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- Department of Biomedical Imaging, National Cerebral and Cardiovascular Research Center, Suita, Japan (2)
- Division of Medical Technology and Science, Department of Medical Physics and Engineering, Course of Health Science, Osaka University Graduate School of Medicine, Suita Japan (2)
- Institut for Molecular Biology and CMBI, Department of Genomics, Stem Cell Biology and Regenerative Medicine, Leopold-Franzens-University Innsbruck, Innsbruck, Austria (2)
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- Johns Hopkins School of Medicine, Baltimore, MD, U.S. (1)
Transcriptional and distributional profiling of microglia in retinal angiomatous proliferation
(2022)
Macular neovascularization type 3, formerly known as retinal angiomatous proliferation (RAP), is a hallmark of age-related macular degeneration and is associated with an accumulation of myeloid cells, such as microglia (MG) and infiltrating blood-derived macrophages (MAC). However, the contribution of MG and MAC to the myeloid cell pool at RAP sites and their exact functions remain unknown. In this study, we combined a microglia-specific reporter mouse line with a mouse model for RAP to identify the contribution of MG and MAC to myeloid cell accumulation at RAP and determined the transcriptional profile of MG using RNA sequencing. We found that MG are the most abundant myeloid cell population around RAP, whereas MAC are rarely, if ever, associated with late stages of RAP. RNA sequencing of RAP-associated MG showed that differentially expressed genes mainly contribute to immune-associated processes, including chemotaxis and migration in early RAP and proliferative capacity in late RAP, which was confirmed by immunohistochemistry. Interestingly, MG upregulated only a few angiomodulatory factors, suggesting a rather low angiogenic potential. In summary, we showed that MG are the dominant myeloid cell population at RAP sites. Moreover, MG significantly altered their transcriptional profile during RAP formation, activating immune-associated processes and exhibiting enhanced proliferation, however, without showing substantial upregulation of angiomodulatory factors.
Bei Patienten, die an einer speziellen Form der MS erkrankten, konnten Entzündungsinfiltrate in den Meningen nachgewiesen werden, die in ihrem Aufbau lymphoidem Gewebe ähnelten. Das Auftreten dieser Infiltrate war mit einem schwereren Krankheitsverlauf assoziiert. Das Mausmodell der B-Zell-abhängigen MP4-induzierten experimentellen autoimmunen Enzephalomyelitis (EAE) zeigt in den Kleinhirnen der Mäuse Infiltrate, die den Infiltraten beim Menschen ähneln.
Wir nutzten die MP4-induzierte EAE, um die Mechanismen der Erkrankungsentstehung und Progression besser zu verstehen. Ziel dieser Arbeit war es intakte und stabile Ribonukleinsäuren (RNA) aus den Infiltraten der Mäuse zu isolieren. Sowie Identifizierung von Gene, die während verschiedener Stadien der zerebralen Entzündungsreaktion hochreguliert waren.
Wir verglichen die Möglichkeiten der RNA-Isolation bei Paraffin-eingebettetem Gewebe und kryofixiertem Gewebe. Um die Vergleichbarkeit der Qualitäts- und Quantitätsanalyse zu gewährleisten, wurde für jede Probe eine RNA Integritätsnummer (RIN) ermittelt.
Wir führten eine Laser Capture Microdissection (LCM) und anschließende Gensequenzierung der zerebralen Infiltrate bei Mäusen durch, bei denen eine MP4-abhängige EAE ausgelöst wurde. Des Weiteren verglichen wir die Ergebnisse mit den Expressionsprofilen von sekundär lymphatischen Organen (SLOs).
Insgesamt konnten wir 43 Gene herausfiltern, die im Vergleich zu den Kontrollgruppen hochreguliert waren.
Die Entwicklung von ektopen lymphatischen Strukturen (ELS) im zentralen Nervensystem (ZNS) ist ein komplexer und bisher wenig verstandener Prozess. In dieser Studie beobachteten wir 43 Gene, die während der Entwicklung von B- Zell-Infiltraten in den Kleinhirnen von MP4-immunisierten Mäusen signifikant hochreguliert waren. Von diesen Genen wurden bereits 14 im Zusammenhang mit der MS erwähnt und sind zum Teil Gegenstand aktiver Forschung.
