meningitis, blood–borne bacteria need to interact with and penetrate brain endothelial cells (BECs) that comprise the blood–brain barrier. BECs help maintain brain homeostasis and they possess an array of efflux transporters, such as P-glycoprotein (P-gp), that function to efflux potentially harmful compounds from the CNS back into the circulation. Oftentimes, efflux also serves to limit the brain uptake of therapeutic drugs, representing a major hurdle for CNS drug delivery. During meningitis, BEC barrier integrity is compromised; however, little is known about efflux transport perturbations during infection. Thus, understanding the impact of bacterial infection on P-gp function would be important for potential routes of therapeutic intervention. To this end, the meningeal bacterial pathogen, Streptococcus agalactiae, was found to inhibit P-gp activity in human induced pluripotent stem cell-derived BECs, and live bacteria were required for the observed inhibition. This observation was correlated to decreased P-gp expression both in vitro and during infection in vivo using a mouse model of bacterial meningitis. Given the impact of bacterial interactions on P-gp function, it will be important to incorporate these findings into analyses of drug delivery paradigms for bacterial infections of the CNS.
The central nervous system (CNS) barriers are highly specialized cellular barriers that promote brain homeostasis while restricting pathogen and toxin entry. The primary cellular constituent regulating pathogen entry in most of these brain barriers is the brain endothelial cell (BEC) that exhibits properties that allow for tight regulation of CNS entry. Bacterial meningoencephalitis is a serious infection of the CNS and occurs when bacteria can cross specialized brain barriers and cause inflammation. Models have been developed to understand the bacterial – BEC interaction that lead to pathogen crossing into the CNS, however, these have been met with challenges due to these highly specialized BEC phenotypes. This perspective provides a brief overview and outlook of the in vivo and in vitro models currently being used to study bacterial brain penetration, and opinion on improved models for the future.
Although usually asymptomatically colonizing the human nasopharynx, the Gram-negative bacterium Neisseria meningitidis (meningococcus) can spread to the blood stream and cause invasive disease. For survival in blood, N. meningitidis evades the complement system by expression of a polysaccharide capsule and surface proteins sequestering the complement regulator factor H (fH). Meningococcal strains belonging to the sequence type (ST-) 41/44 clonal complex (cc41/44) cause a major proportion of serogroup B meningococcal disease worldwide, but they are also common in asymptomatic carriers. Proteome analysis comparing cc41/44 isolates from invasive disease versus carriage revealed differential expression levels of the outer membrane protein NspA, which binds fH. Deletion of nspA reduced serum resistance and NspA expression correlated with fH sequestration. Expression levels of NspA depended on the length of a homopolymeric tract in the nspA promoter: A 5-adenosine tract dictated low NspA expression, whereas a 6-adenosine motif guided high NspA expression. Screening German cc41/44 strain collections revealed the 6-adenosine motif in 39% of disease isolates, but only in 3.4% of carriage isolates. Thus, high NspA expression is associated with disease, but not strictly required. The 6-adenosine nspA promoter is most common to the cc41/44, but is also found in other hypervirulent clonal complexes.
Ureaplasma species are common colonizers of the adult genitourinary tract and often considered as low-virulence commensals. Intraamniotic Ureaplasma infections, however, facilitate chorioamnionitis and preterm birth, and cases of Ureaplasma-induced neonatal sepsis, pneumonia, and meningitis raise a growing awareness of their clinical relevance. In vitro studies are scarce but demonstrate distinct Ureaplasma-driven impacts on immune mechanisms. The current study addressed cytokine and chemokine responses upon exposure of native or lipopolysaccharide (LPS) co-stimulated human brain microvascular endothelial cells (HBMEC) to Ureaplasma urealyticum or U. parvum, using qRT-PCR, RNA sequencing, multi-analyte immunoassay, and flow cytometry. Ureaplasma exposure in native HBMEC reduced monocyte chemoattractant protein (MCP)-3 mRNA expression (p < 0.01, vs. broth). In co-stimulated HBMEC, Ureaplasma spp. attenuated LPS-evoked mRNA responses for C-X-C chemokine ligand 5, MCP-1, and MCP-3 (p < 0.05, vs. LPS) and mitigated LPS-driven interleukin (IL)-1α protein secretion, as well as IL-8 mRNA and protein responses (p < 0.05). Furthermore, Ureaplasma isolates increased C-X-C chemokine receptor 4 mRNA levels in native and LPS co-stimulated HBMEC (p < 0.05). The presented results may imply immunomodulatory capacities of Ureaplasma spp. which may ultimately promote chronic colonization and long-term neuroinflammation.
The mold Fusarium is a ubiquitous fungus causing plant, animal and human infections. In humans, Fusarium spp. are the major cause of eye infections in patients wearing contact lenses or after local trauma. Systemic infections by Fusarium spp. mainly occur in immunosuppressed patients and can disseminate throughout the human body. Due to high levels of resistance to antifungals a fast identification of the causative agent is an urgent need. By using a probe-based real-time PCR assay specific for the genus Fusarium we analysed several different clinical specimens detecting Fusarium spp. commonly found in clinical samples in Germany. Also, a large collection of lung fluid samples of haematological patients was analysed (n = 243). In these, two samples (0.8%) were reproducibly positive, but only one could be confirmed by sequencing. For this case of probable invasive fungal disease (IFD) culture was positive for Fusarium species. Here we describe a rapid, probe-based real-time PCR assay to specifically detect DNA from a broad range of Fusarium species and its application to clinically relevant specimens.
Objective
The aim of this study was to determine the prevalence of Neisseria meningitidis, Haemophilus influenzae, Streptococcus pneumoniae, group A Streptococcus (GAS), and Staphylococcus aureus in asymptomatic elderly people and to unravel risk factors leading to colonization.
Methods
A multi-centre cross-sectional study was conducted including 677 asymptomatic adults aged 65 years or more, living at home or in nursing homes. Study areas were Greater Aachen (North-Rhine-Westphalia) and Wuerzburg (Bavaria), both regions with medium to high population density. Nasal and oropharyngeal swabs as well as questionnaires were collected from October 2012 to May 2013. Statistical analysis included multiple logistic regression models.
Results
The carriage rate was 1.9% ([95%CI: 1.0–3.3%]; 13/677) for H. influenzae, 0.3% ([95%CI: 0–1.1%]; 2/677) for N. meningitidis and 0% ([95% CI: 0–0.5%]; 0/677) for S. pneumoniae and GAS. Staphylococcus aureus was harboured by 28.5% of the individuals ([95% CI: 25.1–32.1%]; 193/677) and 0.7% ([95% CI: 0.2–1.7%]; 5/677) were positive for methicillin-resistant S. aureus. Among elderly community-dwellers colonization with S. aureus was significantly associated with higher educational level (adjusted OR: 1.905 [95% CI: 1.248–2.908]; p = 0.003). Among nursing home residents colonization was associated with being married (adjusted OR: 3.367 [1.502–7.546]; p = 0.003).
Conclusion
The prevalence of N. meningitidis, H. influenzae, S. pneumoniae and GAS was low among older people in Germany. The S. aureus rate was expectedly high, while MRSA was found in less than 1% of the individuals.