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In dieser Arbeit wurden neue Methoden zur Analyse des Proteoms von Listeria monocytogenes in infizierten Wirtszellen entwickelt und evaluiert. Proteomische Analysen können im Vergleich zu transkriptomischen Analysen durch Erfassung von Proteinmengen und eventuell auch posttranslationalen Modifikationen, sowie von Abbauprozessen ein genaueres Abbild des Funktionszustands einer Zelle unter unterschiedlichen Umweltbedingungen darstellen. Das Hauptproblem bei proteomischen Untersuchungen an in eukaryontischen Wirtszellen gewachsenen Bakterien, nämlich die Überlagerung des bakteriellen Proteinmusters durch die im Überschuss vorhandenen Wirtszellproteine, musste in dieser Arbeit überwunden werden. Es wurde eine Methode etabliert, intrazellulär gewachsene Bakterien über Bindung an paramagnetische Partikel („Beads“) und anschließende Magnetseparation selektiv von Wirtszellkomponenten abzutrennen. Dabei wurden drei Beads-Varianten mit unterschiedlicher Beschichtung gewählt: Dynabeads anti Listeria (Dynal, Oslo), Kieselgel  Magnetit Beads (MERCK in Entwicklung), Dynabeads M-270 Epoxy – CBD Beads (Beschichtung mit Phagenlysin Ply 118). Hierbei konnte nur für die Kieselgel + Magnetit Beads eine hinreichende Isolierungsrate für die Methode der 2-D-Gelelektrophorese von 6-7* 10**7 Listerien/ Zellkulturflasche erreicht werden. Im 2-D-Proteingel zeigte sich jedoch eine starke Streifenbildung, wodurch sich dieser Ansatz als nicht auswertbar erwies. In einem alternativen Ansatz gelang es, aus Infektionen an J774-Makrophagen, die Listerien mittels konsekutiver Waschschritte von Wirtszellproteinen aufzureinigen. Es konnten aus den Infektionen 30-50 µg listerielles Protein isoliert und zweidimensional aufgetrennt werden, wobei das Proteinpattern qualitativ eindeutig dem von in vitro gewachsenen Listeria monocytogenes entsprach. Auf diese Weise konnten 38 Proteine von Listeria monocytogenes, welche von Listerien während der Infektion in Makrophagen induziert oder reprimiert werden anhand der Deta-2-D Software identifiziert, quantifiziert und statistisch ausgewertet werden. Für einige der hier mittels der neu entwickelten Methode identifizierten Proteine konnte anhand der der vorliegenden Literatur (zu Transkriptom, Sekretom, Virulenz von Listeria) bereits eine Beteiligung am Virulenzgeschehen nachgewiesen werden. Zum jetzigen Zeitpunkt unterliegt die proteomische Analyse einigen Limitierungen, z.B. beim Nachweis von schwach exprimierten, stark alkalischen, stark hydrophoben, hochmolekularen und niedermolekularen Proteinen, so dass die derzeitige Methodik noch nicht das gesamte Proteom abdecken kann. Dass die „klassischen“ Virulenzfaktoren pathogener Listerien, Listeriolysin O (LLO), die Phospholipasen PlcA und PlcB, sowie ActA hier nicht erfasst wurden, ist darin begründet, dass es sich um sekretierte Proteine handelt. Besondere Bedeutung kommt der Beobachtung zu, dass nur in ganz wenigen Fällen (z.B. Pgm, ClpP, Pgi, TrxB, MurC) die nachgewiesenen intrazellulären Veränderungen der Proteinmenge mit den von anderen publizierten Transkriptionsdaten übereinstimmen. Diese Diskrepanzen stellen keine Artefakte dar, sondern sind durch intrazelluläre posttranskriptionelle Mechanismen begründet. Insgesamt zeigte auch diese Proteinanalyse , dass bei Replikation von Listeria monocytogenes im Cytosol eukaryontischer Wirtszellen zahlreiche komplexe Anpassungen von teils zentralen aber auch peripheren Stoffwechselwegen und Biosynthesen der Bakterien an dieses spezielle Milieu ablaufen.