Recombinant beta interferons-1 (IFNβ-1) are used as first line therapies in patients with relapsing multiple sclerosis (MS), a chronic inflammatory and neurodegenerative disease of the CNS. IFNβ-1a/b has moderate effects on the prevention of relapses and slowing of disease progression. Fibroblast growth factors (FGFs) and FGF receptors (FGFRs) are known to play a key role in the pathology of MS and its model EAE. To investigate the effects of short-term treatment with s.c. IFNβ-1a versus the combined application of s.c. IFNβ-1a and oligodendrocyte-specific deletion of FGFR1 (Fgfr1\(^{ind−/−}\) mice) in MOG\(_{35-55}\)-induced EAE. IFNβ-1a (30 mg/kg) was applied s.c. from days 0–7 p.i. of EAE in controls and Fgfr1\(^{ind−/−}\) mice. FGFR signaling proteins associated with inflammation/degeneration in MS/EAE were analyzed by western blot in the spinal cord. Further, FGFR1 in Oli-neu oligodendrocytes were inhibited by PD166866 and treated with IFNβ-1a (400 ng/mL). Application of IFNβ-1a over 8 days resulted in less symptoms only at the peak of disease (days 9–11) compared to controls. Application of IFNβ-1a in Fgfr1\(^{ind−/−}\) mice resulted in less symptoms primarily in the chronic phase of EAE. Fgfr1\(^{ind−/−}\) mice treated with IFNβ-1a showed increased expression of pERK and BDNF. In Oli-neu oligodendrocytes, treatment with PD166866 and IFNβ-1a also showed an increased expression of pERK and BDNF/TrkB. These data suggest that the beneficial effects in the chronic phase of EAE and on signaling molecules associated with ERK and BDNF expression are caused by the modulation of FGFR1 and not by interferon beta-1a. FGFR may be a potential target for therapy in MS.
Early treatment with glucocorticoids could help reduce both cytotoxic and vasogenic edema, leading to improved clinical outcome after stroke. In our previous study, isosteviol sodium (STVNA) demonstrated neuroprotective effects in an in vitro stroke model, which utilizes oxygen-glucose deprivation (OGD). Herein, we tested the hypothesis that STVNA can activate glucocorticoid receptor (GR) transcriptional activity in brain microvascular endothelial cells (BMECs) as previously published for T cells. STVNA exhibited no effects on transcriptional activation of the glucocorticoid receptor, contrary to previous reports in Jurkat cells. However, similar to dexamethasone, STVNA inhibited inflammatory marker IL-6 as well as granulocyte-macrophage colony-stimulating factor (GM-CSF) secretion. Based on these results, STVNA proves to be beneficial as a possible prevention and treatment modality for brain ischemia-reperfusion injury-induced blood–brain barrier (BBB) dysfunction.
Background
Traumatic separation of the pubic symphysis can destabilize the pelvis and require surgical fixation to reduce symphyseal gapping. The traditional approach involves open reduction and the implantation of a steel symphyseal plate (SP) on the pubic bone to hold the reposition. Despite its widespread use, SP-fixation is often associated with implant failure caused by screw loosening or breakage.
Methods
To address the need for a more reliable surgical intervention, we developed and tested two titanium cable-clamp implants. The cable served as tensioning device while the clamp secured the cable to the bone. The first implant design included a steel cable anterior to the pubic symphysis to simplify its placement outside the pelvis, and the second design included a cable encircling the pubic symphysis to stabilize the anterior pelvic ring. Using highly reproducible synthetic bone models and a limited number of cadaver specimens, we performed a comprehensive biomechanical study of implant stability and evaluated surgical feasibility.
Results
We were able to demonstrate that the cable-clamp implants provide stability equivalent to that of a traditional SP-fixation but without the same risks of implant failure. We also provide detailed ex vivo evaluations of the safety and feasibility of a trans-obturator surgical approach required for those kind of fixation.
Conclusion
We propose that the developed cable-clamp fixation devices may be of clinical value in treating pubic symphysis separation.
Pathological angiogenesis promotes tumor growth, metastasis, and atherosclerotic plaque rupture. Macrophages are key players in these processes. However, whether these macrophages differentiate from bone marrow-derived monocytes or from local vascular wall-resident stem and progenitor cells (VW-SCs) is an unresolved issue of angiogenesis. To answer this question, we analyzed vascular sprouting and alterations in aortic cell populations in mouse aortic ring assays (ARA). ARA culture leads to the generation of large numbers of macrophages, especially within the aortic adventitia. Using immunohistochemical fate-mapping and genetic in vivo-labeling approaches we show that 60% of these macrophages differentiate from bone marrow-independent Ly6c\(^{+}\)/Sca-1\(^{+}\) adventitial progenitor cells. Analysis of the NCX\(^{−/-}\) mouse model that genetically lacks embryonic circulation and yolk sac perfusion indicates that at least some of those progenitor cells arise yolk sac-independent. Macrophages represent the main source of VEGF in ARA that vice versa promotes the generation of additional macrophages thereby creating a pro-angiogenetic feedforward loop. Additionally, macrophage-derived VEGF activates CD34\(^{+}\) progenitor cells within the adventitial vasculogenic zone to differentiate into CD31\(^{+}\) endothelial cells. Consequently, depletion of macrophages and VEGFR2 antagonism drastically reduce vascular sprouting activity in ARA. In summary, we show that angiogenic activation induces differentiation of macrophages from bone marrow-derived as well as from bone marrow-independent VW-SCs. The latter ones are at least partially yolk sac-independent, too. Those VW-SC-derived macrophages critically contribute to angiogenesis, making them an attractive target to interfere with pathological angiogenesis in cancer and atherosclerosis as well as with regenerative angiogenesis in ischemic cardiovascular disorders.
