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The lipidome of the marine hyperthermophilic archaeon Pyrococcus furiosus was studied by means of combined thin-layer chromatography and MALDI-TOF/MS analyses of the total lipid extract. 80–90% of the major polar lipids were represented by archaeol lipids (diethers) and the remaining part by caldarchaeol lipids (tetraethers). The direct analysis of lipids on chromatography plate showed the presence of the diphytanylglycerol analogues of phosphatidylinositol and phosphatidylglycerol, the N-acetylglucosamine-diphytanylglycerol phosphate plus some caldarchaeol lipids different from those previously described. In addition, evidence for the presence of the dimeric ether lipid cardiolipin is reported, suggesting that cardiolipins are ubiquitous in archaea.
Reporting on the first locality in Bocas del Toro province of extreme western Panama, we extend the known geographic distribution of the lizard Leposoma rugiceps (Cope, 1869) about 275 km westwards from the nearest locality in Panamá province. We provide photos of Panamanian specimens, comment on their morphology, and map the distribution of this binational endemism.
We report on new localities for Anolis gruuo Köhler, Ponce, Sunyer and Batista, 2007 along the Serranía de Tabasará in the Comarca Ngöbe-Buglé and Veraguas province of western Panama. These records extend the known geographic distribution of this lizard about 80 km eastward, and the known vertical distribution approximately 40 m lower and 630 m higher. We provide photos of specimens from different localities and comment on their morphology. Only the easternmost populations of this Panamanian endemic live inside a protected area.
The canonical Wnt pathway, also known as Wnt/β-‐catenin pathway, comprises a network of proteins which control diverse developmental and adult processes in all metazoan organisms. The binding of canonical Wnt ligands to a cell surface receptor complex, consisting of frizzled family members and low density lipoprotein receptor-‐ related protein 5 or 6 co‐receptors, triggers a signaling cascade which results in a β-catenin-‐mediated transcriptional activation of different target genes, implicated in cellular proliferation, apoptosis, migration and differentiation. A couple of years ago, several groups including us, iden2fied transient activation of the canonical Wnt-pathway in endothelial cells (ECs) of the developing central nervous system (CNS). In this context, Wnt/β-‐catenin signaling could be demonstrated to be crucial for brain angio genesis as well as for the establishment of the blood-brain barrier (BBB) phenotype in the newly formed vessels.
Gliomas, in particular the glioblastoma (GBM), belong to the group of highly vascularized solid tumors which gain their vascularization due to an angiogenic switch occurring during tumor progression. Interestingly, nuclear localized β-‐catenin could be exclusively detected in the activated endothelium of induced rat gliomas and of human GBM, suggesting a so far unknown and not further characterized involvement of the canonical Wnt pathway in pathological angiogenesis. In order to systematically decipher the precise role of endothelial Wnt/β-‐catenin signaling in tumor angiogenesis, I established
murine GL261 glioma cell lines overexpressing either Wnt1 or Dickkopf (Dkk) 1 in a doxycycline-‐dependent manner, an activator and potent inhibitor of Wnt/β-‐catenin signaling, respectively. In subcutaneous and intracranial transplantations, tumor-derived Wnt1 reduced, while Dkk1 increased GL261 tumor growth without affecting in vitro proliferation, cell cycle or cell death of the established cell lines. Nowadays, it is well accepted that solid tumors are dependent on vascular support allowing them to grow beyond a certain size. In my work I could show that tumor-‐derived Wnt1 targets the tumor vasculature by increasing endothelial Wnt/β-‐catenin signaling, which reduced tumor vessel density and resulted in a more quiescent tumor vasculature. Furthermore, Wnt1-‐expression mediated tight association of smooth muscle cells (SMCs) and pericytes to the tumor endothelium, a phenotype which is unusual for tumor vessels and a described hallmark of tumor vessel normalization. In contrast, inhibition of endothelial Wnt/β-‐catenin signaling by Dkk1 mediated an opposing effect, characterized by endothelial hyper-proliferation and a tumor vasculature with a rough basal lamina distribution and loosely anached mural cells, indicative of a strong angiogenic activity. The described vascular effects in Wnt1-expressing GL261 tumors could be verified by subcutaneous transplantations of a rat glioma cell line constitutively expressing Wnt1. Furthermore, an applied in vivo MatrigelTM plug assay uncovered the reduction in vessel density upon Wnt1 simulation to be tumor cell independent, suggesting an EC-‐autonomous effect. This hypothesis was confirmed by subcutaneous transplantations of parental GL261 cells into mice with genetically generated endothelial β-‐catenin gain-of-function (GOF). The derived GOF tumor from this experiment comprised a quiescent and normalized tumor vasculature and phenocopied the vascular effects observed in Wnt1-expressing tumors.