Die Fanconi Anämie (FA) stellt eine sowohl genetisch als auch phänotypisch äußerst heterogene, autosomal rezessiv und X-chromosomal vererbte Erkrankung dar. Sie ist gekennzeichnet durch chromosomale Instabilität, ein chronisch progredientes Knochenmarkversagen, multiple kongenitale Fehlbildungen und eine Prädisposition zu diversen Neoplasien. Auf zellulärer Ebene ist die FA durch eine erhöhte spontane Chromosomenbrüchigkeit sowie einer Hypersensitivität gegenüber DNA-schädigenden Agenzien charakterisiert. Bislang konnten 13 Komplementations-gruppen (FA-A bis FA-N) und ihre jeweiligen Gene identifiziert werden. Die FA-Proteine spielen eine wichtige Rolle bei der Reparatur von DNA-Doppelstrang-brüchen. Die breite genetische Heterogenität der Fanconi Anämie und die große Anzahl privater Mutationen, aufgrund derer kaum interindividuelle Vergleiche möglich sind, erschweren eine Genotyp-Phänotyp Korrelation ebenso wie der compound-heterozygote Mutationsstatus vieler FA-Patienten. Bisherige Untersuchungen weisen darauf hin, dass die Art der jeweiligen Mutation einen größeren Einfluß auf die phänotypische Ausprägung der Erkrankung hat als die Art des betroffenen Gens. Zusätzlich zeichnet die Fanconi Anämie eine große phänotypische Variabilität aus, die sich in höchst unterschiedlichen Krankheitsausprägungen und –verläufen äußert. Um aussagekräftige Genotyp-Phänotyp Korrelationen etablieren zu können, bedarf es einer ausreichenden Anzahl von FA-Patienten, bei denen sowohl die Komplementationsgruppe als auch die zugrunde liegende Mutation eindeutig definiert wurden. In der vorliegenden Arbeit wurden exemplarisch die Krankheitsverläufe einiger Patienten (4 x FA-A, 1 x FA-B, 3 x FA-C, 1 x FA-D2 und 2 x FA-G) analysiert und mit den jeweiligen molekulargenetischen Befunden korreliert. Im Anschluss daran wurden in der Literatur beschriebene Genotyp-Phänotyp Korrelationen erläutert, verschiedene Mechanismen der phänotypischen Variabilität dargestellt und abschließend prägnante Kasuistiken nochmals hervorgehoben.
Im Jahre 2004 wurden in unserem Labor zwei Gene einer neuen Proteinfamilie kloniert, deren Charakterisierung seither im Gange ist. Das eine Protein, VKORC1, konnte durch Mutationsanalysen und biochemische Untersuchungen als eine zentrale Komponente des so genannten Vitamin K-Zyklus identifiziert werden. Vitamin K wird für die γ-Carboxylierung der Vitamin K-abhängigen Proteine wie z.B. der Gerinnungsfaktoren II, VII, IX und X als Cofaktor der γ-Glutamyl-Carboxylase benötigt. Da Vitamin K essentiell ist, wird seine Epoxidform vom Organismus wieder in eine physiologisch aktive Hydrochinon-Form überführt. Für diese Reaktion wird die Vitamin K-Epoxid-Reduktase (VKORC1) benötigt. Mutationen in VKORC1 führen einerseits zu einem erblich bedingten Mangel an Vitamin K-abhängigen Gerinnungsfaktoren vom Typ 2 (VKCFD2) mit starken Blutungen durch eine nicht oder nur unvollständig ablaufende Blutgerinnung. Das VKORC1 ist andererseits auch das Ziel von Medikamenten der Coumaringruppe, der sog. Vitamin K-Antagonisten, die zur Verhinderung einer unzeitigen Gerinnung eingesetzt werden. In höheren Dosen wird diese Substanzklasse als Rattenbekämpfungsmittel eingesetzt. Bei manchen Rattenpopulationen, aber auch bei einigen Patienten, ist die Wirksamkeit der Coumarine durch bestimmte Mutationen im VKORC1-Protein, welche eine Warfarinresistenz hervorrufen, erheblich eingeschränkt. Zu diesem VKORC1 existiert ein paraloges Protein, das Vitamin K-Epoxid-Reduktase Komplex 1-like 1 Protein (VKORC1L1), dessen Funktion bislang unbekannt ist und welches Gegenstand der vorliegenden Arbeit war. Es wurden unterschiedliche Methoden angewandt, um das VKORC1L1-Protein zu charakterisieren und seine mögliche Funktion(en) aufzuklären. Zum einen sollte die Herstellung einer Knockout-Maus dazu dienen, durch den erhaltenen Phänotyp Hinweise auf die mögliche physiologische Aufgabe zu erhalten. Allerdings gelangten die Versuche nur bis zur Generierung der Chimären, so dass dieses Teilprojekt nicht zum Abschluss gebracht werden konnte. Die biochemische Charakterisierung des Proteins zeigte eine Expression des VKORC1L1-Gens in allen untersuchten Geweben, wobei keine starke Expression für ein bestimmtes Gewebe ermittelt werden konnte. Es konnte gezeigt werden, dass das Protein Vitamin K-Epoxid auf gleiche Weise wie das VKORC1 recyceln kann und durch Warfarin gehemmt wird. Einige der in eingeführten VKORC1L1 Mutationen vermitteln darüber hinaus eine Warfarinresistenz. Des Weiteren wurden Enzymkinetiken für die Spezies Maus und Ratte sowie für die Stachelmaus erstellt. Die erhaltenen Werte für die Michaelis-Menten-Konstante und die Maximalgeschwindigkeit sind untereinander sehr ähnlich und sprechen für eine Oxido-Reduktase-Aktivität des VKORC1L1-Proteins. Bioinformatische Analysen konzentrierten sich auf die Aufklärung von konservierten Aminosäureresten im VKORC1L1. Dadurch konnten funktionell wichtige Positionen des Proteins ermittelt werden. Ein evolutiver Stammbaum konnte weiterhin zeigen, dass die paralogen Proteine VKORC1 und VKORC1L1 sehr wahrscheinlich aus einem gemeinsamen Vorläuferprotein bei der Entwicklung der Wirbeltiere aus einer Duplikation entstanden sind und nach der Entstehung der Landwirbeltiere ihre spezifischen Funktionen ausgebildet haben. Ein Homologievergleich zwischen den humanen Chromosomen 7 und 16 und den jeweiligen Chromosomen verschiedener Spezies zeigte, dass sich nach der Duplikation die Gene für das VKORC1 und das VKORC1L1 bei fast allen betrachteten Spezies unabhängig voneinander auf verschiedenen Chromosomen evolutiv entwickelt haben. Dies ist ein weiteres Indiz dafür, dass die Duplikation schon sehr lange zurück liegt.