Ongoing research to fight cancer, one of the dominant diseases of the 21st century has led to big progress especially when it comes to understanding the tumor growth and metastasis. This includes the discovery of the molecular mechanisms of tumor vascularization, which is critically required for establishment of tumor metastasis.
Formation of new blood vessels is the first step in tumor vascularization. Therefore, understanding the molecular and cellular basis of tumor vascularization attracted a significant effort studying in biomedical research. The blood vessels for supplying tumor can be formed by sprouting from pre-existing vessels, a process called angiogenesis, or by vasculogenesis, that is de novo formation of blood vessels from not fully differentiated progenitor cell populations. Vasculogenic endothelial progenitor cells (EPCs) can either be activated from populations in the bone marrow reaching the pathological region via the circulation or they can be recruited from local reservoirs. Neovessel formation influences tumor progression, hence therapeutic response model systems of angiogenesis/vasculogenesis are necessary to study the underlying mechanisms. Although, initially the research in this area focused more on angiogenesis, it is now well understood that both angiogenesis and postnatal vasculogenesis contribute to neovessel formation in adult under both most pathological as well as physiological conditions. Studies in the last two decades demonstrate that in addition to the intimal layer of fully differentiated mature endothelial cells (ECs) and various smaller supplying vessels (vasa vasorum) that can serve as a source for new vessels by angiogenesis, especially the adventitia of large and medium size blood vessels harbors various vascular wall-resident stem and progenitor cells (VW-SPCs) populations that serve as a source for new vessels by postnatal vasculogenesis. However, little is known about the potential role of VW-SPCs in tumor vascularization.
To this end, the present work started first to establish a modified aortic ring assay (ARA) using mouse aorta in order to study the contribution of vascular adventitia-resident VW-SPCs to neovascularization in general and in presence of tumor cells. ARA is already established an ex vivo model for neovascularization allows to study the morphogenetic events of complex new vessel formation that includes all layers of mature blood vessels, a significant advantage over the assays that employ monolayer endothelial cell cultures. Moreover, in contrast to assays employing endothelial cells monocultures, both angiogenic and vasculogenic events take place during new vessel formation in ARA although the exact contribution of these two processes to new vessel formation cannot be easily distinguished in conventional ARA. Thus, in this study, a modified protocol for the ARA (mdARA) was established by either removing or keeping the aortic adventitia in place. The mdARA allows to distinguish the role of VW-SPCs from those of other aortic layers. The present data show that angiogenic sprouting from mature aortic endothelium was markedly delayed when the adventitial layer was removed. Furthermore, the network between the capillary-like sprouts was significantly reduced in absence of aortic adventitia. Moreover, the stabilization of new sprouts by assembling the NG2+ pericyte-like cells that enwrapped the endothelial sprouts from the outside was improved when the adventitial layer remained in place.
Next, mimicking the tumor-vessel adventitia-interaction, multicellular tumor spheroids (MCTS) and aortic rings (ARs) with or without adventitia of C57BL/6-Tg (UBC-GFP) mice were confronted within the collagen gel and cultured ex vivo. This 3D model enabled analysis of the mobilization, migration and capillary-like sprouts formation by VW-SPCs within tumor-vessel wall-interface in comparison to tumor-free side of the ARs. Interestingly, while MCTS preferred the uptake of single vascular adventitia-derived cells, neural spheroids were directly penetrated by capillary-like structures that were sprouted from the aortic adventitia. In summary, the model established in this work allows to study new vessel formation by both postnatal vasculogenesis and angiogenesis under same conditions. It can be applied in various mouse models including reporter mouse models, e.g. Cxcr1 CreER+/mTmG+/- mice, in which GFP-marked macrophages of the vessel wall were directly observed as they mobilized from their niche and migrated into collagen gel. Another benefit of the model is that it can be used for testing different factors such as small molecules, growth factors, cytokines, and drugs with both pro- and anti-angiogenic/vasculogenic effects.
