TY - JOUR A1 - Kusch, Valentin A1 - Bornschein, Grit A1 - Loreth, Desiree A1 - Bank, Julia A1 - Jordan, Johannes A1 - Baur, David A1 - Watanabe, Masahiko A1 - Kulik, Akos A1 - Heckmann, Manfred A1 - Eilers, Jens A1 - Schmidt, Hartmut T1 - Munc13-3 Is Required for the Developmental Localization of Ca2+ Channels to Active Zones and the Nanopositioning of Cav2.1 Near Release Sensors JF - Cell Reports N2 - Spatial relationships between Cav channels and release sensors at active zones (AZs) are a major determinant of synaptic fidelity. They are regulated developmentally, but the underlying molecular mechanisms are largely unclear. Here, we show that Munc13-3 regulates the density of Cav2.1 and Cav2.2 channels, alters the localization of Cav2.1, and is required for the development of tight, nanodomain coupling at parallel-fiber AZs. We combined EGTA application and Ca2+-channel pharmacology in electrophysiological and two-photon Ca2+ imaging experiments with quantitative freeze-fracture immunoelectron microscopy and mathematical modeling. We found that a normally occurring developmental shift from release being dominated by Ca2+ influx through Cav2.1 and Cav2.2 channels with domain overlap and loose coupling (microdomains) to a nanodomain Cav2.1 to sensor coupling is impaired in Munc13-3-deficient synapses. Thus, at AZs lacking Munc13-3, release remained triggered by Cav2.1 and Cav2.2 microdomains, suggesting a critical role of Munc13-3 in the formation of release sites with calcium channel nanodomains. KW - coupling KW - nanodomain KW - synapse KW - active zone KW - development KW - Ca2+ channels KW - Munc13-3 KW - cerebellar cortex KW - transmitter release Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-233468 VL - 22 ER - TY - JOUR A1 - Wen, Lai A1 - Feil, Susanne A1 - Wolters, Markus A1 - Thunemann, Martin A1 - Regler, Frank A1 - Schmidt, Kjestine A1 - Friebe, Andreas A1 - Olbrich, Marcus A1 - Langer, Harald A1 - Gawaz, Meinrad A1 - de Wit, Cor A1 - Feil, Robert T1 - A shear-dependent NO-cGMP-cGKI cascade in platelets acts as an auto-regulatory brake of thrombosis JF - Nature Communications N2 - Mechanisms that limit thrombosis are poorly defined. One of the few known endogenous platelet inhibitors is nitric oxide (NO). NO activates NO sensitive guanylyl cyclase (NO-GC) in platelets, resulting in an increase of cyclic guanosine monophosphate (cGMP). Here we show, using cGMP sensor mice to study spatiotemporal dynamics of platelet cGMP, that NO-induced cGMP production in pre-activated platelets is strongly shear-dependent. We delineate a new mode of platelet-inhibitory mechanotransduction via shear-activated NO-GC followed by cGMP synthesis, activation of cGMP-dependent protein kinase I (cGKI), and suppression of Ca2+ signaling. Correlative profiling of cGMP dynamics and thrombus formation in vivo indicates that high cGMP concentrations in shear-exposed platelets at the thrombus periphery limit thrombosis, primarily through facilitation of thrombus dissolution. We propose that an increase in shear stress during thrombus growth activates the NO-cGMP-cGKI pathway, which acts as an auto-regulatory brake to prevent vessel occlusion, while preserving wound closure under low shear. KW - calcium signalling KW - fluorescence imaging KW - platelets KW - thrombosis Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-233616 VL - 9 ER - TY - JOUR A1 - Ullrich, M A1 - Weber, M A1 - Post, A M A1 - Popp, S A1 - Grein, J A1 - Zechner, M A1 - González, H Guerrero A1 - Kreis, A A1 - Schmitt, A G A1 - Üҫeyler, N A1 - Lesch, K-P A1 - Schuh, K T1 - OCD-like behavior is caused by dysfunction of thalamo-amygdala circuits and upregulated TrkB/ERK-MAPK signaling as a result of SPRED2 deficiency JF - Molecular Psychiatry N2 - Obsessive-compulsive disorder (OCD) is a common neuropsychiatric disease affecting about 2% of the general population. It is characterized by persistent intrusive thoughts and repetitive ritualized behaviors. While gene variations, malfunction of cortico-striato-thalamo-cortical (CSTC) circuits, and dysregulated synaptic transmission have been implicated in the pathogenesis of OCD, the underlying mechanisms remain largely unknown. Here we show that OCD-like behavior in mice is caused by deficiency of SPRED2, a protein expressed in various brain regions and a potent inhibitor of Ras/ERK-MAPK signaling. Excessive self-grooming, reflecting OCD-like behavior in rodents, resulted in facial skin lesions in SPRED2 knockout (KO) mice. This was alleviated by treatment with the selective serotonin reuptake inhibitor fluoxetine. In addition to the previously suggested involvement of cortico-striatal circuits, electrophysiological measurements revealed altered transmission at thalamo-amygdala synapses and morphological differences in lateral amygdala neurons of SPRED2 KO mice. Changes in synaptic function were accompanied by dysregulated expression of various pre- and postsynaptic proteins in the amygdala. This was a result of altered gene transcription and triggered upstream by upregulated tropomyosin receptor kinase B (TrkB)/ERK-MAPK signaling in the amygdala of SPRED2 KO mice. Pathway overactivation was mediated by increased activity of TrkB, Ras, and ERK as a specific result of SPRED2 deficiency and not elicited by elevated brain-derived neurotrophic factor levels. Using the MEK inhibitor selumetinib, we suppressed TrkB/ERK-MAPK pathway activity in vivo and reduced OCD-like grooming in SPRED2 KO mice. Altogether, this study identifies SPRED2 as a promising new regulator, TrkB/ERK-MAPK signaling as a novel mediating mechanism, and thalamo-amygdala synapses as critical circuitry involved in the pathogenesis of OCD. KW - molecular biology KW - neuroscience KW - physiology KW - psychiatric disorders Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-232096 VL - 23 ER - TY - JOUR A1 - Aue, Annemarie A1 - Englert, Nils A1 - Harrer, Leon A1 - Schwiering, Fabian A1 - Gaab, Annika A1 - König, Peter A1 - Adams, Ralf A1 - Schmidtko, Achim A1 - Friebe, Andreas A1 - Groneberg, Dieter T1 - NO-sensitive guanylyl cyclase discriminates pericyte-derived interstitial from intra-alveolar myofibroblasts in murine pulmonary fibrosis JF - Respiratory Research N2 - Background The origin of αSMA-positive myofibroblasts, key players within organ fibrosis, is still not fully elucidated. Pericytes have been discussed as myofibroblast progenitors in several organs including the lung. Methods Using tamoxifen-inducible PDGFRβ-tdTomato mice (PDGFRβ-CreERT2; R26tdTomato) lineage of lung pericytes was traced. To induce lung fibrosis, a single orotracheal dose of bleomycin was given. Lung tissue was investigated by immunofluorescence analyses, hydroxyproline collagen assay and RT-qPCR. Results Lineage tracing combined with immunofluorescence for nitric oxide-sensitive guanylyl cyclase (NO-GC) as marker for PDGFRβ-positive pericytes allows differentiating two types of αSMA-expressing myofibroblasts in murine pulmonary fibrosis: (1) interstitial myofibroblasts that localize in the alveolar wall, derive from PDGFRβ+ pericytes, express NO-GC and produce collagen 1. (2) intra-alveolar myofibroblasts which do not derive from pericytes (but express PDGFRβ de novo after injury), are negative for NO-GC, have a large multipolar shape and appear to spread over several alveoli within the injured areas. Moreover, NO-GC expression is reduced during fibrosis, i.e., after pericyte-to-myofibroblast transition. Conclusion In summary, αSMA/PDGFRβ-positive myofibroblasts should not be addressed as a homogeneous target cell type within pulmonary fibrosis. KW - guanylyl cyclase KW - myofibroblasts KW - pericytes KW - transgenic mouse KW - fibrosis Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-357805 VL - 24 ER - TY - THES A1 - Friedrich, Anna-Lena T1 - FoxO3-mediated, inhibitory effects of CNP on the profibrotic activation of lung fibroblasts T1 - FoxO3-vermittelte, hemmende Wirkungen von CNP auf die profibrotische Aktivierung von Lungenfibroblasten N2 - Idiopathic Pulmonary Fibrosis (IPF) is a progressive parenchymal lung disease with limited therapeutic treatments. Pathologically altered lung fibroblasts, called myofibroblasts, exhibit increased proliferation, migration, and collagen production, and drive IPF development and progression. Fibrogenic factors such as Platelet derived growth factor-BB (PDGF-BB) contribute to these pathological alterations. Endogenous counter-regulating factors are barely known. Published studies have described a protective role of exogenously administered C-type Natriuretic Peptide (CNP) in pathological tissue remodeling, for example in heart and liver fibrosis. CNP and its cyclic GMP producing guanylyl cyclase B (GC-B) receptor are expressed in the lungs, but it is unknown whether CNP can attenuate lung fibrosis by this pathway. To address this question, we performed studies in primary cultured lung fibroblasts. To examine the effects of the CNP/GC-B pathway on PDGF-BB-induced collagen production, proliferation, and migration in vitro, lung fibroblasts were cultured from wildtype control and GC-B knockout mice. Human lung fibroblasts from patients with IPF and healthy controls were obtained from the UGMLC Biobank. In RIA experiments, CNP, at 10nM and 100nM, markedly and similarly increased cGMP levels in both the murine and human lung fibroblasts, demonstrating GC-B/cGMP signaling. CNP reduced PDGF-BB induced proliferation and migration of lung fibroblasts in BrdU incorporation and gap closure assays, respectively. CNP strongly decreased PDGF-BB-induced collagen 1/3 expression as measured by immunocytochemistry and immunoblotting. Importantly, the protective actions of CNP were preserved in IPF fibroblasts. It is known that the profibrotic actions of PDGF-BB are partly mediated by phosphorylation and nuclear export of Forkhead Box O3 (FoxO3), a transcription factor downregulated in IPF. CNP prevented PDGF-BB elicited FoxO3 phosphorylation and nuclear exclusion in both murine and human control and IPF fibroblasts. CNP signaling and functions were abolished in GC-B-deficient lung fibroblasts. Taken together, the results show that CNP moderates the PDGF-BB-induced activation and differentiation of human and murine lung fibroblasts to myofibroblasts. This effect is mediated CNP-dependent by GC-B/cGMP signaling and FoxO3 regulation. To follow up the patho-physiological relevance of these results, we are generating mice with fibroblast-restricted GC-B deletion for studies in the model of bleomycin-induced pulmonary fibrosis. N2 - Idiopathische pulmonale Fibrose (IPF) ist eine progressiv fortschreitende, parenchymale Lungenerkrankung mit beschränkten therapeutischen Behandlungsmöglichkeiten. Pathologisch veränderte Lungenfibroblasten, sogenannte