The olfactory system of leafcutting ants: neuroanatomy and the correlation to social organization
(2009)
In leaf-cutting ants (genera Atta and Acromyrmex), the worker caste exhibits a pronounced size-polymorphism, and division of labor is largely dependent on worker size (alloethism). Behavioral studies have shown a rich diversity of olfactory-guided behaviors, and the olfactory system seems to be highly developed and very sensitive. To allow fine-tuned behavioral responses to different tasks, adaptations within the olfactory system of different sized workers are expected. In a recent study, two different phenotypes of the antennal lobe of Atta vollenweideri workers were found: MG- and RG-phenotype (with and without a macroglomerulus, MG). The existence of the macroglomerulus is correlated to the body size of workers, with small workers showing the RG-phenotype and large workers showing the MG-phenotype. In the MG, the information about the releaser component of the trail-pheromone is processed. In the first part of my PhD-project, I focus on quantifying behavioral differences between different sized workers in Atta vollenweideri. The study analyzes the trail following behavior; which can be generally performed by all workers. An artificial trail consisting of the releaser component of the trail-pheromone in decreasing concentration was used to test the trail-following performance of individual workers. The trail-following performance of the polymorphic workers is depended of the existence of the MG in the antennal lobe. Workers possessing the MG-phenotype were significantly better in following a decreasing trail then workers showing the RG-phenotype. In the second part I address the question if there are more structural differences, besides the MG, in the olfactory system of different sized workers. Therefore I analyze whether the glomerular numbers are related to worker size. The antennal lobes of small workers contain ~390 glomeruli (low-number; LN-phenotype), and in large workers I found a substantially higher number of ~440 glomeruli (high-number; HN-phenotype). All LN-phenotype workers and some of the small HN-phenotype workers do not possess an MG (LN-RG-phenotype and HN-RG-phenotype) at all, whereas the remaining majority of HN-phenotype workers do possess an MG (HN-MG-phenotype). Mass-stainings of antennal olfactory receptor neurons revealed that the sensory tracts divide the antennal lobe into six clusters of glomeruli (T1-T6). In the T4-cluster ~50 glomeruli are missing in the LN-phenotype workers. Selective staining of single sensilla and their associated receptor neurons showed that T4-glomeruli are innervated by receptor neurons from the main type of olfactory sensilla, the Sensilla trichodea curvata which are also projecting to glomeruli in all other clusters. The other type of olfactory sensilla, the Sensilla basiconica, exclusively innervates T6-glomeruli. Quantitative analyses revealed a correlation between the number of Sensilla basiconica and the volume of T6 glomeruli in different sized workers. The results of both behavioral and neuroanatomical studies in Atta vollenweideri suggest that developmental plasticity of antennal-lobe phenotypes promotes differences in olfactory-guided behavior which may underlie task specialization within ant colonies. The last part of my project focuses on the evolutionary origin of the macroglomerulus and the number of glomeruli in the antennal lobe. I compared the number, volumes and position of the glomeruli of the antennal lobe of 25 different species from all three major Attini groups (lower, higher and leaf-cutting Attini). The antennal lobes of all investigated Attini comprise a high number of glomeruli (257-630). The highest number was found in Apterostigma cf. mayri. This species is at a basal position within the Attini phylogeny, and a high number of glomeruli might have been advantageous in the evolution of the advanced olfactory systems of this Taxa. The macroglomerulus can be found in all investigated leaf-cutting Attini, but in none of the lower and higher Attini species. It is found only in large workers, and is located close to the entrance of the antennal nerve in all investigated species. The results indicate that the presence of a macroglomerulus in large workers of leaf-cutting Attini is a derived overexpression of a trait in the polymorphic leaf-cutting species. It presumably represents an olfactory adaptation to elaborate foraging and mass recruitment systems, and adds to the complexity of division of labor and social organization known for this group.