Extracellular vesicle (EV)-mediated intercellular communication through exosomes, microvesicles (MVs) and apoptotic bodies has been shown to be implicated in various physiological as well as pathological processes such as the development and progression of atherosclerosis. While the cellular machinery controlling EV formation and composition has been studied extensively, little is known about the underlying morphological processes. This study focuses on a detailed ultrastructural analysis of the different steps of EV formation and release in Myocardial Endothelial (MyEnd) and Aortic Endothelial (AoEnd) cells cultured under serum starvation and inflammatory stimulation with TNF-α. Detailed morphological analyses were conducted applying and comparing different high- resolution light and electron microscopic methods. In this study, we could depict all steps of MV biogenesis named in literature. However, during the study of exosome biogenesis, we discovered a yet undescribed process: Instead of a direct fusion with the plasma membrane, multivesicular bodies were incorporated into a new distinct cellular compartment bound by fenestrated endothelium first. This may present a novel step in exosome biogenesis and warrants further study. Regarding the conditions of cell cultivation, we observed that the commonly used serum starvation causes MyEnd cells, but not AoEnd cells, to enter apoptosis after 48 hours. When preparing functional EV studies, we therefore recommend assessing the morphological condition of the serum-starved cells at different cultivation points first. When evaluating MV production, a statistical analysis showed that the more time AoEnd cells spent in cultivation under serum starvation, the higher the percentage of MV producing cells. However, additional TNF-α stimulation induced a significantly higher MV production than serum starvation alone. Lastly, our results show that TNF-α stimulation of AoEnd cells in vitro leads to the upregulation of CD44, an adhesion molecule critical in the early stages of atherosclerosis. CD44 was then depicted on the surface of generated MVs and exosomes. We conclude that under inflammatory conditions, EVs can mediate the transfer of CD44 from endothelial cells to target cells. This could be a novel mechanism by which MVs contribute to the development and progression of atherosclerotic disease and should be clarified by further studies.
Reversible protein phosphorylation is a posttranslational modification of regulatory proteins involved in cardiac signaling pathways. Here, we focus on the role of protein phosphatase 2A (PP2A) for cardiac gene expression and stress response using a transgenic mouse model with cardiac myocyte-specific overexpression of the catalytic subunit of PP2A (PP2A-TG). Gene and protein expression were assessed under basal conditions by gene chip analysis and Western blotting. Some cardiac genes related to the cell metabolism and to protein phosphorylation such as kinases and phosphatases were altered in PP2A-TG compared to wild type mice (WT). As cardiac stressors, a lipopolysaccharide (LPS)-induced sepsis in vivo and a global cardiac ischemia in vitro (stop-flow isolated perfused heart model) were examined. Whereas the basal cardiac function was reduced in PP2A-TG as studied by echocardiography or as studied in the isolated work-performing heart, the acute LPS- or ischemia-induced cardiac dysfunction deteriorated less in PP2A-TG compared to WT. From the data, we conclude that increased PP2A activity may influence the acute stress tolerance of cardiac myocytes.
Carcinoembryonic antigen-related cell adhesion molecule 1 (CEACAM1) ist ein multifunktionales Zell-Zell Adhäsionsprotein, das in eine Vielzahl an zellulären Prozessen involviert ist, wie zum Beispiel der Differenzierung von Geweben, der Tumorsuppression, Metastasierung, Angiogenese und Apoptose. Außerdem hat es modulierende Eigenschaften auf die angeborene und erworbene Immunantwort. In der vorliegenden Arbeit charakterisierte ich initial die Lokalisation und die CEACAM1-exprimierenden Zelltypen im Auge und bestimmte quantitativ die Expression von Ceacam1 in der Retina und Choroidea zu unterschiedlichen Zeitpunkten.
Es zeigte sich hierbei, dass Ceacam1 zu allen untersuchten Zeitpunkten, sowohl während der Entwicklung als auch im adulten retinalen und choroidalen Gewebe nachweisbar war. Mittels Immunhistochemie konnte die Expression von CEACAM1 im Corneaepithel, den Gefäßen der Iris und des Ziliarkörpers, im nicht-pigmentierten Epithel des Ziliarkörpers, sowie in den retinalen und choroidalen Gefäßen nachgewiesen werden. Durch Doppelfärbung mit Kollagen IV konnte die endotheliale Expression von CEACAM1 in den Endothelzellen der Gefäße bestätigt werden.