Myofibroblasten, zeigen eine verstärkte Proliferation, Migration und Kollagenproduktion, die zu einem permanenten Fortschreiten der Erkrankung führen. Während fibrogene Faktoren wie Platelet derived growth factor-BB (PDGF-BB) zu dieser pathologischen Veränderung beitragen, sind endogene Faktoren, die diesem Wandel entgegenwirken, kaum bekannt. Allerdings konnten Studien bereits eine protektive Wirkung von exogen verabreichten C-typ natriuretischen Peptid (CNP) auf krankhaft verändertes Gewebe beschreiben, wie beispielsweise bei Herz- und Leberfibrose. Es ist bekannt, dass CNP und sein cGMP produzierender Rezeptor Guanylyl-Cyclase-B Rezeptor (GC-B) in der Lunge exprimiert werden. Allerdings konnte noch nicht nachgewiesen werden, ob CNP durch diesen Signalweg den Fortschritt einer Lungenfibrose verzögern kann. Um dies herauszufinden, wurden Experimente mit kultivierten, primären Lungenfibroblasten durchgeführt. Um die Effekte des CNP/ GC-B Signalwegs auf die PDGF-BB induzierte Kollagenproduktion, Proliferation und Migration in vitro zu überprüfen, wurden Lungenfibroblasten von Kontroll- und GC-B-Knock-Out Mäusen kultiviert. Weiterhin erhielten wir von der UGMLC Biobank menschliche Fibroblasten von IPF-erkrankten Patienten, sowie gesunde Kontrollfibroblasten. Zur Bestätigung der Funktionalität des GC-B/cGMP Weges, wurde in murinen und humanen Fibroblasten mithilfe eines RIAs ein durch CNP (10nM und 100nM) deutlich erhöhtes cGMP-Level gemessen. CNP reduzierte die durch PDGF-BB induzierte Beschleunigung von Proliferation und Migration der Lungenfibroblasten, was mit Hilfe von BrdU incorporation und Gap closure assay nachgewiesen wurde. Ebenfalls zeigten Immunocytochemistrie und -blotting, dass CNP den PDGF-BB induzierten Anstieg an Kollagenexpression verhindert. Somit wurde festgestellt, dass der schützende Effekt von CNP auch in IPF Fibroblasten erhalten bleibt. Weiterhin ist bekannt, dass die PDGF-BB-induzierten, profibrotischen Veränderungen durch Phosphorylierung und Export des Transkriptionsfaktors Forkhead Box O3 (FoxO3) aus dem Zellkern vermittelt werden, welcher in IPF Fibroblasten vermindert exprimiert ist. CNP verhindert diese PDGF-BB aktivierte Phosphorylierung und Translokation in murinen und humanen Kontroll- und IPF-Fibroblasten. In Lungenfibroblasten mit Deletion des GC-B- Rezeptors war das CNP-Signal und auch dessen Effekt ausgelöscht. Zusammengefasst zeigen die Ergebnisse, dass CNP die PDGF-BB induzierte Aktivierung und Differenzierung von menschlichen und murinen Lungenfibroblasten zu Myofibroblasten beeinflusst. Dieser Effekt wird CNP-abhängig durch den GC-B/cGMP Signalweg und durch die Regulierung von FoxO3 vermittelt. Um abschließend die pathophysiologische Relevanz dieser Erkenntnisse zu zeigen, werden zukünftig Mäuse mit einer fibroblasten-spezifischen Deletion des GC-B Rezeptors für Studien in Bleomycin-induzierter Lungenfibrose genutzt. KW - Idiopathische pulmonale Fibrose KW - Transkriptionsfaktor KW - Natriuretisches Hormon KW - C-type natriuretic peptide KW - FoxO3 Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-359845 ER - TY - JOUR A1 - Paul, Mila M. A1 - Mieden, Hannah J. A1 - Lefering, Rolf A1 - Kupczyk, Eva K. A1 - Jordan, Martin C. A1 - Gilbert, Fabian A1 - Meffert, Rainer H. A1 - Sirén, Anna-Leena A1 - Hoelscher-Doht, Stefanie T1 - Impact of a femoral fracture on outcome after traumatic brain injury — a matched-pair analysis of the TraumaRegister DGU\(^®\) JF - Journal of Clinical Medicine N2 - Traumatic brain injury (TBI) is the leading cause of death and disability in polytrauma and is often accompanied by concomitant injuries. We conducted a retrospective matched-pair analysis of data from a 10-year period from the multicenter database TraumaRegister DGU\(^®\) to analyze the impact of a concomitant femoral fracture on the outcome of TBI patients. A total of 4508 patients with moderate to critical TBI were included and matched by severity of TBI, American Society of Anesthesiologists (ASA) risk classification, initial Glasgow Coma Scale (GCS), age, and sex. Patients who suffered combined TBI and femoral fracture showed increased mortality and worse outcome at the time of discharge, a higher chance of multi-organ failure, and a rate of neurosurgical intervention. Especially those with moderate TBI showed enhanced in-hospital mortality when presenting with a concomitant femoral fracture (p = 0.037). The choice of fracture treatment (damage control orthopedics vs. early total care) did not impact mortality. In summary, patients with combined TBI and femoral fracture have higher mortality, more in-hospital complications, an increased need for neurosurgical intervention, and inferior outcome compared to patients with TBI solely. More investigations are needed to decipher the pathophysiological consequences of a long-bone fracture on the outcome after TBI. KW - traumatic brain injury KW - femoral fracture KW - damage control orthopedics KW - mortality Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-319363 SN - 2077-0383 VL - 12 IS - 11 ER - TY - THES A1 - Fischer, Julian T1 - Charakterisierung von Zone 1-Sternzellen in der murinen Leber T1 - Characterization of zone 1 stellate cells in the murine liver N2 - Die im Rahmen der Arbeit erzielten Ergebnisse liefern neue Erkenntnisse über einen neuen Sternzellsubtyp der murinen Leber. Bei Gewebeverletzung differenzieren Sternzellen im Allgemeinen zu Myofibroblasten, welche Extrazellulärmatrix produzieren. Des Weiteren sind Sternzellen die Perizyten der Leber und spielen eine Rolle in der Angiogenese und Gefäßremodellierung. Der in präliminären Untersuchungen identifizierte Sternzellsubtyp zeichnet sich durch die Expression von tdTomato in Abhängigkeit des SMMHC-Promotors aus (SMMHC/tdTomato\(^+\) Sternzellen). In dieser Arbeit wurden SMMHC/tdTomato\(^+\) Sternzellen immunhistochemisch unter physiologischen und fibrotischen Bedingungen untersucht. Mit Hilfe von Lineage Tracing konnte zunächst die Zellmauserung der SMMHC/tdTomato\(^+\) Sternzellen gezeigt werden. Durch Leberzonen-spezifische Marker wurde daraufhin nachgewiesen, dass SMMHC/tdTomato\(^+\) Sternzellen in Zone 1 des Leberazinus lokalisiert sind, weswegen diese Zellen im Weiteren „Zone 1-HSC“ genannt wurden. Als potenzielle Progenitorzellnische der Zone 1-HSC wurde das Portalfeld eingegrenzt. Außerdem wurde die Funktion der Zone 1-HSC in der CCl\(_4\)-induzierten Leberfibrose untersucht. Es stellte sich heraus, dass Zone 1-HSC bereits früh in der Fibrose die Zonierung verlieren und diese auch nach Regenerationszeit nicht wiederhergestellt wird. Es wurde nachgewiesen, dass Zone 1-HSC nicht zu Myofibroblasten differenzieren. Stattdessen spielen Zone 1-HSC möglicherweise eine Rolle in der sinusoidalen Kapillarisierung in Folge einer CCl\(_4\)-induzierten Fibrose. N2 - The results obtained in this work provide new insights into a new stellate cell subtype of the murine liver. Upon tissue injury, stellate cells generally differentiate into myofibroblasts, which produce extracellular matrix. Furthermore, stellate cells are the pericytes of the liver and play a role in angiogenesis and vascular remodeling. The stellate cell subtype identified in preliminary studies is characterized by the expression of tdTomato in a SMMHC promoter-dependent manner (SMMHC/tdTomato\(^+\) stellate cells). In this work, SMMHC/tdTomato\(^+\) stellate cells were studied immunohistochemically under physiological and fibrotic conditions. Lineage tracing was first used to show cell turnover of SMMHC/tdTomato\(^+\) stellate cells. Using liver zone-specific markers, it was then demonstrated that SMMHC/tdTomato\(^+\) stellate cells are localized in zone 1 of the liver acini, hence these cells were further named "zone 1-HSC". The portal field was delineated as a potential progenitor cell niche of zone 1-HSC. In addition, the function of zone 1-HSC in CCl\(_4\)-induced liver fibrosis was investigated. It was found that zone 1-HSCs lose zonation early in fibrosis and this is not restored even after regeneration time. It was shown that zone 1-HSCs do not differentiate into myofibroblasts. Instead, zone 1-HSCs may play a role in sinusoidal capillarization following CCl\(_4\)-induced fibrosis. KW - Fibrose KW - Sternzelle KW - Zone 1-HSC Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-348100 ER - TY - THES A1 - Englert, Nils T1 - Die Rolle der NO-sensitiven Guanylyl-Cyclase in der Lungenfibrose der Maus T1 - Role of NO-sensitive guanylyl cyclase in murine lung fibrosis N2 - Die idiopathische Lungenfibrose (IPF) stellt eine chronische Krankheit mit einer schlechten Prognose dar. Die Erkrankung zeichnet sich durch ein dysfunktionales Alveolarepithel, die Formation von α-smooth muscle actin (α-SMA)-positiven Myofibroblasten, eine starke Kollagendeposition sowie eine fehlgeleitete Inflammation aus. In der Vermittlung dieser pro-fibrotischen Effekte spielt das Zytokin transforming growth factor β (TGF-β) eine Schlüsselrolle. Aufgrund des tödlichen Verlaufs der IPF und der limitierten Therapieoptionen ist die Entdeckung neuer Behandlungsansätze erforderlich. Der NO/cGMP-Signalweg ist in der Modulation grundlegender physiologischer Vorgänge wie der Blutdruckregulation und der Peristaltik involviert. Hierbei spielt die NO-sensitive Guanylyl-Cyclase (NO-GC) als NO-Rezeptor eine fundamentale Rolle. In der Lunge wird die NO-GC in glatten Muskelzellen und Perizyten exprimiert. Während das Enzym in glatten Muskelzellen die Relaxation der glatten Muskulatur vermittelt, reguliert die NO-GC in Perizyten die Angiogenese, die Kapillardurchlässigkeit und den Blutfluss. Neben den physiologischen Aufgaben wurden anti-fibrotische sowie anti-inflammatorische Effekte der NO-GC in Herz, Leber, Niere und Haut beschrieben. Daher wurde im Rahmen dieser Arbeit die NO-GC auf eine anti-fibrotische und anti-inflammatorische Bedeutung in der Lungenfibrose der Maus überprüft. Hierzu wurden Wildtyp- (WT) und globale NO-GC-Knockout-Mäuse (GCKO) untersucht. Die Fibrose wurde durch einmalige, orotracheale Bleomycin-Gabe induziert und zu unterschiedlichen Zeitpunkten (Tag 7 und 21) untersucht. Unbehandelte (Tag 0) Tiere dienten als Kontrolle. Im ersten Teil dieser Arbeit wurde die NO-GC auf eine anti-fibrotische Wirkung untersucht. Mittels Immunfluoreszenz wurde das Verhalten der α-SMA-positiven Myofibroblasten in den platelet-derived growth factor receptor β (PDGFRβ)-positiven fibrotischen Regionen untersucht. Der Kollagengehalt wurde mithilfe eines Hydroxyprolin-Kollagenassays ermittelt. Die untersuchten Fibrose-Kriterien waren in beiden Genotypen an Tag 21 stärker ausgeprägt als an Tag 7. An Tag 21 konnten im GCKO mehr α-SMA-positive Myofibroblasten, ausgeprägtere PDGFRβ-positive fibrotische Areale und ein höherer Kollagengehalt