Die vorliegende Dissertation beschreibt detaillierte biochemische und biophysikalische Untersuchungen von rekombinanten Porinen aus den beiden pathogenen Bakterien Nocardia farcinica und Vibrio cholerae sowie von nativen Porinen aus drei Streptomyces Arten. Für die beiden pathogenen Vertreter sind bereits impermebable Zellwandstrukturen beschrieben worden (Daffe et al., 1993; Rodriguez-Torres et al., 1993). Für Streptomyces Arten ist keine vergeichbare, definierte äußere Zellwandbarriere bekannt. Im Fall von S. griseus konnten dennoch undefinierte, kovalente Lipidverknüpfungen mit der Peptidoglykanschicht nachgewiesen werden (Kim et al., 2001). Daher besteht die Notwendigkeit des Transports von Nährstoffen und anderer Moleküle auch bei Streptomyces Arten durch porenformende Proteine, so genannte Porine. Unter Porinen versteht man wassergefüllte Kanäle, die in zwei Klassen unterteilt werden können: allgemeine Diffusionsporen und substratspezifische Porine. Allgemeine Diffusionsporen filtern entsprechend der molekularen Masse der gelösten Substrate und weisen ein lineares Verhältnis zwischen Translokationsrate und Substratkonzentrationsgradient auf. Dagegen kann der Transport bestimmter Substanzen durch spezifische Porine mit einer Substrat-Bindestelle im Kanal durch die Michaelis-Menten-ähnliche Kinetik beschrieben werden. Diese Kanäle ermöglichen den schnellen Influx bestimmter Klassen von Substraten.
The chick midbrain is subdivided into functionally distinct ventral and dorsal domains, tegmentum and optic tectum. In the mature tectum, neurons are organized in layers, while they form discrete nuclei in the tegmentum. An interesting characteristic of the embryonic brain is the development of a large optic tectum, of which the growth becomes obvious at embryonic day 3 (E3). Dorsoventral (DV) specification of the early midbrain should thus play a crucial role for the organization of the neuronal circuitry in optic tectum and tegmentum. In the first part of my thesis, I investigated regional commitment and establishment of cellular differences along the midbrain DV axis. I examined the commitment of gene expression patterns in isolated ventral and dorsal tissue in vivo and in vitro, and studied their cell mixing properties. Explant cultures, and grafting of dorsal midbrain into a ventral environment or vice versa, revealed a gradual increase in the autonomy of region-specific gene regulation between, which was accompanied by a gradual increase in differential adhesive properties from E2 to E3, once the DV axis polarity was fixed. These events happened at a time-point when the majority of midbrain cells are not yet differentiated. Long-term transplantation (6 - 9 days) using quail cells from ventral midbrain as grafts showed the same result. Hence, the results suggest that progressive specification of the midbrain DV axis is accompanied by progressively reduced cell mixing between dorsal and ventral precursors, leading to a partial regionalization of midbrain tissue into autonomous units of precursor cell populations. In the second part I investigated the genes that might be involved in regulating the growth of the tectum. In particular, I focused on the role of Pax7 transcription factor, a paired domain protein. The results suggested that Pax7 was involved in regulating the medial-lateral extension of the tectum. Over expression of Pax7 in dorsal midbrain led to an enlarged tectum accompanied by a raise in cell division, while Pax7 knockdown by shrank caused a reduction in tectum. The overall pattern of neuronal differentiation was not disturbed by an up or down regulation of Pax7. Pax7 also positively regulated Pax3, another pair-ruled gene expressed dorsally. These results suggest that Pax7 very likely together with Pax3 could facilitate or maintain neural cell proliferation in the midbrain at early stages and that a regulation of the size in that region does not influence the neuronal patterning of the developmental field. I further checked the expression and function of a GFPase Rab 23, that was suggested to be involved in the DV patterning in mouse neural tube as a negative regulator of Shh signaling. Overexpression of Rab23 indicated that it facilitated the expression of Pax7 and Pax3 in the neural tube and suppressed ventral genes like Nkx6.1 cell autonomously, however, it did not disturb neuronal patterning. Interestingly, a thorough expression study of Rab 23 during chick early development revealed that Rab23 is already expressed very early and asymmetrically during gastrulation, suggesting a possible role of Rab23 on the left-right determination of Hensen’s node. In combination with the result that Rab23 is expressed in the notochord early in development, I assume that both Rab23 and Shh exist in all neural progenitor cells initially, and when their expression patterns separate gradually the neural cells adopt a ventral or dorsal fate according to their location along the dorsoventral axis. The avian embryo is a classic system used widely to investigate questions of vertebrate development. The easy and cheap accessibility of the embryo for in ovo or ex ovo experiments all around the year make it an ideal animal model to work with. The only recently developed method of over expressing genes in specific cells or regions in the chick embryo by electroporation enabled me to study different ways of gene suppression using this way of gene transfection. Thus, I compared the effect of long-hairpin and short hairpin dsRNA in different vectors and antisense morpholino oligonucleotides. The results revealed that all hairpin dsRNA constructs did reduce gene and protein expression often accompanied by morphological changes. Most efficiently were shRNAi constructs cloned into a siRNA-specific vector – pSilencer 1.0-U6. Gene silencing was already well observed 36 hours after transfection. In comparison antisense morpholino oligonucleotides did not show such big gene reduction as the shRNA in pSilencer. Taken together, this methodical research proposes that the shRNA in the pSilencer vector was a good and effective tool to reduce gene and protein expression locally.