Im zweiten Teil meiner Arbeit untersuchte ich die Funktion von CEACAM1 im Auge und verglich dazu wildtypische Retinae mit Cc1-/--Retinae. Es zeigten sich keine offensichtlichen morphologischen Veränderungen der retinalen Schichten und die anschließend durchgeführten morphometrischen Analysen der Schichtdicken der retinalen Neurone zeigte keine Anzeichen einer Neurodegeneration. Allerdings waren in Cc1-/--Retinae kleine Zysten und IBA1 positive, phagozytisch aktive Zellen im subneuroretinalen Raum, also dem Bereich zwischen RPE und den Außensegmenten der Photorezeptoren zu erkennen. Die anschließend durchgeführten Expressionsanalysen immunmodulierender Faktoren und von Mitgliedern des TGF-β-Signalwegs in retinalen und choroidealen Proben wildtypischer und Cc1-/--Mäusen zeigten keine veränderte Expression für Iba1, Ccl2 sowie Tnf-α. Jedoch konnten signifikant erhöhte Werte für TGF-β1 in der Gruppe der 2-4 als auch der Gruppe der 9 Monate alten Cc1-/--Retinae im Vergleich zu wildtypischen Retinae nachgewiesen werden. Basierend auf den Daten der vorliegenden Arbeit kann geschlussfolgert werden, dass die Deletion von CEACAM1 unter physiologischen Bedingungen die Struktur der Retina und Choroidea nicht offensichtlich beeinflusst. Allerdings führt die Deletion zu erhöhten Tgfβ1 Spiegeln in der Retina und zur Aktivierung und Akkumulation von IBA1 positiven Zellen im subneuroretinalen Raum.
In dieser Arbeit wurden die histologischen und immunhistologischen Auswirkungen der
Kombination aus Inhibition des PD-1/PD-1L-Checkpoints und PLOD-2-Blockade
untersucht. Es konnte festgestellt werden, dass die Immuntherapie anschlägt und dabei
als Monotherapie die stärksten Tumornekrosen induzierte. Das Ansprechen auf die
Immuntherapie mit BMS-1166 war jedoch sehr unterschiedlich. In der Kombination mit
dem PLOD-2-Inhibitor Minoxidil wurden hingegen einheitlichere, aber auch geringere
Nekroseanteile festgestellt. Dabei muss jedoch beachtet werden, dass die
Kombinationsbehandlung die stärkste Auswirkung auf das Tumorwachstum hatte. So
waren diese Tumore die kleinsten und leichtesten, was in Zusammenhang mit dem
ausgeprägten kollagenen Netzwerk dieser Gruppe stehen könnte. Die Kombination
zeigte keine Auswirkung auf die Tumorvaskularisierung und die Zellteilungsaktivität,
sowie auch keine Auffälligkeiten bezüglich der Infiltration mit Immunzellen.
Lungenmetastasen kamen in allen Behandlungsgruppen vor. Bei der
Kombinationsbehandlung waren jedoch die durchschnittlich größten Lungenmetastasen
festzustellen.
In dieser Arbeit konnte keine klare signifikante Verbesserung der Brustkrebstherapie
durch die Kombination von Inhibition der Kollagensynthese durch PLOD-2-Blockade und
Inhibierung des PD-1/PD-1L-Checkpoints aufgezeigt werden. Das kollagene Netzwerk
war auffällig und sollte genauer untersucht werden. Es lohnt sich weiter an
Kombinationen aus Immuntherapeutikum und EZM-Destabilisierung zu arbeiten. Die
TME muss dabei weiterhin Ansatzpunkt der Forschung bleiben, um eine erleichterte
Penetration der Medikamente in den Tumor zu erzielen. Hier ist der Austausch des
Medikaments zur EZM-Destabilisierung empfehlenswert. Die LOX-Inhibierung hat sich
bereits in Kombination mit Chemotherapie als vorteilhaft erwiesen (Rossow et al., 2018)
und sollte nachfolgend in einem ähnlichen Versuchsaufbau mit dem
Immuntherapeutikum BMS-1166 ausprobiert werden.
Nach bisheriger Kenntnis sind aus den Alpen Vorkommen von fünf Taraxacum-Kleinarten der Sektion Borealia in Frankreich, der Schweiz, Österreich, Italien und Slowenien bekannt: Taraxacum gallicum, Taraxacum handelii, T. kraettlii, T. mazzettii und T. melzerianum. Zwischen 2004 und 2014 wurden diese Vorkommen und weitere potentielle Wuchsorte aufgesucht. Durch detaillierte Untersuchung der Vorkommen vor Ort sowie zahlreicher Belege aus mehreren europäischen Herbarien können nun Merkmale ergänzt, präzisiert und einige Fehler, Unklarheiten in den Originalbeschreibungen korrigiert und Lücken ergänzt werden. Zahlreiche Fotos und Zeichnungen sowie ein neugefasster Schlüssel sollen den Zugang zur Sektion Borealia erleichtern. Mit Taraxacum cimae-gallinae vom Hühnerspiel bei Sterzing (Italien, Südtirol) wird eine neue Art der Sektion Borealia beschrieben. Die Wuchsorte der Borealia-Arten in der alpinen Stufe sind überwiegend Schotterböden auf windgefegten Graten und Gipfelverebnungen. Diese sind derzeit sowohl durch den Ski-Tourismus als auch durch die Klimaerwärmung gefährdet.