Our previous work provided evidence that Wnt/β-‐catenin signaling contributes to the BBB phenotype of the developing CNS through the transcriptional regulation of the tight junction protein claudin-‐3. Furthermore, the coverage of pericytes to brain vessels has been described to correlate with BBB integrity. In agreement with these publications, vessels of intracranial Wnt1-‐expressing GL261 tumors retained or regained barrier properties, indicated by a reduced leakage of the tracer Evans blue and endogenous mouse immunoglobulin G and increased junctional localiza2on of the tight junction proteins claudin-‐3, -‐5 and zonula occludens-‐1.
Overall, we detected sustained endothelial Wnt/β-‐catenin signaling to induce a quiescent and normalized tumor vascularization. Interestingly, the Notch signaling pathway has been shown to inhibit the angiogenic tip cell and to promote the quiescent stalk cell phenotype via its ligand Delta-like ligand 4 (Dll4) and the receptors Notch1 and 4. Mechanistically, my work demonstrated for the first time that overactivation of endothelial Wnt/β-‐catenin signaling reactivated expression of Dll4 in the tumor endothelium, which could be shown in vitro to increase Notch signaling and to favor a stalk cell-like gene signature. Furthermore, we uncovered the platelet-derived growth factor subunit B (pdgm) as a novel transcriptional target of Wnt/β-catenin signaling in ECs. Hence endothelial-‐derived PDGF-‐B is known to promote the recruitment of mural cells, the upregulation of this factor might explain the increased SMC/pericyte coverage observed in the tumor vasculature upon sustained endothelial Wnt/β-‐catenin signaling which additionally might promote a cycle of vascular normalization.
Taken together, my work reveals several vascular effects, being mediated by reinforced endothelial Wnt/β-‐catenin signaling during tumor angiogenesis. While a moderate level of canonical Wnt signaling, observed in vessels of human astrocytomas and murine control tumors, is considered to be associated with tumor angiogenesis, dominant activation of this pathway in ECs is shown to limit angiogenesis and to promote a quiescent and normalized tumor vasculature with increased barrier properties. Furthermore, my work discovers pdgm as a novel target of canonical Wnt signaling in ECs.
The work presented in this dissertation therefore not only uncovers the role of endothelial Wnt/β-‐catenin signaling in tumor angiogenesis but additionally reveals this pathway to be a novel modulator in pathological vessel development which might proof to be a valuable therapeutic target for anti-angiogenic and edema glioma therapy.
The midbrain DA system comprising dopamine (DA) neurons of the substantia nigra (SN) and the ventral tegmental area (VTA) is involved in various brain functions, including voluntary movement and the encoding and prediction of behaviorally relevant stimuli. In Parkinsonʼs disease (PD), a progressive degeneration of particularly vulnerable SN DA neurons causes a progressive DA depletion of striatal projection sites. As a consequence, motor symptoms such as tremor, hypokinesia and rigidity appear once about 50 % to 70 % of SN DA neurons have been lost. Under physiological conditions, SN DA neurons can encode behaviorally salient events and coordinated movements through tonic and phasic activity and correlated striatal DA release. Burst-activity mediates a phasic, supralinear rise of striatal DA levels and allows to activate coordinated movements via modulation of corticostriatal signals.