Genome sequence analysis A combination of genome analysis application has been established here during this project. This offers an efficient platform to interactively compare similar genome regions and reveal loci differences. The genes and operons can be rapidly analyzed and local collinear blocks (LCBs) categorized according to their function. The features of interests are parsed, recognized, and clustered into reports. Phylogenetic relationships can be readily examined such as the evolution of critical factors or a certain highly-conserved region. The resulting platform-independent software packages (GENOVA and inGeno), have been proven to be efficient and easy to handle in a number of projects. The capabilities of the software allowed the investigation of virulence factors, e.g., rsbU, strains’ biological design, and in particular pathogenicity feature storage and management. We have successfully investigated the genomes of Staphylococcus aureus strains (COL, N315, 8325, RN1HG, Newman), Listeria spp. (welshimeri, innocua and monocytogenes), E.coli strains (O157:H7 and MG1655) and Vaccinia strains (WR, Copenhagen, Lister, LIVP, GLV-1h68 and parental strains). Metabolic network analysis Our YANAsquare package offers a workbench to rapidly establish the metabolic network of such as Staphylococcous aureus bacteria in genome-scale size as well as metabolic networks of interest such as the murine phagosome lipid signalling network. YANAsquare recruits reactions from online databases using an integrated KEGG browser. This reduces the efforts in building large metabolic networks. The involved calculation routines (METATOOL-derived wrapper or native Java implementation) readily obtain all possible flux modes (EM/EP) for metabolite fluxes within the network. Advanced layout algorithms visualize the topological structure of the network. In addition, the generated structure can be dynamically modified in the graphic interface. The generated network as well as the manipulated layout can be validated and stored (XML file: scheme of SBML level-2). This format can be further parsed and analyzed by other systems biology software, such as CellDesigner. Moreover, the integrated robustness-evaluation routine is able to examine the synthesis rates affected by each single mutation throughout the whole network. We have successfully applied the method to simulate single and multiple gene knockouts, and the affected fluxes are comprehensively revealed. Recently we applied the method to proteomic data and extra-cellular metabolite data of Staphylococci, the physiological changes regarding the flux distribution are studied. Calculations at different time points, including different conditions such as hypoxia or stress, show a good fit to experimental data. Moreover, using the proteomic data (enzyme amounts) calculated from 2D-Gel-EP experiments our study provides a way to compare the fluxome and the enzyme expression. Oncolytic vaccinia virus (VACV) We investigated the genetic differences between the de novo sequence of the recombinant oncolytic GLV-1h68 and other related VACVs, including function predictions for all found genome differences. Our phylogenetic analysis indicates that GLV-1h68 is closest to Lister strains but has lost several ORFs present in its parental LIVP strain, including genes encoding CrmE and a viral Golgi anti-apoptotic protein, v-GAAP. Functions of viral genes were either strain-specific, tissue-specific or host-specific comparing viral genes in the Lister, WR and COP strains. This helps to rationally design more optimized oncolytic virus strains to benefit cancer therapy in human patients. Identified differences from the comparison in open reading frames (ORFs) include genes for host-range selection, virulence and immune modulation proteins, e.g. ankyrin-like proteins, serine proteinase inhibitor SPI-2/CrmA, tumor necrosis factor (TNF) receptor homolog CrmC, semaphorin-like and interleukin-1 receptor homolog proteins. The contribution of foreign gene expression cassettes in the therapeutic and oncolytic virus GLV-1h68 was studied, including the F14.5L, J2R and A56R loci. The contribution of F14.5L inactivation to the reduced virulence is demonstrated by comparing the virulence data of GLV-1h68 with its F14.5L-null and revertant viruses. The comparison suggests that insertion of a foreign gene expression cassette in a nonessential locus in the viral genome is a practical way to attenuate VACVs, especially if the nonessential locus itself contains a virulence gene. This reduces the virulence of the virus without compromising too much the replication competency of the virus, the key to its oncolytic activity. The reduced pathogenicity of GLV-1h68 was confirmed by our experimental collaboration partners in male mice bearing C6 rat glioma and in immunocompetent mice bearing B16-F10 murine melanoma. In conclusion, bioinformatics and experimental data show that GLV-1h68 is a promising engineered VACV variant for anticancer therapy with tumor-specific replication, reduced pathogenicity and benign tissue tropism.