Combined pulmonary fibrosis and emphysema (CPFE) is a recently recognized syndrome that, as its name indicates, involves the existence of both interstitial lung fibrosis and emphysema in one individual, and is often accompanied by pulmonary hypertension. This debilitating, progressive condition is most often encountered in males with an extensive smoking history, and is presented by dyspnea, preserved lung volumes, and contrastingly impaired gas exchange capacity. The diagnosis of the disease is based on computed tomography imaging, demonstrating the coexistence of emphysema and interstitial fibrosis in the lungs, which might be of various types and extents, in different areas of the lung and several relative positions to each other. CPFE bears high mortality and to date, specific and efficient treatment options do not exist. In this review, we will summarize current knowledge about the clinical attributes and manifestations of CPFE. Moreover, we will focus on pathophysiological and pathohistological lung phenomena and suspected etiological factors of this disease. Finally, since there is a paucity of preclinical research performed for this particular lung pathology, we will review existing animal studies and provide suggestions for the development of additional in vivo models of CPFE syndrome.
Herzkreislauferkrankungen sind weit verbreitet und nicht nur eine große Belastung für die Betroffenen, sondern auch für das Gesundheitssystem. Die Folgen von Herzkreislauferkrankungen wie z.B. Myokardinfarkt und koronare Herzkrankheit stellen weltweit die häufigste Todesursache dar. Prävention, frühzeitige Erkennung und konsequente Behandlung sind daher von großer Bedeutung.
Um das Verständnis für die Pathophysiologie zu fördern und ferner Therapieansätze ausfindig zu machen, ist es notwendig, nicht nur die Herzmuskelzellen im Blick zu haben, sondern auch die Komponenten des Herzmuskelstromas, die deren Funktion beeinflussen können.
Das Verständnis und die Rekonstruktion des kardialen Gewebes auf ultrastruktureller Ebene, sowie die Charakterisierung und Wechselwirkungen der verschiedenen Zellen des Herzens haben deshalb das Interesse vieler Forschergruppen geweckt.
Das Ziel dieser Arbeit war die detaillierte ultrastrukturelle Analyse kardialer Perizyten, Endothelzellen sowie Kapillarwand-assoziierter Zellen und deren Kontakte im Arbeitsmyokard der Maus mittels verschiedener elektronenmikroskopischer Methoden.
Zu Beginn der Arbeit wurde die transmissionselektronenmikroskopische Probenaufbereitung optimiert und ein modifiziertes Protokoll zur hervorragenden Kontrastierung der biologischen Membranen und zum bestmöglichen Erhalt der Ultrastruktur etabliert. Die optimierte Probenaufbereitung bot dann die ideale Grundlage für die Generierung elektronenmikroskopischer Datensätze mittels serieller Block-Face Rasterelektronenmikroskopie (SBF-SEM) und anschließender Erzeugung dreidimensionaler Modelle der Mikrovaskulatur des Arbeitsmyokards der Maus.
Die detaillierte ultrastrukturelle Analyse in drei Dimensionen offenbart neue morphologische Merkmale der kardialen Mikrovaskulatur und zeigt, dass die kardialen Perizyten vereinzelt Fortsätze abgeben, die mit den Endothelzellen assoziiert sind. Dadurch entsteht nicht nur eine perizytäre-endotheliale Einheit, die von derselben Basallamina umschlossen wird. Die Rekonstruktion zeigt ebenfalls, dass die Kapillarwand-assoziierten Zellen sehr groß und weit verzweigt sind und nicht von der die Perizyten und Endothelzellen umgebenden Basallamina umschlossen werden. Sie stehen an vereinzelten Stellen in direktem Kontakt mit den Endothelzellen.
Immunelektronenmikroskopische Analysen zeigen, dass die Kapillarwand-assoziierten Zellen sowohl CD34-positiv als auch CD44-positiv sind.
Größer angelegte Studien zur weiteren dreidimensionalen Analyse z.B. in der Intima einer Arteriole könnten zur weiteren Charakterisierung der Perizyten und der Kapillarwand-assoziierten Zellen beitragen und sogar eine Einteilung möglich machen.
Eine Beteiligung von Perizyten im Rahmen des kardialen Remodeling nach einem Myokardinfarkt wurde bereits nachgewiesen. Außerdem spielen die Membranproteine CD34 und CD44 eine wichtige Rolle in der Hämatopoese und auch der Angiogenese.
In Zukunft könnten sich auch daraus interessante neue Ansätze für gezielte Therapien nach einem Myokardinfarkt ergeben.