In the present dissertation project, pathophysiological adaptations of surviving SN DA neurons after a partial degeneration of the nigrostiatal system have been studied using a 6-hydroxydopamine mouse model of PD. Combining in vivo retrograde tracing techniques with in vitro whole-cell patch-clamp recordings, multifluorescent immunolabeling and confocal microscopy allowed an unambiguous correlation of electrophysiological phenotypes, anatomical positions and neurochemical phenotypes of recorded neurons on a single-cell level. In vitro, neuronal activity of SN DA neurons is characterized by spontaneous, slow pacemaker activity of 1 to 10 Hz and a high degree of spike-timing precision. In vitro current-clamp recordings of surviving SN DA neurons using acute brain slice preparations after a partial, PD-like degeneration of the nigrostriatal DA system showed a significant perturbation of spontaneous pacemaker activity, mirrored by a decreased spike-timing precision compared to controls. Selective pharmacology and whole-cell voltage-clamp recordings served to identify calciumactivated SK channels as molecular effectors of a perturbated pacemaker activity of surviving SN DA neurons. SK channels and have been shown to critically contribute to the spike-timing precision of SN DA neurons. Consistently, in vitro current-clamp recordings after pharmacological blockade of SK channels in vitro caused a significant decrease of spike-timing precision, occluding previously observed differences between surviving SN DA neurons and controls.In addition to in vitro patch-clamp recordings, extracellular single-unit recordings in anaesthetized animals in vivo served to study surviving SN DA neurons embedded in an intact neuronal network after a partial, PD-like degeneration of the nigrostriatal DA system. Combining in vivo single-unit recordings, juxtacellular neurobiotin labeling and multifluorescent immunohistochemistry allowed to directly correlate electrophysiological and neurochemical phenotypes as well as anatomical positions on a single-cell level. In vivo, surviving SN DA neurons showed a significant decrease of spike-timing precision as reflected by an increased irregularity and an augmented burst activity compared to controls.
The present dissertation project provided a unique combination of a neurotoxicological PD mouse model, retrograde tracing techniques and in vitro as well as in vivo electrophysiologiy, allowing to unambiguously correlate electrophysiological adaptations, projection-specific anatomical positions and neurochemical phenotypes of SN DA neurons after a partial degeneration of the nigrostriatal system. Surviving SN DA neurons exhibited a significant deficit of SK channel activity after a partial degeneration of the nigrostriatal DA system. In consequence of a diminished SK channel activity observed in vitro, surviving SN DA neurons exhibited and enhanced burst activity in vivo, providing a plausible mechanism to compensate a striatal DA depletion.
BMPs control postnatal dendrite growth and complexity in sympathetic neurons / von Afsaneh Majdazari
(2012)
The vertebrate nervous system is a complex network of billions of neurons connected by dendrites and axons, integrated to functional circuits and areas/organs in the central and peripheral nervous system. The cells of the nervous system origin from common progenitors, which take on different cell fates based on intrinsic and extrinsic factors. These factors determine general neuronal traits, but also the morphology and the type of connections made to other cells. Mechanisms underlying axonal and dendritic growth are well described in contrast to the initiation of neurite growth, which remains to be fully elucidated, especially concerning dendrite formation. Recently BMPs have been identified as candidate dendrite inducing factors in sympathetic, cortical and hippocampal neurons. Here we focus on the in vivo role of BMPs on dendrite growth in sympathetic neurons as their development and differentiation processes have been analyzed in detail.
Typ I Interferone sind bekannt für die durch sie vermittelten immunaktivierenden bzw. antiviralen Effekte. Nach ihrer Induktion, im Rahmen der angeborenen Immunantwort, vermitteln Interferone nicht nur einen systemischen anti-viralen Status, sondern können auch wichtige Effektormechanismen der adaptiven Immunität dahingehend beeinflussen, dass sie diese verstärken bzw. ermöglichen. Im Allgemeinen kann diese Eigenschaft als pro-inflammatorische Aktivität der Interferone bezeichnet werden. Allerdings gehört es ebenfalls zu den Eigenschaften der Interferone eine Verminderung der adaptiven Immunität bewirken zu können, was als anti-inflammatorische Aktivität verstanden werden kann. Insgesamt kann man die durch Interferone induzierten Effekte also als ambivalent bezeichnen.