als im WT festgestellt werden. Zudem zeigten die GCKO-Tiere ein schlechteres Überleben als WT-Mäuse. Diese Ergebnisse wiesen auf eine überschießende fibrotische Antwort im GCKO und somit auf eine anti-fibrotische Wirkung der NO-GC in der Bleomycin-induzierten Lungenfibrose hin. Dass an Tag 21 die Fibrose im GCKO stärker ausfiel als im WT, konnte mit dem signifikant höheren TGF-β-Gehalt in der bronchoalveolären Lavageflüssigkeit (BALF) im GCKO erklärt werden. Das Fehlen der NO-GC im GCKO könnte zu einem Wegfall der Inhibierung der TGF-β-vermittelten, pro-fibrotischen Effekte durch die NO-GC führen. Weitere Studien sind erforderlich, um die Hypothese zu belegen und zugrundeliegende Mechanismen aufzuklären. Die de novo Entstehung von Myofibroblasten, die maßgeblich an der Kollagensynthese beteiligt sind, stellt ein entscheidendes Fibrose-Merkmal dar. Umso bedeutender ist die Identifikation zweier Myofibroblasten-Subtypen, die sich in Lokalisation, NO-GC-Expression und Herkunft unterscheiden: (1) interstitielle, NO-GC-positive Myofibroblasten, die von Perizyten abstammen und Kollagen Typ I produzieren, und (2) intra-alveoläre, NO-GC-negative Myofibroblasten, deren Ursprung noch nicht abschließend geklärt ist. Die Anwesenheit beider Myofibroblasten-Typen konnte zu beiden untersuchten Zeitpunkten nach Bleomycin-Gabe bestätigt werden. Die NO-GC-Expression der Alveolarwand-ständigen Myofibroblasten, deren Abstammung von NO-GC-positiven Perizyten sowie deren dauerhafte Präsenz sprechen für eine relevante Rolle der NO-GC in der murinen Lungenfibrose. In weiteren Untersuchungen müssen die exakten Funktionen und spezifische Marker der Myofibroblasten-Subtypen identifiziert werden. Im zweiten Teil dieser Arbeit wurde die NO-GC auf anti-inflammatorische Effekte in der Bleomycin-induzierten Lungenfibrose untersucht. Mittels HE-Färbung und Immunfluoreszenz wurden lymphozytäre Infiltrate an Tag 21 im GCKO festgestellt, was auf einen modulatorischen Einfluss der NO-GC auf das Immunsystem hindeutete. An Tag 21 wurden in der BALF von GCKO-Tieren signifikant mehr Gesamtimmunzellen, Lymphozyten und neutrophile Granulozyten als im WT gezählt, was auf eine starke Einwanderung von Immunzellen und somit auf eine ausgeprägte Entzündung in GCKO-Lungen hinwies. Folglich könnte die NO-GC eine anti-inflammatorische Rolle über die Regulation der Immigration von Immunzellen in der Bleomycin-induzierten Lungenfibrose spielen. In der Literatur werden pro- und anti-fibrotische Effekte der Immunzellen in der murinen Lungenfibrose diskutiert. Durch Korrelationsanalysen wurde ein positiver Zusammenhang zwischen der Gesamtimmunzellzahl und der TGF-β-Konzentration an Tag 21 festgestellt. In verschiedenen Studien wurde ein pro-fibrotischer Einfluss der Immunzellen über die Aktivierung/Sekretion von TGF-β beschrieben. Die Abwesenheit der NO-GC im GCKO könnte also über die verstärkte Immigration von Immunzellen in einem erhöhten TGF-β-Gehalt resultieren und so zu einer überschießenden fibrotischen Reaktion an Tag 21 führen. Auf welche Weise die NO-GC die Einwanderung der Immunzellen in der Bleomycin-induzierten Lungenfibrose beeinflusst, muss in weiteren Studien untersucht werden. Zusammenfassend deuten die Daten dieser Arbeit auf eine anti-inflammatorische und anti-fibrotische Rolle der NO-GC in der Lungenfibrose der Maus hin. N2 - Idiopathic pulmonary fibrosis (IPF) is a chronic disease with poor prognosis. The illness is characterized by a dysfunctional alveolar epithelium, formation of α-smooth muscle actin (α-SMA)-positive myofibroblasts, exuberant deposition of collagen, and a dysregulated inflammation. The cytokine transforming growth factor β (TGF-β) is a key player in mediating these pro-fibrotic effects. Due to the fatal course and the limited therapeutic options, new therapeutic approaches must be researched. NO/cGMP signaling modulates fundamental physiological processes like the regulation of blood pressure and peristalsis. Here, NO-sensitive guanylyl cyclase (NO-GC) plays a decisive role as the receptor for NO. In the lung, smooth muscle cells and pericytes express NO-GC. Whereas the enzyme in smooth muscle cells mediates relaxation of smooth muscle, NO-GC in pericytes regulates angiogenesis, capillary permeability, and blood flow. Beside physiological tasks, anti-fibrotic and anti-inflammatory effects of NO-GC have been demonstrated in heart, liver, and skin. Therefore, as part of this work, NO-GC was tested for an anti-fibrotic and anti-inflammatory role in murine lung fibrosis. For this purpose, wild type (WT) and global NO-GC knockout mice (GCKO) were used. Fibrosis was induced by a single orotracheal dose of bleomycin and investigated at different time points (day 7 and 21). Untreated (day 0) animals served as controls. In the first part of this work, immunofluorescence was used to study the performance of α-SMA-positive myofibroblasts in platelet-derived growth factor receptor β (PDGFRβ)-positive fibrotic regions. Hydroxyproline assay was performed to quantify the collagen content. In both genotypes, the fibrosis criteria examined were more pronounced at day 21 than at day 7. At day 21, more α-SMA-positive myofibroblasts, more pronounced PDGFRβ-positive fibrotic areas and a higher collagen content could be detected in the GCKO compared to the WT. In addition, GCKO animals showed poorer survival than WT mice. These results indicated an exaggerated fibrotic response in the GCKO and, thus, an anti-fibrotic effect of NO-GC in bleomycin-induced lung fibrosis. At day 21, a significantly higher TGF-β content in bronchoalveolar lavage fluid (BALF) was determined in GCKO compared to WT. Thus, the more pronounced fibrosis in GCKO compared to WT could be explained at day 21. Consequently, the absence of NO-GC in GCKO could lead to an omission of the inhibition of TGF-β-mediated pro-fibrotic effects by NO-GC. Further studies are required to confirm this hypothesis and to clarify the underlying mechanisms. De novo formation of myofibroblasts, which are substantially involved in collagen synthesis, constitutes an essential fibrotic feature. Therefore, the identification of two myofibroblast subtypes, which differ in localization, expression of NO-GC and origin, is even more crucial: (1) interstitial, NO-GC-positive myofibroblasts, which derive from pericytes and produce collagen type I, and (2) intra-alveolar, NO-GC-negative myofibroblasts, whose lineage has not been finally clarified yet. Appearance of both types of myofibroblasts could be observed at both assessed time points after bleomycin treatment. NO-GC expression of intra-alveolar myofibroblasts, their descent from pericytes and permanent presence indicate a relevant role of NO-GC in murine lung fibrosis. In further studies, exact function and specific marker of myofibroblast subtypes need to be identified. In the second part of this work, NO-GC was investigated for anti-inflammatory effects in bleomycin-induced pulmonary fibrosis. Using HE staining and immunofluorescence, lymphocytic infiltrates were detected in GCKO at day 21, indicating a modulatory influence of NO-GC on the immune system. At day 21, significantly more total immune cells, lymphocytes and neutrophils were counted in the BALF of GCKO animals than in the WT. This suggests a strong immigration of immune cells and, thus, a pronounced inflammation in GCKO lungs. Consequently, NO-GC could play an anti-inflammatory role via regulation of immune cell immigration in bleomycin-induced pulmonary fibrosis. Pro- and anti-fibrotic effects of immune cells in murine pulmonary fibrosis are discussed in the literature. Performing correlation analyses, a positive correlation was found between total immune cell count and TGF-β concentration at day 21. Several studies, have described a pro-fibrotic influence of immune cells via activation/secretion of TGF-β. Thus, the absence of NO-GC in GCKO could result in elevated TGF-β levels via increased immune cell immigration, leading to an exaggerated fibrotic response at day 21. The way in which NO-GC influences immune cell immigration in bleomycin-induced pulmonary fibrosis needs to be investigated in further studies. In conclusion, the data of this work suggest an anti-inflammatory and anti-fibrotic role of NO-GC in murine pulmonary fibrosis. KW - Lunge KW - Fibrose KW - NO-GC KW - TGF-β KW - Guanylatcyclase KW - Maus Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-348054 ER - TY - JOUR A1 - Mrestani, Achmed A1 - Lichter, Katharina A1 - Sirén, Anna-Leena A1 - Heckmann, Manfred A1 - Paul, Mila M. A1 - Pauli, Martin T1 - Single-molecule localization microscopy of presynaptic active zones in Drosophila melanogaster after rapid cryofixation JF - International Journal of Molecular Sciences N2 - Single-molecule localization microscopy (SMLM) greatly advances structural studies of diverse biological tissues. For example, presynaptic active zone (AZ) nanotopology is resolved in increasing detail. Immunofluorescence imaging of AZ proteins usually relies on epitope preservation using aldehyde-based immunocompetent fixation. Cryofixation techniques, such as high-pressure freezing (HPF) and freeze substitution (FS), are widely used for ultrastructural studies of presynaptic architecture in electron microscopy (EM). HPF/FS demonstrated nearer-to-native preservation of AZ ultrastructure, e.g., by facilitating single filamentous structures. Here, we present a protocol combining the advantages of HPF/FS and direct stochastic optical reconstruction microscopy (dSTORM) to quantify nanotopology of the AZ scaffold protein Bruchpilot (Brp) at neuromuscular junctions (NMJs) of Drosophila melanogaster. Using this standardized model, we tested for preservation of Brp clusters in different FS protocols compared to classical aldehyde fixation. In HPF/FS samples, presynaptic boutons were structurally well preserved with ~22% smaller Brp clusters that allowed quantification of subcluster topology. In summary, we established a standardized near-to-native preparation and immunohistochemistry protocol for SMLM analyses of AZ protein clusters in a defined model synapse. Our protocol could be adapted to study protein arrangements at single-molecule resolution in other intact tissue preparations. KW - active zone KW - nanotopology KW - neuromuscular junction KW - high-pressure freezing/freeze substitution KW - PFA in ethanol KW - dSTORM KW - Drosophila melanogaster Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-304904 SN - 1422-0067 VL - 24 IS - 3 ER - TY - JOUR A1 - vom Dahl, Christian A1 - Müller, Christoph Emanuel A1 - Berisha, Xhevat A1 - Nagel, Georg A1 - Zimmer, Thomas T1 - Coupling the cardiac voltage-gated sodium channel to channelrhodopsin-2 generates novel optical switches for action potential studies JF - Membranes N2 - Voltage-gated sodium (Na\(^+\)) channels respond to short membrane depolarization with conformational changes leading to pore opening, Na\(^+\) influx, and action potential (AP) upstroke. In the present study, we coupled channelrhodopsin-2 (ChR2), the key ion channel in optogenetics, directly to the cardiac voltage-gated Na\(^+\) channel (Na\(_v\)1.5). Fusion constructs were expressed in Xenopus laevis oocytes, and electrophysiological recordings were performed by the two-microelectrode technique. Heteromeric channels retained both typical Na\(_v\)1.5 kinetics and light-sensitive ChR2 properties. Switching to the current-clamp mode and applying short blue-light pulses resulted either in subthreshold depolarization or in a rapid change of membrane polarity typically seen in APs of excitable cells. To study the effect of individual K\(^+\) channels on the AP shape, we co-expressed either K\(_v\)1.2 or hERG with one of the Na\(_v\)1.5-ChR2 fusions. As expected, both delayed rectifier K\(^+\) channels shortened AP duration significantly. K\(_v\)1.2 currents remarkably accelerated initial repolarization, whereas hERG channel activity efficiently restored the resting membrane potential. Finally, we investigated the effect of the LQT3 deletion mutant ΔKPQ on the AP shape and noticed an extremely prolonged AP duration that was directly correlated to the size of the non-inactivating Na\(^+\) current fraction. In conclusion, coupling of ChR2 to a voltage-gated Na\(^+\) channel generates optical switches that are useful for studying the effect of individual ion channels on the AP shape. Moreover, our novel optogenetic approach provides the potential for an application in pharmacology and optogenetic tissue-engineering. KW - optogenetics KW - channelrhodopsin KW - voltage-gated Na\(^+\) channel KW - action potential KW - delayed rectifier potassium channel KW - hERG KW - long QT syndrome Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-288228 SN - 2077-0375 VL - 12 IS - 10 ER - TY - JOUR A1 - Stetter, Christian A1 - Lopez-Caperuchipi, Simon A1 - Hopp-Krämer, Sarah A1 - Bieber, Michael A1 - Kleinschnitz, Christoph A1 - Sirén, Anna-Leena A1 - Albert-Weißenberger, Christiane T1 - Amelioration of cognitive and behavioral deficits after traumatic brain injury in coagulation factor XII deficient mice JF - International Journal of Molecular Sciences N2 - Based on recent findings that show that depletion of factor XII (FXII) leads to better posttraumatic neurological recovery, we studied the effect of FXII-deficiency on post-traumatic cognitive and behavioral outcomes in female and male mice. In agreement with our previous findings, neurological deficits on day 7 after weight-drop traumatic brain injury (TBI) were significantly reduced in FXII\(^{−/−}\) mice compared to wild type (WT) mice. Also, glycoprotein Ib (GPIb)-positive platelet aggregates were more frequent in brain microvasculature of WT than FXII\(^{−/−}\) mice 3 months after TBI. Six weeks after TBI, memory for novel object was significantly reduced in both female and male WT but not in FXII\(^{−/−}\) mice compared to sham-operated mice. In the setting of automated home-cage monitoring of socially housed mice in IntelliCages, female WT mice but not FXII\(^{−/−}\) mice showed decreased exploration and reacted negatively to reward extinction one month after TBI. Since neuroendocrine stress after TBI might contribute to trauma-induced cognitive dysfunction and negative emotional contrast reactions, we measured peripheral corticosterone levels and the ration of heart, lung, and spleen weight to bodyweight. Three months after TBI, plasma corticosterone levels were significantly suppressed in both female and male WT but not in FXII\(^{−/−}\) mice, while the relative heart weight increased in males but not in females of both phenotypes when compared to sham-operated mice. Our results indicate that FXII deficiency is associated with efficient post-traumatic behavioral and neuroendocrine recovery. KW - closed head injury KW - contact-kinin system KW - object recognition memory KW - IntelliCage KW - Crespi effect KW - stress Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-284959 SN - 1422-0067 VL - 22 IS - 9 ER - TY - JOUR A1 - Korkmaz, Yüksel A1 - Puladi, Behrus A1 - Galler, Kerstin A1 - Kämmerer, Peer W. A1 - Schröder, Agnes A1 - Gölz, Lina A1 - Sparwasser, Tim A1 - Bloch, Wilhelm A1 - Friebe, Andreas A1 - Deschner, James T1 - Inflammation in the human periodontium induces downregulation of the α\(_1\)- and β\(_1\)-subunits of the sGC in cementoclasts JF - International Journal of Molecular Sciences N2 - Nitric oxide (NO) binds to soluble guanylyl cyclase (sGC), activates it in a reduced oxidized heme iron state, and generates cyclic Guanosine Monophosphate (cGMP), which results in vasodilatation and inhibition of osteoclast activity. In inflammation, sGC is oxidized and becomes insensitive to NO. NO- and heme-independent activation of sGC requires protein expression of the α\(_1\)- and β\(_1\)-subunits. Inflammation of the periodontium induces the resorption of cementum by cementoclasts and the resorption of the alveolar bone by osteoclasts, which can lead to tooth loss. As the presence of sGC in cementoclasts is unknown, we investigated the α\(_1\)- and β\(_1\)-subunits of sGC in cementoclasts of healthy and inflamed human periodontium using double immunostaining for CD68 and cathepsin K and compared the findings with those of osteoclasts from the same sections. In comparison to cementoclasts in the healthy periodontium, cementoclasts under inflammatory conditions showed a decreased staining intensity for both α\(_1\)- and β\(_1\)-subunits of sGC, indicating reduced protein expression of these subunits. Therefore, pharmacological activation of sGC in inflamed periodontal tissues in an NO- and heme-independent manner could be considered as a new treatment strategy to inhibit cementum resorption. KW - nitric oxide KW - soluble guanylyl cyclase KW - cGMP KW - cementoclasts KW - cementum KW - osteoclasts KW - alveolar bone KW - periodontitis Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-285783 SN - 1422-0067 VL - 22 IS - 2 ER - TY - JOUR A1 - Tian, Yuehui A1 - Yang, Shang A1 - Nagel, Georg A1 - Gao, Shiqiang T1 - Characterization and modification of light-sensitive phosphodiesterases from choanoflagellates JF - Biomolecules N2 - Enzyme rhodopsins, including cyclase opsins (Cyclops) and rhodopsin phosphodiesterases (RhoPDEs), were recently discovered in fungi, algae and protists. In contrast to the well-developed light-gated guanylyl/adenylyl cyclases as optogenetic tools, ideal light-regulated phosphodiesterases are still in demand. Here, we investigated and engineered the RhoPDEs from Salpingoeca rosetta, Choanoeca flexa and three other protists. All the RhoPDEs (fused with a cytosolic N-terminal YFP tag) can be expressed in Xenopus oocytes, except the AsRhoPDE that lacks the retinal-binding lysine residue in the last (8th) transmembrane helix. An N296K mutation of YFP::AsRhoPDE enabled its expression in oocytes, but this mutant still has no cGMP hydrolysis activity. Among the RhoPDEs tested, SrRhoPDE, CfRhoPDE1, 4 and MrRhoPDE exhibited light-enhanced cGMP hydrolysis activity. Engineering SrRhoPDE, we obtained two single point mutants, L623F and E657Q, in the C-terminal catalytic domain, which showed ~40 times decreased cGMP hydrolysis activity without affecting the light activation ratio. The molecular characterization and modification will aid in developing ideal light-regulated phosphodiesterase tools in the future. KW - choanoflagellates KW - optogenetics KW - rhodopsin phosphodiesterase (RhoPDE) KW - cGMP Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-254769 SN - 2218-273X VL - 12 IS - 1 ER - TY - JOUR A1 - Lichter, Katharina A1 - Paul, Mila Marie A1 - Pauli, Martin A1 - Schoch, Susanne A1 - Kollmannsberger, Philip A1 - Stigloher, Christian A1 - Heckmann, Manfred A1 - Sirén, Anna-Leena T1 - Ultrastructural analysis of wild-type and RIM1α knockout active zones in a large cortical synapse JF - Cell Reports N2 - Rab3A-interacting molecule (RIM) is crucial for fast Ca\(^{2+}\)-triggered synaptic vesicle (SV) release in presynaptic active zones (AZs). We investigated hippocampal giant mossy fiber bouton (MFB) AZ architecture in 3D using electron tomography of rapid cryo-immobilized acute brain slices in RIM1α\(^{−/−}\) and wild-type mice. In RIM1α\(^{−/−}\), AZs are larger with increased synaptic cleft widths and a 3-fold reduced number of tightly docked SVs (0–2 nm). The distance of tightly docked SVs to the AZ center is increased from 110 to 195 nm, and the width of their electron-dense material between outer SV membrane and AZ membrane is reduced. Furthermore, the SV pool in RIM1α\(^{−/−}\) is more heterogeneous. Thus, RIM1α, besides its role in tight SV docking, is crucial for synaptic architecture and vesicle pool organization in MFBs. KW - active zone KW - acute brain slices KW - CA3 KW - electron tomography KW - high-pressure freezing KW - hippocampal mossy fiber bouton KW - RIM1α KW - SV pool KW - synaptic ultrastructure KW - presynaptic Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-300913 VL - 40 IS - 12 ER - TY - JOUR A1 - Scherzer, Sönke A1 - Huang, Shouguang A1 - Iosip, Anda A1 - Kreuzer, Ines A1 - Yokawa, Ken A1 - Al-Rasheid, Khaled A. S. A1 - Heckmann, Manfred A1 - Hedrich, Rainer T1 - Ether anesthetics prevents touch-induced trigger hair calcium-electrical signals excite the Venus flytrap JF - Scientific reports N2 - Plants do not have neurons but operate transmembrane ion channels and can get electrical excited by physical and chemical clues. Among them the Venus flytrap is characterized by its peculiar hapto-electric signaling. When insects collide with trigger hairs emerging the trap inner surface, the mechanical stimulus within the mechanosensory organ is translated into a calcium signal and an action potential (AP). Here we asked how the Ca\(^{2+}\) wave and AP is initiated in the trigger hair and how it is feed into systemic trap calcium-electrical networks. When Dionaea muscipula trigger hairs matures and develop hapto-electric excitability the mechanosensitive anion channel DmMSL10/FLYC1 and voltage dependent SKOR type Shaker K\(^{+}\) channel are expressed in the sheering stress sensitive podium. The podium of the trigger hair is interface to the flytrap’s prey capture and processing networks. In the excitable state touch stimulation of the trigger hair evokes a rise in the podium Ca2+ first and before the calcium signal together with an action potential travel all over the trap surface. In search for podium ion channels and pumps mediating touch induced Ca\(^{2+}\) transients, we, in mature trigger hairs