In Unterfranken/Nordbayern wurde eine gut abgegrenzte Unterart der Hieracium maculatum-Gruppe festgestellt, die auf die Hänge des Maintals zwischen Würzburg und Hasloch beschränkt ist mit einem Hot Spot (>90% des Gesamtbestandes) zwischen den Orten Thüngersheim und Retzbach. Aufgrund einiger Ähnlichkeiten mit H. glaucinum subsp. prasiophaeum (Syn.: subsp. gougetianum) wird die Unterart als H. maculatum subsp. pseudogougetianum beschrieben. Diese Subspecies wächst bevorzugt auf Muschelkalk-Schotter und beginnt bereits Mitte April zu blühen, hat weißlich behaarte Kopfhüllen mit dunklen Stieldrüsen. Die Grundblattrosette besteht aus eiförmigen bis elliptischen, gezähnten bis gesägten, oberseits kahlen, glauken und dunkel gefleckten Blättern. Die Stängel tragen 1-3(4) gestielte Laubblätter und bilden meistens lange blühende Seitenäste aus den Blattachseln. H. maculatum subsp. pseudogougetianum ist wie ein Teil der H. maculatum-Sippen tetraploid mit einem Genomgewicht (2C-Wert) von 14,5 pg und unterscheidet sich damit von der H. glaucinum-Gruppe, deren untersuchte Taxa ausnahmslos triploid sind (10,1 pg).
Summary
Here we describe a novel neuro-mesodermal assembloid model that recapitulates aspects of peripheral nervous system (PNS) development such as neural crest cell (NCC) induction, migration, and sensory as well as sympathetic ganglion formation. The ganglia send projections to the mesodermal as well as neural compartment. Axons in the mesodermal part are associated with Schwann cells. In addition, peripheral ganglia and nerve fibers interact with a co-developing vascular plexus, forming a neurovascular niche. Finally, developing sensory ganglia show response to capsaicin indicating their functionality.
The presented assembloid model could help to uncover mechanisms of human NCC induction, delamination, migration, and PNS development. Moreover, the model could be used for toxicity screenings or drug testing. The co-development of mesodermal and neuroectodermal tissues and a vascular plexus along with a PNS allows us to investigate the crosstalk between neuroectoderm and mesoderm and between peripheral neurons/neuroblasts and endothelial cells.
Highlights
•Novel neuro-mesodermal assembloid model of peripheral nervous system development
•Model covers neural crest cell induction, migration, and ganglion formation
•Ganglia send projections to the mesodermal as well as neural compartment
•Peripheral ganglia and nerve fibers interact with a co-developing vascular plexus
In tumor therapy anti-angiogenic approaches have the potential to increase the efficacy of a wide variety of subsequently or co-administered agents, possibly by improving or normalizing the defective tumor vasculature. Successful implementation of the concept of vascular normalization under anti-angiogenic therapy, however, mandates a detailed understanding of key characteristics and a respective scoring metric that defines an improved vasculature and thus a successful attempt. Here, we show that beyond commonly used parameters such as vessel patency and maturation, anti-angiogenic approaches largely benefit if the complex vascular network with its vessel interconnections is both qualitatively and quantitatively assessed. To gain such deeper insight the organization of vascular networks, we introduce a multi-parametric evaluation of high-resolution angiographic images based on light-sheet fluorescence microscopy images of tumors. We first could pinpoint key correlations between vessel length, straightness and diameter to describe the regular, functional and organized structure observed under physiological conditions. We found that vascular networks from experimental tumors diverted from those in healthy organs, demonstrating the dysfunctionality of the tumor vasculature not only on the level of the individual vessel but also in terms of inadequate organization into larger structures. These parameters proofed effective in scoring the degree of disorganization in different tumor entities, and more importantly in grading a potential reversal under treatment with therapeutic agents. The presented vascular network analysis will support vascular normalization assessment and future optimization of anti-angiogenic therapy.
Multiorgan recovery in a cadaver body using mild hypothermic ECMO treatment in a murine model
(2023)
Background
Transplant candidates on the waiting list are increasingly challenged by the lack of organs. Most of the organs can only be kept viable within very limited timeframes (e.g., mere 4–6 h for heart and lungs exposed to refrigeration temperatures ex vivo). Donation after circulatory death (DCD) using extracorporeal membrane oxygenation (ECMO) can significantly enlarge the donor pool, organ yield per donor, and shelf life. Nevertheless, clinical attempts to recover organs for transplantation after uncontrolled DCD are extremely complex and hardly reproducible. Therefore, as a preliminary strategy to fulfill this task, experimental protocols using feasible animal models are highly warranted. The primary aim of the study was to develop a model of ECMO-based cadaver organ recovery in mice. Our model mimics uncontrolled organ donation after an “out-of-hospital” sudden unexpected death with subsequent “in-hospital” cadaver management post-mortem. The secondary aim was to assess blood gas parameters, cardiac activity as well as overall organ state. The study protocol included post-mortem heparin–streptokinase administration 10 min after confirmed death induced by cervical dislocation under full anesthesia. After cannulation, veno-arterial ECMO (V–A ECMO) was started 1 h after death and continued for 2 h under mild hypothermic conditions followed by organ harvest. Pressure- and flow-controlled oxygenated blood-based reperfusion of a cadaver body was accompanied by blood gas analysis (BGA), electrocardiography, and histological evaluation of ischemia–reperfusion injury. For the first time, we designed and implemented, a not yet reported, miniaturized murine hemodialysis circuit for the treatment of severe hyperkalemia and metabolic acidosis post-mortem.