Die Leber als Immunorgan besitzt, ähnlich wie die Interferone, eine zentrale Rolle in der Immunität und sollte in ihrer Funktion als Vermittler zwischen Immunaktivierung und Immuntoleranz nicht unterschätzt werden. Die Aufgaben der Leber können ebenfalls als ambivalent bezeichnet werden, da sie zum einen eine unnötige Aktivierung des Immunsystems verhindern muss um eine Schädigung der Leberzellen zu vermeiden (Immuntoleranz). Zum anderen muss auch in der Leber eine Immunaktivierung stattfinden können, um den Schutz vor Pathogenen zu gewährleisten.
In einem Leberschadenmodell, das künstliche Doppelstrang-RNA (poly(I:C)) zur Induktion von Typ I Interferonen verwendet, sollen im Rahmen der vorliegenden Arbeit Immunmodulationen, insbesondere in der Leber, untersucht werden. Hierbei liegt das Hauptaugenmerk auf den Interferon-vermittelten Effekten, die eine Schädigung der Leber verhindern.
Werden Interferonrezeptor-defiziente Tiere (IFNAR-/-) intraperitoneal mit poly(I:C) behandelt kann eine ausgeprägte Schädigung der Leber sowie Hepatitis in diesen Tieren beobachtet werden. Wildtyp (WT) Mäuse zeigen hingegen keinerlei Schädigungen der Leber, was für einen protektiven bzw. anti-inflammatorischen Effekt spricht, der über den IFNAR und damit über Typ I Interferone vermittelt wird. Unter Verwendung von Mäusen, die eine selektive Deletion des IFNAR auf bestimmten Immunzellen tragen (alle anderen Zellen der Maus exprimieren jedoch weiterhin den IFNAR), konnte der Immunzelltyp ermittelt werden, der beim IFNAR-vermittelten Schutz der Leber eine Schlüsselrolle übernimmt. Aus diesen Experimenten wird deutlich, dass es myeloide Zellen sind, die über den IFNAR durch Typ I Interferone stimuliert werden müssen, um im poly(I:C)-induzierten Leberschadenmodell einen Schutz der Leber zu bewirken. Ergänzend dazu konnte gezeigt werden, dass CD11b- und F4/80-doppelt positive Makrophagen nach poly(I:C)-Behandlung in die Leber von WT Mäusen infiltrieren. Zudem wurde in Experimenten mit Interferon-Reporter Mäusen deutlich, dass diese infiltrierenden Makrophagen über den IFNAR durch Typ I Interferone stimuliert sind. Nach poly(I:C)-Behandlung konnte gezeigt werden, dass Leber-infiltrierende Zellen in WT Mäusen anti-inflammatorischen Interleukin-1 Rezeptor Antagonisten (IL-1RA) sekretieren. In Abwesenheit eines funktionalen Interferonsystems hingegen (in IFNAR-/- Mäusen) konnte eine gestörte IL-1beta- und IL-1RA-Balance festgestellt werden. Für diese Zytokine, die sich gegenseitig regulieren, indem der anti-inflammatorische IL-1RA mit dem pro-inflammatorischen IL-1beta um die Bindung an den IL-1 Rezeptor konkurriert, konnte gezeigt werden, dass ihre Expression in der Leber Interferon-abhängig reguliert wird. In IFNAR-/- Mäusen und in Mäusen, deren IFNAR selektiv auf myeloiden Zellen deletiert war, konnte keine IL-1RA-Expression durch infiltrierende Zellen detektiert werden. Da in diesen Tieren nach poly(I:C)-Behandlung massive Leberschäden beobachtet wurden, kann vermutet werden, dass das Vorhandensein des anti-inflammatorischen IL-1RA unerlässlich für den Schutz der Leber ist.