Around 10.000 – 150.000 endogenous DNA damage-induced lesions occur in a human body per day and cell. Accumulation of unrepaired lesions can lead to aneuploidy and the loss of genomic integrity which in turn contributes to tumor formation. Therefore, an efficient DNA damage response has to be initiated, in the end leading to cell cycle inhibition and induction of repair. Since it is known that a recently characterized human multiprotein complex named LINC (or human dREAM) together with B-MYB is involved in the regulation of G2/M gene expression (Plk1, cyclin B1, cdc2 etc.), its function in the DNA damage response was analyzed in this study. In growing cells B-MYB is associated to the LIN core complex which consists of 5 different proteins named LIN-9, LIN-54, LIN-52, LIN-37 and RbAp48. After induction of DNA damage B-MYB leaves the complex and binding of E2F4 and p130 to LINC is induced. Importantly, the upstream pathway leading to LINC rearrangement is dependent on the activation of p53 and p21. Interestingly, p53 -/- cells solely have the potential to block in the G2 phase of the cell cycle, thereby making them vulnerable for errors during G2 arrest induction or maintenance. Here I demonstrate that LINC rearrangement is absent in p53 -/- cells and that B-MYB/LINC binding to target gene promoters is increased. This in turn leads to an increased G2/M gene expression after DNA damage induction and triggers premature cell cycle re-entry (checkpoint adaptation). Significantly, B-MYB expression is increased in p53 mutated primary breast cancer tumors and correlates with poor prognosis and reoccurrence probably due to its function in checkpoint adaptation. This study gives evidence that inhibition of B-MYB gene expression or B-MYB function in p53 mutant tumors could be a good choice for adjuvant therapy.
Mechanisms and adaptive significance of interspecific associations between tropical ant species
(2009)
Aggression between ants from different colonies or species is ubiquitous. Exceptions to this rule exist in the form of supercolonies (within a species) and interspecific associations (between species). Probably the most intimate interspecific association is the parabiosis, where two ant species live together in a common nest. They keep their brood separate but jointly use trails and often share food resources. Parabioses are restricted to few species pairings and occur in South American and Southeast Asian rainforests. While the South American parabioses have been studied, albeit poorly, almost nothing is known about their Southeast Asian counterparts. My PhD project focuses on Southeast Asian parabioses between the myrmicine Crematogaster modiglianii Emery 1900 and the considerably larger formicine Camponotus rufifemur Emery 1900. The two species frequently nest together in hollow trees in the tropical lowland rainforest of Borneo. The basic question of my PhD project is why these two species live together. I investigated both proximate and ultimate aspects of this question. For comparative purposes, I included studies on a trail-sharing association in the same habitat. On the proximate level, I investigated which mechanisms facilitate tolerance towards hetero-spe¬ci¬fic nestmates. Ants generally discriminate nestmates from non-nestmates via cuticular hydro¬carbons that function as colony recognition cues. I studied the specificity of nestmate recognition within and between the two parabiotic species. Using gas chromatography-mass spectrometry (GC-MS), I analyzed the cuticular substances in both ant species to find potential differences to non-parabiotic species, and to estimate the substance overlap among the two species. A high substance overlap would e.g. suggest that interspecific tolerance is caused by chemical mimicry. Finally, bioassays were conducted to evaluate the function of different cuticular compounds. Interspecific tolerance in the two parabiotic species was species-specific but not colony-specific. Ca. rufifemur tolerated all Cr. modiglianii individuals, even those from foreign colonies, but strongly attacked workers of other Crematogaster species. Cr. modiglianii, in turn, tolerated Ca. rufifemur workers of certain foreign colonies but attacked those of others. Chemical analyses revealed two sympatric, chemically distinct Ca. rufifemur varieties (‘red’ and ‘black’) with almost no hydrocarbon overlap. Cr. modiglianii only tolerated foreign Ca. rufifemur workers if they belonged to the same chemical variety as their own Ca. rufifemur partner. It also attacked other, non-parabiotic Camponotus species. Thus, reciprocal interspecific tolerance was restricted to the species Cr. modiglianii and Ca. rufifemur. Ca. rufifemur frequently tolerated conspecific non-nestmates of the same chemical variety. Minor workers were more often tolerated than majors, possibly because they possess two to three times lower hydrocarbon quantities per body surface than majors. In contrast, Cr. modiglianii nearly always attacked conspecific non-nestmates. Both species possessed hydrocarbons with considerably higher chain lengths than congeneric, non-parabiotic ant species. Long-chain hydrocarbons are less volatile than shorter ones and thus harder to perceive. They may thus considerably facilitate interspecific tolerance. Moreover, up to 98% of the cuticular hydrocarbons in Ca. rufifemur were methylbranched alkenes, which are highly unusual among insect cuticular hydrocarbons. Cr. modiglianii and Ca. rufifemur had almost no hydrocarbons in common, refuting chemical mimicry as a possible cause of interspecific tolerance. The only hydrocarbons common to both species were two methylbranched alkenes, which constituted 89% of the ‘red’ Ca. rufifemur hydrocarbon profile and also occurred in those Cr. modiglianii colonies that lived together with this Ca. rufifemur variety. Cr. modiglianii presumably acquired these two compounds from its red Ca. rufifemur partner. Cr. modiglianii was significantly less aggressive towards foreign Cr. modiglianii workers that were associated with the same Ca. rufifemur variety than to those associated with the