firing fast Ca\(^{2+}\) signals and APs, found OSCA1.7 and GLR3.6 type Ca\(^{2+}\) channels and ACA2/10 Ca\(^{2+}\) pumps specifically expressed in the podium. Like trigger hair stimulation, glutamate application to the trap directly evoked a propagating Ca\(^{2+}\) and electrical event. Given that anesthetics affect K\(^+\) channels and glutamate receptors in the animal system we exposed flytraps to an ether atmosphere. As result propagation of touch and glutamate induced Ca\(^{2+}\) and AP long-distance signaling got suppressed, while the trap completely recovered excitability when ether was replaced by fresh air. In line with ether targeting a calcium channel addressing a Ca\(^{2+}\) activated anion channel the AP amplitude declined before the electrical signal ceased completely. Ether in the mechanosensory organ did neither prevent the touch induction of a calcium signal nor this post stimulus decay. This finding indicates that ether prevents the touch activated, glr3.6 expressing base of the trigger hair to excite the capture organ. KW - biophysics KW - drug discovery KW - physiology KW - plan sciences Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-300411 VL - 12 ER - TY - JOUR A1 - Dannhäuser, Sven A1 - Mrestani, Achmed A1 - Gundelach, Florian A1 - Pauli, Martin A1 - Komma, Fabian A1 - Kollmannsberger, Philip A1 - Sauer, Markus A1 - Heckmann, Manfred A1 - Paul, Mila M. T1 - Endogenous tagging of Unc-13 reveals nanoscale reorganization at active zones during presynaptic homeostatic potentiation JF - Frontiers in Cellular Neuroscience N2 - Introduction Neurotransmitter release at presynaptic active zones (AZs) requires concerted protein interactions within a dense 3D nano-hemisphere. Among the complex protein meshwork the (M)unc-13 family member Unc-13 of Drosophila melanogaster is essential for docking of synaptic vesicles and transmitter release. Methods We employ minos-mediated integration cassette (MiMIC)-based gene editing using GFSTF (EGFP-FlAsH-StrepII-TEV-3xFlag) to endogenously tag all annotated Drosophila Unc-13 isoforms enabling visualization of endogenous Unc-13 expression within the central and peripheral nervous system. Results and discussion Electrophysiological characterization using two-electrode voltage clamp (TEVC) reveals that evoked and spontaneous synaptic transmission remain unaffected in unc-13\(^{GFSTF}\) 3rd instar larvae and acute presynaptic homeostatic potentiation (PHP) can be induced at control levels. Furthermore, multi-color structured-illumination shows precise co-localization of Unc-13\(^{GFSTF}\), Bruchpilot, and GluRIIA-receptor subunits within the synaptic mesoscale. Localization microscopy in combination with HDBSCAN algorithms detect Unc-13\(^{GFSTF}\) subclusters that move toward the AZ center during PHP with unaltered Unc-13\(^{GFSTF}\) protein levels. KW - active zone KW - Unc-13 KW - MiMIC KW - presynaptic homeostasis KW - nanoarchitecture KW - localization microscopy KW - STORM KW - HDBSCAN Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-299440 SN - 1662-5102 VL - 16 ER - TY - JOUR A1 - Heckmann, Manfred A1 - Pauli, Martin T1 - Visualizing presynaptic active zones and synaptic vesicles JF - Frontiers in Synaptic Neuroscience N2 - The presynaptic active zone (AZ) of chemical synapses is a highly dynamic compartment where synaptic vesicle fusion and neurotransmitter release take place. During evolution the AZ was optimized for speed, accuracy, and reliability of chemical synaptic transmission in combination with miniaturization and plasticity. Single-molecule localization microscopy (SMLM) offers nanometer spatial resolution as well as information about copy number, localization, and orientation of proteins of interest in AZs. This type of imaging allows quantifications of activity dependent AZ reorganizations, e.g., in the context of presynaptic homeostatic potentiation. In combination with high-pressure freezing and optogenetic or electrical stimulation AZs can be imaged with millisecond temporal resolution during synaptic activity. Therefore SMLM allows the determination of key parameters in the complex spatial environment of AZs, necessary for next generation simulations of chemical synapses with realistic protein arrangements. KW - active zone KW - depression KW - facilitation KW - plasticity KW - potentiation KW - synapse Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-274687 SN - 1663-3563 VL - 14 ER - TY - JOUR A1 - Graf, Jürgen A1 - Rahmati, Vahid A1 - Majoros, Myrtill A1 - Witte, Otto W. A1 - Geis, Christian A1 - Kiebel, Stefan J. A1 - Holthoff, Knut A1 - Kirmse, Knut T1 - Network instability dynamics drive a transient bursting period in the developing hippocampus in vivo JF - eLife N2 - Spontaneous correlated activity is a universal hallmark of immature neural circuits. However, the cellular dynamics and intrinsic mechanisms underlying network burstiness in the intact developing brain are largely unknown. Here, we use two-photon Ca\(^{2+}\) imaging to comprehensively map the developmental trajectories of spontaneous network activity in the hippocampal area CA1 of mice in vivo. We unexpectedly find that network burstiness peaks after the developmental emergence of effective synaptic inhibition in the second postnatal week. We demonstrate that the enhanced network burstiness reflects an increased functional coupling of individual neurons to local population activity. However, pairwise neuronal correlations are low, and network bursts (NBs) recruit CA1 pyramidal cells in a virtually random manner. Using a dynamic systems modeling approach, we reconcile these experimental findings and identify network bi-stability as a potential regime underlying network burstiness at this age. Our analyses reveal an important role of synaptic input characteristics and network instability dynamics for NB generation. Collectively, our data suggest a mechanism, whereby developing CA1 performs extensive input-discrimination learning prior to the onset of environmental exploration. KW - hippocampus KW - spontaneous network activity KW - transient bursting Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-300906 VL - 11 ER - TY - THES A1 - Lichter, Katharina T1 - Die Ultrastruktur von Aktiven Zonen in hippocampalen Moosfaserboutons T1 - The ultrastructure of active zones in hippocampal mossy fiber boutons N2 - In nervous systems, synapses precisely orchestrate information transfer and memory formation. Active zones (AZ) are specialized subcellular compartments at the presynaptic mesoscale which process synaptic transmission on an ultrastructural level. The AZ cytomatrix including the essential scaffold protein Rab3 interacting molecule (RIM) enables exocytosis of synaptic vesicles. A deficiency of the locally most abundant protein isoform RIM1α diminishes long-term potentiation in a complex central mammalian synapse – the connection of hippocampal mossy fiber boutons (MFB) to cornu ammonis (CA)3 pyramidal neurons. Behaviourally, these mice present with learning impairment. The present MD thesis addresses the so far unknown three-dimensional (3D) AZ ultrastructure of MFBs in acute hippocampal slices of wild-type and RIM1α-/- mice. In a first set of experiments, a standardized protocol for near-to-native synaptic tissue preparation at MFBs using high-pressure freezing and freeze substitution and 3D modelling using electron tomography was developed and established. Based on the excellent preservation of synaptic tissue using this protocol, the AZ ultrastructure in both genotypes was quantified in detail up to an individual docked synaptic vesicle using custom-written programming scripts. The experiments demonstrate that deficiency of RIM1α leads to multidimensional alter-ation of AZ 3D ultrastructure and synaptic vesicle pools in MFBs. (Tightly) docked synaptic vesicles – ultrastructural correlates of the readily releasable pool – are reduced, decentralized, and structurally modified, whereas the more distant vesicle pool clusters more densely above larger and more heterogenous AZ surfaces with higher synaptic clefts. The present thesis contributes to a more comprehensive understanding regarding the role of RIM1α for (tight) vesicle docking and organization at MFBs. Furthermore, the precise 3D ultrastructural analysis of MFB AZs in this thesis provides the necessary mor-phological basis for further studies to correlate synaptic ultrastructure with presynaptic plasticity and memory dysfunction in RIM1α-/- mice using advanced electrophysiological and behavioral techniques. N2 - In Nervensystemen bedürfen Informationsweitergabe und Gedächtnisformation eines präzisen Zusammenspiels von Synapsen in Zeit und Raum. Synaptische Transmission basiert strukturell auf mesoskopischen cytosolischen Kompartimenten an der präsynaptischen Membran, sogenannten Aktiven Zonen (AZ). Ihre Cytomatrix, bestehend aus zentralen Gerüstproteinen wie Rab3 interacting molecule (RIM), ermöglicht eine schnelle Freisetzung synaptischer Vesikel. Die Defizienz der lokal häufigsten Isoform RIM1α resultiert an einer komplexen zentralen Säugersynapse, die des hippocampalen Moosfaserboutons (MFB) zu im Cornu ammonis (CA)3 befindlichen Pyramidalzellen, in einer dezimierten Langzeitplastizität. Auf Verhaltensebene zeigen diese Mäuse eine reduzierte Lernfähigkeit. Die vorliegende Dissertation widmet sich grundlegend der bisher unbekannten dreidimensionalen (3D) AZ-Ultrastruktur des MFB in akuten Hippocampusschnitten der adulten Wildtyp- und RIM1α-Knock-Out-Maus (RIM1α\(^{-/-}\)). In einer methodischen Entwicklungsphase wurde ein neuartiges, anspruchsvolles Protokoll der nahezu artefaktfreien (near to native) Synapsenpräparation am MFB mittels Hochdruckgefrierung und Gefriersubstitution sowie der 3D-Modellierung mittels Elektronentomographie etabliert. In einer zweiten Experimentier- und Analysephase ermöglichte die hochwertige synaptische Gewebeerhaltung in beiden Genotypen eine standardisierte, auf Programmierskripten basierte Quantifizierung der AZ-Ultrastruktur bis auf die Ebene eines individuell gedockten synaptischen Vesikels. Dieser Dissertation gelingt der Nachweis, dass eine Defizienz von RIM1α zu einer multidimensionalen ultrastrukturellen Veränderung der AZ und ihres Vesikelpools am MFB führt. Neben einer Reduktion, Dezentralisierung und strukturellen Veränderung (eng) gedockter Vesikel – der ultrastrukturellen Messgrößen von unmittelbar freisetzungsfähigen Vesikeln – verdichtet sich der distaler lokalisierte Vesikelpool auf zugleich größeren, heterogenen AZ-Flächen mit erweitertem synaptischem Spalt. Vorliegende Untersuchungen tragen zum Verständnisgewinn über eine zentrale Rolle von RIM1α für das Docking und die Organisation von Vesikeln der AZ im MFB bei. Darüber hinaus stellen die präzisen