Results
BGA parameters confirmed profound ischemia typical for cadavers and incompatible with normal physiology, including extremely low blood pH, profound negative base excess, and enormously high levels of lactate. Two hours after ECMO implantation, blood pH values of a cadaver body restored from < 6.5 to 7.3 ± 0.05, pCO2 was lowered from > 130 to 41.7 ± 10.5 mmHg, sO2, base excess, and HCO3 were all elevated from below detection thresholds to 99.5 ± 0.6%, − 4 ± 6.2 and 22.0 ± 6.0 mmol/L, respectively (Student T test, p < 0.05). A substantial decrease in hyperlactatemia (from > 20 to 10.5 ± 1.7 mmol/L) and hyperkalemia (from > 9 to 6.9 ± 1.0 mmol/L) was observed when hemodialysis was implemented. On balance, the first signs of regained heart activity appeared on average 10 min after ECMO initiation without cardioplegia or any inotropic and vasopressor support. This was followed by restoration of myocardial contractility with a heart rate of up to 200 beats per minute (bpm) as detected by an electrocardiogram (ECG). Histological examinations revealed no evidence of heart injury 3 h post-mortem, whereas shock-specific morphological changes relevant to acute death and consequent cardiac/circulatory arrest were observed in the lungs, liver, and kidney of both control and ECMO-treated cadaver mice.
Conclusions
Thus, our model represents a promising approach to facilitate studying perspectives of cadaveric multiorgan recovery for transplantation. Moreover, it opens new possibilities for cadaver organ treatment to extend and potentiate donation and, hence, contribute to solving the organ shortage dilemma.
Background
With the emergence of photon-counting CT, ultrahigh-resolution (UHR) imaging can be performed without dose penalty. This study aims to directly compare the image quality of UHR and standard resolution (SR) scan mode in femoral artery angiographies.
Methods
After establishing continuous extracorporeal perfusion in four fresh-frozen cadaveric specimens, photon-counting CT angiographies were performed with a radiation dose of 5 mGy and tube voltage of 120 kV in both SR and UHR mode. Images were reconstructed with dedicated convolution kernels (soft: Body-vascular (Bv)48; sharp: Bv60; ultrasharp: Bv76). Six radiologists evaluated the image quality by means of a pairwise forced-choice comparison tool. Kendall’s concordance coefficient (W) was calculated to quantify interrater agreement. Image quality was further assessed by measuring intraluminal attenuation and image noise as well as by calculating signal-to-noise ratio (SNR) and contrast-to-noise ratios (CNR).
Results
UHR yielded lower noise than SR for identical reconstructions with kernels ≥ Bv60 (p < 0.001). UHR scans exhibited lower intraluminal attenuation compared to SR (Bv60: 406.4 ± 25.1 versus 418.1 ± 30.1 HU; p < 0.001). Irrespective of scan mode, SNR and CNR decreased while noise increased with sharper kernels but UHR scans were objectively superior to SR nonetheless (Bv60: SNR 25.9 ± 6.4 versus 20.9 ± 5.3; CNR 22.7 ± 5.8 versus 18.4 ± 4.8; p < 0.001). Notably, UHR scans were preferred in subjective assessment when images were reconstructed with the ultrasharp Bv76 kernel, whereas SR was rated superior for Bv60. Interrater agreement was high (W = 0.935).
Conclusions
Combinations of UHR scan mode and ultrasharp convolution kernel are able to exploit the full image quality potential in photon-counting CT angiography of the femoral arteries.
Relevance statement
The UHR scan mode offers improved image quality and may increase diagnostic accuracy in CT angiography of the peripheral arterial runoff when optimized reconstruction parameters are chosen.
Key points
• UHR photon-counting CT improves image quality in combination with ultrasharp convolution kernels.
• UHR datasets display lower image noise compared with identically reconstructed standard resolution scans.
• Scans in UHR mode show decreased intraluminal attenuation compared with standard resolution imaging.