respective other one. Hence, this species seemed to use recognition cues acquired from its parabiotic partner. Apart from hydrocarbons, both species possessed a set of hitherto unknown substances on their cuticle. The quantitative composition of the unknown compounds varied between parabiotic nests but was similar among the two species of a nest. They are probably produced in the Dufour glanf of Cr. modiglianii and transferred to their Ca. rufifemur partner. Possible transfer mechanisms include interspecific trophallaxis and ‘mounting behaviour’, where Cr. modiglianii climbed onto Ca. rufifemur workers without being displaced. Although the composition of the unknown compounds greatly varied between nests, they did not function as nestmate recognition cues since both species used hydrocarbons for nestmate recognition. However, the unknown compounds significantly reduced aggression in Ca. rufifemur. The ultimate, i.e. ecological and evolutionary aspects of my PhD research deal with potential costs and benefits that Cr. modiglianii and Ca. rufifemur may derive from the parabiotic association, their interactions with other species, and population genetic analyses. Additional studies on a trail-sharing association between three other ant species deal with two possible mechanisms that may cause or facilitate trail-sharing. Whether parabioses are parasitic, commensalistic, or mutualistic, is largely unknown and depends on the costs and benefits each party derives from the association. I therefore investigated food competition (as one of the most probable costs), differentiation of foraging niches (which can reduce competition), and several potential benefits of the parabiotic way of life. Besides, I studied interactions between the ant species and the hemiepiphyte Poikilospermum cordifolium. The foraging niches of the two species differed regarding foraging range, daily activity pattern, and food preferences. None of the two species aggressively displaced its partner species from baits. Thus, interference competition for food seemed to be low or absent. For both ant species, a number of benefits from the parabiotic lifestyle seem possible. They include interspecific trail-following, joint nest defence, provision of nest space by the partner species, food exchange via trophallaxis, and mutual brood care. If an ant species follows another species’ pheromone trails, it can reach food resources found by the other species. As shown by artificial extract trails, Ca. rufifemur workers indeed followed trails of Cr. modiglianii but not vice versa. Thus, Ca. rufifemur benefited from Cr. modiglianii’s knowledge on food sources (informational parasitism). In turn, Cr. modiglianii seemed to profit from nest defence by Ca. rufifemur. Ca. rufifemur majors are substantially larger than Cr. modiglianii workers. Although Cr. modiglianii often effectively defended the nest as well, it seemed likely that this species derived a benefit from its partner’s defensive abilities. In neotropical parabioses (ant-gardens), mutualistic epiphytes play an important role in providing nest space. The neotropical Camponotus benefits its Crematogaster partner by planting epiphyte seeds, for which Crematogaster is too small. Similarly, the Bornean parabioses often were inhabited by the hemiepiphyte Poikilospermum cordifolium (Barg.-Petr.) Merr (Cecropiaceae). P. cordifolium seedlings, saplings and sometimes larger indivi¬duals abundantly grew at the entrances of parabiotic nests. However, P. cordifolium provides no additional nest space and, apart from nutritive elaiosomes, perianths, and extrafloral nectar probably plays a less important role for the ants than the neotropical epiphytes. In conclusion, the parabiosis is probably beneficial to both species. The main benefits seem to be nest defence (for Cr. modiglianii) and interspecific trail-following (for Ca. rufifemur). However, Ca. rufifemur seems to be more dependent on its partner than vice versa. For both parabiotic species, I analyzed mitochondrial DNA of ants from different regions in Borneo. My data suggest that there are four genetically and chemically distinct, but closely related varieties of Camponotus rufifemur. In contrast, Crematogaster modiglianii showed high genetic differentiation between distant populations but was not differentiated into genetic or chemical varieties. This argues against variety-specific cocladogenesis between Cr. modiglianii and Ca. rufifemur, although a less specific coevolution of the two species is highly likely. In Bornean rainforests, trail-sharing associations of Polyrhachis (Polyrhachis) ypsilon Emery 1887 and Camponotus (Colobopsis) saundersi Emery 1889 are common and often include further species such as Dolichoderus cuspidatus Smith 1857. I investigated a trail-sharing association between these three species and studied two mechanisms that may cause or facilitate these associations: interspecific trail-following, i.e. workers following another species’ pheromone trail, and differential inter¬specific aggression. In trail-following assays, D. cuspidatus regularly followed extract trails of the other two species, thus probably parasitizing on their information on food sources. In contrast, only few P. ypsilon and Ca. saundersi workers followed hetero¬speci¬fic extract trails. Hence, the association between P. ypsilon and Ca. saundersi cannot be ex¬plained by foragers following heterospecific trails. In this case, trail-sharing may originate from few scout ants that do follow heterospecific pheromone trails and then lay their own trails. Interspecific aggression among P. ypsilon, Ca. saundersi and D. cuspidatus was strongly asymmetric, Ca. saundersi being submissive to the other two species. All three species discriminated between heterospecific workers from the same and a distant trail-sharing site. Thus, it seems likely that the species of a given trail-sharing site habituate to one another. Differential tolerance by dominant ant species may be mediated by selective habituation towards submissive species, and thereby influence the assembly of trail-sharing associations.