ultrastrukturellen Analysen eine morphologische Grundlage für weiterführende Studien mit Hilfe modernster Techniken dar, beispielsweise über die Auswirkungen der geänderten RIM1α\(^{-/-}\) AZ-Ultrastruktur auf die präsynaptische Plastizität sowie in Korrelation zum Gedächtnis und Lernen der Tiere. KW - Hippocampus KW - Neurowissenschaften KW - Exzitatorische Synapse KW - Synaptische Transmission KW - Synaptische Vesikel KW - active zone KW - presynaptic KW - mossy fiber synapse KW - RIM1α KW - CA3 KW - high-pressure freezing/freeze substitution KW - electron tomography KW - acute brain slices Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-303126 ER - TY - THES A1 - Koch, Franziska T1 - Die natriuretischen Peptide ANP, BNP und CNP stimulieren die Kommunikation zwischen Perizyten und Endothelzellen während der physiologischen Angiogenese. T1 - The natriuretic peptides ANP, BNP and CNP stimulate the communication between pericytes and endothelial cells during physiological angiogenesis. N2 - Sowohl der ANP und BNP bindende Guanylylzyklase-A-Rezeptor, als auch der CNP bindende Guanylylzyklase-B-Rezeptor auf den die Endothelzellen ummantelnden Perizyten sind für eine normale postnatale Gefäßentwicklung in der Netzhaut der Maus von entscheidender Bedeutung. Eine perizytenspezifische Deletion der Guanylylzyklase-Rezeptoren führt in Mäusen zu einer signifikanten Verminderung der postnatalen Ausdehnung sowie der Dichte des Gefäßnetzes. Dies ist nicht auf eine Verminderung der Bedeckung des Endothels durch Perizyten zurückzuführen. Weiterhin geht diese Rezeptordeletion mit einer geschlechterunabhängigen Erhöhung des systolischen Blutdrucks einher. Die intrazelluläre Weiterleitung, des durch die natriuretischen Peptide ausgelösten cGMP-Signals erfolgt über die cGMP-abhängige Proteinkinase Typ I (cGKI). N2 - Both the ANP- and BNP-binding guanylyl cyclase A receptor and the CNP-binding guanylyl cyclase B receptor on pericytes lining endothelial cells are crucial for a normal postnatal vascular development in the mouse retina. A pericyte-specific deletion of the guanylyl cyclase receptors in mice leads to a significant reduction in the postnatal extent and density of the vascular plexus. This reduction is not caused by a reduced pericyte-coverage of the endothelium. Furthermore, the deletion of this receptor is associated with a gender-independent increase in systolic blood pressure. The intracellular transmission of the cGMP signal triggered by the natriuretic peptides takes place via the cGMP-dependent protein kinase type I (cGKI). KW - physiologiesche Angiogene KW - natiuretische Peptide KW - Guanylylzyklase-Rezeptoren KW - cGKI KW - Angiopoietin-1 KW - Angiogenese KW - ANP KW - BNP KW - CNP Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-276598 ER - TY - JOUR A1 - Jansch, Charline A1 - Ziegler, Georg C. A1 - Forero, Andrea A1 - Gredy, Sina A1 - Wäldchen, Sina A1 - Vitale, Maria Rosaria A1 - Svirin, Evgeniy A1 - Zöller, Johanna E. M. A1 - Waider, Jonas A1 - Günther, Katharina A1 - Edenhofer, Frank A1 - Sauer, Markus A1 - Wischmeyer, Erhard A1 - Lesch, Klaus-Peter T1 - Serotonin-specific neurons differentiated from human iPSCs form distinct subtypes with synaptic protein assembly JF - Journal of Neural Transmission N2 - Human induced pluripotent stem cells (hiPSCs) have revolutionized the generation of experimental disease models, but the development of protocols for the differentiation of functionally active neuronal subtypes with defined specification is still in its infancy. While dysfunction of the brain serotonin (5-HT) system has been implicated in the etiology of various neuropsychiatric disorders, investigation of functional human 5-HT specific neurons in vitro has been restricted by technical limitations. We describe an efficient generation of functionally active neurons from hiPSCs displaying 5-HT specification by modification of a previously reported protocol. Furthermore, 5-HT specific neurons were characterized using high-end fluorescence imaging including super-resolution microscopy in combination with electrophysiological techniques. Differentiated hiPSCs synthesize 5-HT, express specific markers, such as tryptophan hydroxylase 2 and 5-HT transporter, and exhibit an electrophysiological signature characteristic of serotonergic neurons, with spontaneous rhythmic activities, broad action potentials and large afterhyperpolarization potentials. 5-HT specific neurons form synapses reflected by the expression of pre- and postsynaptic proteins, such as Bassoon and Homer. The distribution pattern of Bassoon, a marker of the active zone along the soma and extensions of neurons, indicates functionality via volume transmission. Among the high percentage of 5-HT specific neurons (~ 42%), a subpopulation of CDH13 + cells presumably designates dorsal raphe neurons. hiPSC-derived 5-HT specific neuronal cell cultures reflect the heterogeneous nature of dorsal and median raphe nuclei and may facilitate examining the association of serotonergic neuron subpopulations with neuropsychiatric disorders. KW - neuropsychiatric disorders KW - human induced pluripotent stem cell (hiPSC) KW - serotonin-specific neurons KW - median and dorsal raphe KW - synapse formation KW - Cadherin-13 (CDH13) Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-268519 SN - 1435-1463 VL - 128 IS - 2 ER - TY - JOUR A1 - Kirmse, Knut T1 - Non-linear GABA\(_{A}\) receptors promote synaptic inhibition in developing neurons JF - Pflügers Archiv - European Journal of Physiology N2 - No abstract available. KW - synaptic inhibition KW - neurons KW - GABA\(_{A}\) receptors Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-267674 SN - 1432-2013 VL - 474 IS - 2 ER - TY - JOUR A1 - Mrestani, Achmed A1 - Pauli, Martin A1 - Kollmannsberger, Philip A1 - Repp, Felix A1 - Kittel, Robert J. A1 - Eilers, Jens A1 - Doose, Sören A1 - Sauer, Markus A1 - Sirén, Anna-Leena A1 - Heckmann, Manfred A1 - Paul, Mila M. T1 - Active zone compaction correlates with presynaptic homeostatic potentiation JF - Cell Reports N2 - Neurotransmitter release is stabilized by homeostatic plasticity. Presynaptic homeostatic potentiation (PHP) operates on timescales ranging from minute- to life-long adaptations and likely involves reorganization of presynaptic active zones (AZs). At Drosophila melanogaster neuromuscular junctions, earlier work ascribed AZ enlargement by incorporating more Bruchpilot (Brp) scaffold protein a role in PHP. We use localization microscopy (direct stochastic optical reconstruction microscopy [dSTORM]) and hierarchical density-based spatial clustering of applications with noise (HDBSCAN) to study AZ plasticity during PHP at the synaptic mesoscale. We find compaction of individual AZs in acute philanthotoxin-induced and chronic genetically induced PHP but unchanged copy numbers of AZ proteins. Compaction even occurs at the level of Brp subclusters, which move toward AZ centers, and in Rab3 interacting molecule (RIM)-binding protein (RBP) subclusters. Furthermore, correlative confocal and dSTORM imaging reveals how AZ compaction in PHP translates into apparent increases in AZ area and Brp protein content, as implied earlier. KW - active zone KW - Bruchpilot KW - RIM-binding protein KW - compaction KW - homeostasis KW - presynaptic plasticity KW - super-resolution microscopy Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-265497 VL - 37 IS - 1 ER - TY - THES A1 - Mrestani, Achmed T1 - Strukturelle Differenzierung und Plastizität präsynaptischer Aktiver Zonen T1 - Structural differentiation and plasticity of presynaptic active zones N2 - Ziel der vorliegenden Arbeit war die nanoskopische Analyse struktureller Differenzierung und Plastizität präsynaptischer aktiver Zonen (AZs) an der NMJ von Drosophila melanogaster mittels hochauflösender, lichtmikroskopischer Bildgebung von Bruchpilot (Brp). In erster Linie wurde das lokalisationsmikroskopische Verfahren dSTORM angewendet. Es wurden neue Analyse-Algorithmen auf der Basis von HDBSCAN entwickelt, um eine objektive, in weiten Teilen automatisierte Quantifizierung bis auf Ebene der Substruktur der AZ zu ermöglichen. Die Differenzierung wurde am Beispiel phasischer und tonischer Synapsen, die an dieser NMJ durch Is- und Ib-Neurone gebildet werden, untersucht. Phasische Is-Synapsen mit hoher Freisetzungswahrscheinlichkeit zeigten kleinere, kompaktere AZs mit weniger Molekülen und höherer molekularer Dichte mit ebenfalls kleineren, kompakteren Brp-Subclustern. Akute strukturelle Plastizität wurde am Beispiel präsynaptischer Homöostase, bei der es zu einer kompensatorisch erhöhten Neurotransmitterfreisetzung kommt, analysiert. Interessanterweise zeigte sich hier ebenfalls eine kompaktere Konfiguration der AZ, die sich auch auf Ebene der Subcluster widerspiegelte, ohne Rekrutierung von Molekülen. Es konnte demonstriert werden, dass sich eine höhere Moleküldichte in der Lokalisationsmikroskopie in eine höhere Intensität und größere Fläche in der konfokalen Mikroskopie übersetzt, und damit der Zusammenhang zu scheinbar gegensätzlichen Vorbefunden hergestellt werden. Die Verdichtung bzw. Kompaktierung erscheint im Zusammenhang mit der Kopplungsdistanz zwischen VGCCs und präsynaptischen Vesikeln als plausibles Muster der effizienten Anordnung molekularer Komponenten der AZ. Die hier eingeführten Analysewerkzeuge und molekularbiologischen Strategien, basierend auf dem CRISPR/Cas9-System, zur Markierung von AZ-Komponenten können zukünftig zur weiteren Klärung der Bedeutung der molekularen Verdichtung als allgemeines Konzept der AZ-Differenzierung beitragen. N2 - The aim of this work was a nanoscopic analysis of structural differentiation and plasticity of presynaptic active zones (AZs) at the NMJ of Drosophila melanogaster using super-resolution light microscopy of Bruchpilot (Brp). The localization microscopy technique dSTORM was primarily used. New analysis algorithms based on HDBSCAN were developed to ensure objective and largely automatized quantification including the substructure of the AZ. Differentiation was assessed using the model of phasic and tonic neurons that are represented by type Is and type Ib neurons at this NMJ. Phasic Is synapses with higher release probability displayed smaller, more compact AZs with less molecules and an enhanced molecular density with smaller, more compact Brp subclusters. For acute structural plasticity the model of presynaptic homeostasis, which is accompanied by a compensatory increase of neurotransmitter release, was used. Interestingly, this again showed a more compact arrangement of the AZ, that was also found in Brp subclusters, without addition of molecules. It could be demonstrated that a higher molecular density in localization microscopy translates into a higher