Abschließend kann zusammengefasst werden, dass die Interferon-vermittelten Effekte, die eine Schädigung der Leber verhindern, zum einen auf der Stimulation und Rekrutierung von Makrophagen beruhen. Zum anderen beruhen diese Effekte auf der Induktion des anti-inflammatorischen Zytokins IL-1RA, und der dadurch blockierten Wirkung des pro-inflammatorischen IL-1beta.
Durch diese Ergebnisse werden neue Einblicke in die Interferon-vermittelte Hemmung von Virus- und Autoimmun-induzierten Erkrankungen der Leber ermöglicht. Genutzt werden könnten diese für die Optimierung IFN-basierter Therapien. Beispielsweise kann durch die gezielte Induktion anti-inflammatorischer Zytokine über IFNAR-induzierte Signalwege oder die direkte Gabe anti-inflammatorischer Zytokine (z.B. IL-1RA) eine Therapie entwickelt werden, die neben den vorteilhaften Eigenschaften der Zytokine eine verbesserte Aktivierung von Immunzellen ermöglicht.
Early otic development depends on autophagy for apoptotic cell clearance and neural differentiation
(2012)
Autophagy is a highly regulated program of self-degradation of the cytosolic constituents that has key roles during early development and in adult cell growth and homeostasis. To investigate the role of autophagy in otic neurogenesis, we studied the expression of autophagy genes in early stages of chicken (Gallus gallus) inner ear development and the consequences of inhibiting the autophagic pathway in organotypic cultures of explanted chicken otic vesicles (OVs). Here we show the expression of autophagy-related genes (Atg) Beclin-1 (Atg6), Atg5 and LC3B (Atg8) in the otocyst and the presence of autophagic vesicles by using transmission electron microscopy in the otic neurogenic zone. The inhibition of the transcription of LC3B by using antisense morpholinos and of class III phosphatidylinositol 3-kinase with 3-methyladenine causes an aberrant morphology of the OV with accumulation of apoptotic cells. Moreover, inhibition of autophagy provokes the misregulation of the cell cycle in the otic epithelium, impaired neurogenesis and poor axonal outgrowth. Finally, our results indicate that autophagy provides the energy required for the clearing of neuroepithelial dying cells and suggest that it is required for the migration of otic neuronal precursors. Taken together, our results show for the first time that autophagy is an active and essential process during early inner ear development.
Background: Otic neurons and sensory cells derive from common progenitors whose transition into mature cells requires the coordination of cell survival, proliferation and differentiation programmes. Neurotrophic support and survival of post-mitotic otic neurons have been intensively studied, but the bases underlying the regulation of programmed cell death in immature proliferative otic neuroblasts remains poorly understood. The protein kinase AKT acts as a node, playing a critical role in controlling cell survival and cell cycle progression. AKT is activated by trophic factors, including insulin-like growth factor I (IGF-I), through the generation of the lipidic second messenger phosphatidylinositol 3-phosphate by phosphatidylinositol 3-kinase (PI3K). Here we have investigated the role of IGF-dependent activation of the PI3K-AKT pathway in maintenance of otic neuroblasts.
Methodology/Principal Findings: By using a combination of organotypic cultures of chicken (Gallus gallus) otic vesicles and acoustic-vestibular ganglia, Western blotting, immunohistochemistry and in situ hybridization, we show that IGF-I-activation of AKT protects neural progenitors from programmed cell death. IGF-I maintains otic neuroblasts in an undifferentiated and proliferative state, which is characterised by the upregulation of the forkhead box M1 (FoxM1) transcription factor. By contrast, our results indicate that post-mitotic p27Kip-positive neurons become IGF-I independent as they extend their neuronal processes. Neurons gradually reduce their expression of the Igf1r, while they increase that of the neurotrophin receptor, TrkC.
Conclusions/Significance: Proliferative otic neuroblasts are dependent on the activation of the PI3K-AKT pathway by IGF-I for survival during the otic neuronal progenitor phase of early inner ear development.