Von TRAIL, FasL und APRIL, drei Mitgliedern der TNF-Liganden-Familie, ist bekannt, dass Trimerstabilität und Oligomerisierungsstatus maßgeblich das Rezeptoraktivierungspotential dieser Liganden beeinflussen. Für die immunstimulatorischen TNF-Liganden CD27L, CD40L, OX40L, 41BBL und GITRL war hingegen vor der Durchführung dieser Arbeit praktisch nicht bekannt, inwieweit Trimerbildung, Stabilisierung und Oligomerisierung wichtig für deren Aktitvität sind. Dies wurde in dieser Arbeit systematisch untersucht. CD40L besaß bereits als trimeres Molekül eine hohe Aktivität, die durch sekundäre Oligomerisierung nur wenig gesteigert wurde. Die spezifische Aktivität konnte durch Stabilisierung mit Hilfe der Tenascin-C (TNC)-Trimerisierungsdomäne nur geringfügig gesteigert werden. CD27L war als lösliches Flag-markiertes sowie als hexameres Fc-Protein selbst nach Quervernetzen nicht in der Lage, seinen Rezeptor CD27 zu binden und zu aktivieren. Die TNC-stabilisierte trimere Form des CD27L hingegen induzierte nach Oligomerisierung mit einem anti-Flag-Antikörper ein starkes Signal. Trimerer OX40L und trimerer 41BBL konnten nur in oligomerisierter Form ihre Rezeptoren aktivieren, wobei die Aktivität der TNC-stabilisierten Form signifikant stärker ausgeprägt war. GITRL aktivierte seinen Rezeptor bereits als stabilisiertes Trimer und Hexamer, die Aktivität konnte durch Quervernetzen nur gering gesteigert werden. Zusammenfassend kann man sagen, dass CD27L, OX40L und 41BBL zu der Untergruppe der TNF-Ligandenfamilie gehört, für die eine Stabilisierung des trimeren Moleküls und dessen Oligomerisierung nötig sind, um eine starke Rezeptoraktivierung zu ermöglichen. Im Gegensatz dazu zeigten CD40L und GITRL bereits oligomerisierungsunabhängig eine hohe Aktivität. GITRL benötigte allerdings die Stabilisierung des trimeren Moleküls durch die TNC-Domäne, um gute Aktivität zu zeigen. Im Weiteren wurden Antikörperfragment (scFv-)-TNF-Ligand-Fusionsproteine konstruiert und untersucht, die ein Zelloberflächenantigen binden. Eine starke Zelloberflächenantigen-spezifische Aktivierung des jeweiligen Rezeptors konnte für scFv-41BBL und für scFv-OX40L gezeigt werden, wohingegen scFv-CD40L und scFv-GITRL bereits auf antigennegativen Zellen stark aktiv waren. scFv-CD27L war selbst auf antigenpositiven Zellen inaktiv. Verwendet man an Stelle des Antikörperfragments eine extrazelluläre Proteinbindedomäne, z.B. die eines TNF-Rezeptors, erhält man Fusionsproteine, die zum einen eine selektive Aktivierung der TNF-Ligandendomäne und somit die Aktivierung des korrespondierenden Rezeptors auf der Zielzelle ermöglichen, zum anderen aber durch die Bindung an den membranständigen Liganden dessen Aktitvät neutralisieren können. Für CD40-, RANK- und B7-2-FasL konnte der immobilisationabhängige Aktivierungseffekt auf entsprechenden Zelloberflächenmolekül-exprimierenden Zellen gezeigt werden. Anhand von T47D-Zellen, die durch eine autokrine CD40L-CD40-Signalschleife vor Apoptose geschützt sind, konnte gezeigt werden, dass durch die Bindung von CD40-FasL an membranständigen CD40L die CD40L-CD40-Interaktion gestört und gleichzeitig Apoptose verstärkt induziert werden kann. Das Prinzip der antigenabhängigen Aktivierung von TNF-Liganden könnte Anwendung in der Tumortherapie finden, da bei Verwendung entsprechender selektiv exprimierter Marker eine lokale Rezeptoraktivierung erreicht und so Nebenwirkungen minimiert werden können.