intensity and area in confocal microscopy and, thus, the apparent discrepancy to earlier studies could be explained. With respect to the coupling distance between VGCCs and presynaptic vesicles compaction appears to be a plausible mechanism for an efficient remodeling of AZ components. The analysis tools and molecular biology strategies, based on the CRISPR/Cas9-System, introduced here will be useful to further clarify the importance of molecular compaction as a general concept of AZ differentiation. KW - Synapse KW - Neuronale Plastizität KW - Taufliege KW - Immunfluoreszenz KW - CRISPR/Cas-Methode KW - Hochauflösende Lichtmikroskopie KW - HDBSCAN KW - Bruchpilot Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-235787 ER - TY - JOUR A1 - Pauli, Martin A1 - Paul, Mila M. A1 - Proppert, Sven A1 - Mrestani, Achmed A1 - Sharifi, Marzieh A1 - Repp, Felix A1 - Kürzinger, Lydia A1 - Kollmannsberger, Philip A1 - Sauer, Markus A1 - Heckmann, Manfred A1 - Sirén, Anna-Leena T1 - Targeted volumetric single-molecule localization microscopy of defined presynaptic structures in brain sections JF - Communications Biology N2 - Revealing the molecular organization of anatomically precisely defined brain regions is necessary for refined understanding of synaptic plasticity. Although three-dimensional (3D) single-molecule localization microscopy can provide the required resolution, imaging more than a few micrometers deep into tissue remains challenging. To quantify presynaptic active zones (AZ) of entire, large, conditional detonator hippocampal mossy fiber (MF) boutons with diameters as large as 10 mu m, we developed a method for targeted volumetric direct stochastic optical reconstruction microscopy (dSTORM). An optimized protocol for fast repeated axial scanning and efficient sequential labeling of the AZ scaffold Bassoon and membrane bound GFP with Alexa Fluor 647 enabled 3D-dSTORM imaging of 25 mu m thick mouse brain sections and assignment of AZs to specific neuronal substructures. Quantitative data analysis revealed large differences in Bassoon cluster size and density for distinct hippocampal regions with largest clusters in MF boutons. Pauli et al. develop targeted volumetric dSTORM in order to image large hippocampal mossy fiber boutons (MFBs) in brain slices. They can identify synaptic targets of individual MFBs and measured size and density of Bassoon clusters within individual untruncated MFBs at nanoscopic resolution. KW - mossy fiber synapses KW - CA3 pyrimidal cells KW - CA2+ channels KW - active zone KW - hippocampal KW - release KW - plasticity KW - proteins KW - platform KW - reveals Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-259830 VL - 4 ER - TY - JOUR A1 - Panzer, Sabine A1 - Zhang, Chong A1 - Konte, Tilen A1 - Bräuer, Celine A1 - Diemar, Anne A1 - Yogendran, Parathy A1 - Yu-Strzelczyk, Jing A1 - Nagel, Georg A1 - Gao, Shiqiang A1 - Terpitz, Ulrich T1 - Modified Rhodopsins From Aureobasidium pullulans Excel With Very High Proton-Transport Rates JF - Frontiers in Molecular Biosciences N2 - Aureobasidium pullulans is a black fungus that can adapt to various stressful conditions like hypersaline, acidic, and alkaline environments. The genome of A. pullulans exhibits three genes coding for putative opsins ApOps1, ApOps2, and ApOps3. We heterologously expressed these genes in mammalian cells and Xenopus oocytes. Localization in the plasma membrane was greatly improved by introducing additional membrane trafficking signals at the N-terminus and the C-terminus. In patch-clamp and two-electrode-voltage clamp experiments, all three proteins showed proton pump activity with maximal activity in green light. Among them, ApOps2 exhibited the most pronounced proton pump activity with current amplitudes occasionally extending 10 pA/pF at 0 mV. Proton pump activity was further supported in the presence of extracellular weak organic acids. Furthermore, we used site-directed mutagenesis to reshape protein functions and thereby implemented light-gated proton channels. We discuss the difference to other well-known proton pumps and the potential of these rhodopsins for optogenetic applications. KW - black yeast KW - photoreceptor KW - microbial rhodopsins KW - optogenetics KW - proton channel KW - membrane trafficking KW - fungal rhodopsins KW - Aureobasidium Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-249248 SN - 2296-889X VL - 8 ER - TY - JOUR A1 - Hepbasli, Denis A1 - Gredy, Sina A1 - Ullrich, Melanie A1 - Reigl, Amelie A1 - Abeßer, Marco A1 - Raabe, Thomas A1 - Schuh, Kai T1 - Genotype- and Age-Dependent Differences in Ultrasound Vocalizations of SPRED2 Mutant Mice Revealed by Machine Deep Learning JF - Brain Sciences N2 - Vocalization is an important part of social communication, not only for humans but also for mice. Here, we show in a mouse model that functional deficiency of Sprouty-related EVH1 domain-containing 2 (SPRED2), a protein ubiquitously expressed in the brain, causes differences in social ultrasound vocalizations (USVs), using an uncomplicated and reliable experimental setting of a short meeting of two individuals. SPRED2 mutant mice show an OCD-like behaviour, accompanied by an increased release of stress hormones from the hypothalamic–pituitary–adrenal axis, both factors probably influencing USV usage. To determine genotype-related differences in USV usage, we analyzed call rate, subtype profile, and acoustic parameters (i.e., duration, bandwidth, and mean peak frequency) in young and old SPRED2-KO mice. We recorded USVs of interacting male and female mice, and analyzed the calls with the deep-learning DeepSqueak software, which was trained to recognize and categorize the emitted USVs. Our findings provide the first classification of SPRED2-KO vs. wild-type mouse USVs using neural networks and reveal significant differences in their development and use of calls. Our results show, first, that simple experimental settings in combination with deep learning are successful at identifying genotype-dependent USV usage and, second, that SPRED2 deficiency negatively affects the vocalization usage and social communication of mice. KW - SPRED KW - SPRED2 KW - mice KW - neural networks KW - ultrasound vocalizations KW - DeepSqueak Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-248525 SN - 2076-3425 VL - 11 IS - 10 ER - TY - JOUR A1 - Popp, Sandy A1 - Schmitt-Böhrer, Angelika A1 - Langer, Simon A1 - Hofmann, Ulrich A1 - Hommers, Leif A1 - Schuh, Kai A1 - Frantz, Stefan A1 - Lesch, Klaus-Peter A1 - Frey, Anna T1 - 5-HTT Deficiency in Male Mice Affects Healing and Behavior after Myocardial Infarction JF - Journal of Clinical Medicine N2 - Anxiety disorders and depression are common comorbidities in cardiac patients. Mice lacking the serotonin transporter (5-HTT) exhibit increased anxiety-like behavior. However, the role of 5-HTT deficiency on cardiac aging, and on healing and remodeling processes after myocardial infarction (MI), remains unclear. Cardiological evaluation of experimentally naïve male mice revealed a mild cardiac dysfunction in ≥4-month-old 5-HTT knockout (−/−) animals. Following induction of chronic cardiac dysfunction (CCD) by MI vs. sham operation 5-HTT−/− mice with infarct sizes >30% experienced 100% mortality, while 50% of 5-HTT+/− and 37% of 5-HTT+/+ animals with large MI survived the 8-week observation period. Surviving (sham and MI < 30%) 5-HTT−/− mutants displayed reduced exploratory activity and increased anxiety-like behavior in different approach-avoidance tasks. However, CCD failed to provoke a depressive-like behavioral response in either 5-Htt genotype. Mechanistic analyses were performed on mice 3 days post-MI. Electrocardiography, histology and FACS of inflammatory cells revealed no abnormalities. However, gene expression of inflammation-related cytokines (TGF-β, TNF-α, IL-6) and MMP-2, a protein involved in the breakdown of extracellular matrix, was significantly increased in 5-HTT−/− mice after MI. This study shows that 5-HTT deficiency leads to age-dependent cardiac dysfunction and disrupted early healing after MI probably due to alterations of inflammatory processes in mice. KW - chronic heart failure KW - myocardial infarction KW - serotonin transporter deficient mice KW - anxiety KW - depression KW - behavior KW - inflammation Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-242739 SN - 2077-0383 VL - 10 IS - 14 ER - TY - JOUR A1 - Zhou, Yang A1 - Ding, Meiqi A1 - Duan, Xiaodong A1 - Konrad, Kai R. A1 - Nagel, Georg A1 - Gao, Shiqiang T1 - Extending the Anion Channelrhodopsin-Based Toolbox for Plant Optogenetics JF - Membranes N2 - Optogenetics was developed in the field of neuroscience and is most commonly using light-sensitive rhodopsins to control the neural activities. Lately, we have expanded this technique into plant science by co-expression of a chloroplast-targeted β-carotene dioxygenase and an improved anion channelrhodopsin GtACR1 from the green alga Guillardia theta. The growth of Nicotiana tabacum pollen tube can then be manipulated by localized green light illumination. To extend the application of analogous optogenetic tools in the pollen tube system, we engineered another two ACRs, GtACR2, and ZipACR, which have different action spectra, light sensitivity and kinetic features, and characterized them in Xenopus laevis oocytes, Nicotiana benthamiana leaves and N. tabacum pollen tubes. We found that the similar molecular engineering method used to improve GtACR1 also enhanced GtACR2 and ZipACR performance in Xenopus laevis oocytes. The ZipACR1 performed in N. benthamiana mesophyll cells and N. tabacum pollen tubes with faster kinetics and reduced light sensitivity, allowing for optogenetic control of anion fluxes with better temporal resolution. The reduced light sensitivity would potentially facilitate future application in plants, grown under low ambient white light, combined with an optogenetic manipulation triggered by stronger green light. KW - optogenetics KW - rhodopsin KW - light-sensitive anion channel KW - surface potential recording KW - pollen tube Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-236617 SN - 2077-0375 VL - 11 IS - 4 ER - TY - JOUR A1 - Jessen, Christina A1 - Kreß, Julia K. C. A1 - Baluapuri, Apoorva A1 - Hufnagel, Anita A1 - Schmitz, Werner A1 - Kneitz, Susanne A1 - Roth, Sabine A1 - Marquardt, André A1 - Appenzeller, Silke A1 - Ade, Casten P. A1 - Glutsch, Valerie A1 - Wobser, Marion A1 - Friedmann-Angeli, José Pedro A1 - Mosteo, Laura A1 - Goding, Colin R. A1 - Schilling, Bastian A1 - Geissinger, Eva A1 - Wolf, Elmar A1 - Meierjohann, Svenja T1 - The transcription factor NRF2 enhances melanoma malignancy by blocking differentiation and inducing COX2 expression JF - Oncogene N2 - The transcription factor NRF2 is the major mediator of oxidative stress responses and is closely connected to therapy resistance in tumors harboring activating mutations in the NRF2 pathway. In melanoma, such mutations are rare, and it is unclear to what extent melanomas rely on NRF2. Here we show that NRF2 suppresses the activity of the melanocyte lineage marker MITF in melanoma, thereby reducing the expression of pigmentation markers. Intriguingly, we furthermore identified NRF2 as key regulator of immune-modulating genes, linking oxidative stress with the induction of cyclooxygenase 2 (COX2) in an ATF4-dependent manner. COX2 is critical for the secretion of prostaglandin E2 and was strongly induced by H\(_2\)O\(_2\) or TNFα only in presence of NRF2. Induction of MITF and depletion of COX2 and PGE2 were also observed in NRF2-deleted melanoma cells in vivo. Furthermore, genes corresponding to the innate immune response such as RSAD2 and IFIH1 were strongly elevated in absence of NRF2 and coincided with immune evasion parameters in human melanoma datasets. Even in vitro, NRF2 activation or prostaglandin E2 supplementation blunted the induction of the innate immune response in melanoma cells. Transcriptome analyses from lung adenocarcinomas indicate that the observed link between NRF2 and the innate immune response is not restricted to melanoma. KW - NRF2 KW - melanoma malignancy KW - COX2 expression Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-235064 SN - 0950-9232 VL - 39 ER - TY - JOUR A1 - Tian, Yuehui A1 - Yang, Shang A1 - Gao, Shiqiang T1 - Advances, perspectives and potential engineering strategies of light-gated phosphodiesterases for optogenetic applications JF - International Journal of Molecular Sciences N2 - The second messengers, cyclic adenosine 3′-5′-monophosphate (cAMP) and cyclic guanosine 3′-5′-monophosphate (cGMP), play important roles in many animal cells by regulating intracellular signaling pathways and modulating cell physiology. Environmental cues like temperature, light, and chemical compounds can stimulate cell surface receptors and trigger the generation of second messengers and the following regulations. The spread of cAMP and cGMP is further shaped by cyclic nucleotide phosphodiesterases (PDEs) for orchestration of intracellular microdomain signaling. However, localized intracellular cAMP and cGMP signaling requires further investigation. Optogenetic manipulation of cAMP and cGMP offers new opportunities for spatio-temporally precise study of their signaling mechanism. Light-gated nucleotide cyclases are well developed and applied for cAMP/cGMP manipulation. Recently discovered rhodopsin phosphodiesterase genes from protists established a new and direct biological connection between light and PDEs. Light-regulated PDEs are under development, and of demand to complete the toolkit for cAMP/cGMP manipulation. In this review, we summarize the state of the art, pros and cons of artificial and natural light-regulated PDEs, and discuss potential new strategies of developing light-gated PDEs for optogenetic manipulation. KW - cyclic nucleotides KW - phosphodiesterases (PDEs) KW - optogenetics KW - cAMP KW - cGMP Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-236203 SN - 1422-0067 VL - 21 IS - 20 ER - TY - JOUR A1 - Capetian, Philipp A1 - Müller, Lorenz A1 - Volkmann, Jens A1 - Heckmann, Manfred A1 - Ergün, Süleyman A1 - Wagner, Nicole T1 - Visualizing the synaptic and cellular ultrastructure in neurons differentiated from human induced neural stem cells - an optimized protocol JF - International Journal of Molecular Sciences N2 - The size of the synaptic subcomponents falls below the limits of visible light microscopy. Despite new developments in advanced microscopy techniques, the resolution of transmission electron microscopy (TEM) remains unsurpassed. The requirements of tissue preservation are very high, and human post mortem material often does not offer adequate quality. However, new reprogramming techniques that generate human neurons in vitro provide samples that can easily fulfill these requirements. The objective of this study was to identify the culture technique with the best ultrastructural preservation in combination with the best embedding and contrasting technique for visualizing neuronal elements. Two induced neural stem cell lines derived from healthy control subjects underwent differentiation either adherent on glass coverslips, embedded in a droplet of highly concentrated Matrigel, or as a compact neurosphere. Afterward, they were fixed using a combination of glutaraldehyde (GA) and paraformaldehyde (PFA) followed by three approaches (standard stain, Ruthenium red stain, high contrast en-bloc stain) using different combinations of membrane enhancing and contrasting steps before ultrathin sectioning and imaging by TEM. The compact free-floating neurospheres exhibited the best ultrastructural preservation. High-contrast en-bloc stain offered particularly sharp staining of membrane structures and the highest quality visualization of neuronal structures. In conclusion, compact neurospheres growing under free-floating conditions in combination with a high contrast en-bloc staining protocol, offer the optimal preservation and contrast with a particular focus on visualizing membrane structures as required for analyzing synaptic structures. KW - transmission electron microscopy KW - human neurons KW - induced neural stem cells KW - synapse KW - synaptic vesicles KW - high contrast Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-236053 SN - 1422-0067 VL - 21 IS - 5 ER - TY - JOUR A1 - Kirschmer, Nadine A1 - Bandleon, Sandra A1 - von Ehrlich-Treuenstätt, Viktor A1 - Hartmann, Sonja A1 - Schaaf, Alice A1 - Lamprecht, Anna-Karina A1 - Miranda-Laferte, Erick A1 - Langsenlehner, Tanja A1 - Ritter, Oliver A1 - Eder, Petra T1 - TRPC4α and TRPC4β Similarly Affect Neonatal Cardiomyocyte Survival during Chronic GPCR Stimulation JF - PLoS ONE N2 - The Transient Receptor Potential Channel Subunit 4 (TRPC4) has been considered as a crucial Ca\(^{2+}\) component in cardiomyocytes promoting structural and functional remodeling in the course of pathological cardiac hypertrophy. TRPC4 assembles as homo or hetero-tetramer in the plasma membrane, allowing a non-selective Na\(^{+}\) and Ca\(^{2+}\) influx. Gαq protein-coupled receptor (GPCR) stimulation is known to increase TRPC4 channel activity and a TRPC4-mediated Ca\(^{2+}\) influx which has been regarded as ideal Ca\(^{2+}\) source for calcineurin and subsequent nuclear factor of activated T-cells (NFAT) activation. Functional properties of TRPC4 are also based on the expression of the TRPC4 splice variants TRPC4α and TRPC4β. Aim of the present study was to analyze cytosolic Ca\(^{2+}\) signals, signaling, hypertrophy and vitality of cardiomyocytes in dependence on the expression level of either TRPC4α or TRPC4β. The analysis of Ca\(^{2+}\) transients in neonatal rat cardiomyocytes (NRCs) showed that TRPC4α and TRPC4β affected Ca\(^{2+}\) cycling in beating cardiomyocytes with both splice variants inducing an elevation of the Ca\(^{2+}\) transient amplitude at baseline and TRPC4β increasing the Ca\(^{2+}\) peak during angiotensin II (Ang II) stimulation. NRCs infected with TRPC4β (Ad-C4β) also responded with a sustained Ca\(^{2+}\) influx when treated with Ang II under non-pacing conditions. Consistent with the Ca\(^{2+}\) data, NRCs infected with TRPC4α (Ad-C4α) showed an elevated calcineurin/NFAT activity and a baseline hypertrophic phenotype but did not further develop hypertrophy during chronic Ang II/phenylephrine stimulation. Down-regulation of endogenous TRPC4α reversed these effects, resulting in less hypertrophy of NRCs at baseline but a markedly increased hypertrophic enlargement after chronic agonist stimulation. Ad-C4β NRCs did not exhibit baseline calcineurin/NFAT activity or hypertrophy but responded with an increased calcineurin/NFAT activity after GPCR stimulation. However, this effect was not translated into an increased propensity towards hypertrophy but rather less hypertrophy during GPCR stimulation. Further analyses revealed that, although hypertrophy was preserved in Ad-C4α NRCs and even attenuated in Ad-C4β NRCs, cardiomyocytes had an increased apoptosis rate and thus were less viable after chronic GPCR stimulation. These findings suggest that TRPC4α and TRPC4β differentially affect Ca\(^{2+}\) signals, calcineurin/NFAT signaling and hypertrophy but similarly impair cardiomyocyte viability during GPCR stimulation. KW - Apoptosis KW - calcineurin signaling cascade KW - small interfering RNAs KW - G protein coupled receptors KW - hyperexpression techniques KW - heart KW - adenoviruses KW - cardiac pacing Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-178539 VL - 11 IS - 12 ER - TY - THES A1 - Dannhäuser, Sven T1 - Function of the Drosophila adhesion-GPCR Latrophilin/CIRL in nociception and neuropathy T1 - Funktionelle Rolle des Drosophila aGPCR Latrophilin/CIRL in Nozizeption und Neuropathie N2 - Touch sensation is the ability to perceive mechanical cues which is required for essential behaviors. These encompass the avoidance of tissue damage, environmental perception, and social interaction but also proprioception and hearing. Therefore research on receptors that convert mechanical stimuli into electrical signals in sensory neurons remains a topical research focus. However, the underlying molecular mechanisms for mechano-metabotropic signal transduction are largely unknown, despite the vital role of mechanosensation in all corners of physiology. Being a large family with over 30 mammalian members, adhesion-type G protein-coupled receptors (aGPCRs) operate in a vast range of physiological processes. Correspondingly, diverse human diseases, such as developmental disorders, defects of the nervous system, allergies and cancer are associated with these receptor family. Several aGPCRs have recently been linked to mechanosensitive functions suggesting, that processing of mechanical stimuli may be a common feature of this receptor family – not only in classical mechanosensory structures. This project employed Drosophila melanogaster as the candidate to analyze the aGPCR Latrophilin/dCIRL function in mechanical nociception in vivo. To this end, we focused on larval sensory neurons and investigated molecular mechanisms of dCIRL activity using noxious mechanical stimuli in combination with optogenetic tools to manipulate second messenger pathways. In addition, we made use of a neuropathy model to test for an involvement of aGPCR signaling in the malfunctioning peripheral nervous system. To do so, this study investigated and characterized nocifensive behavior in dCirl null mutants (dCirlKO) and employed genetically targeted RNA-interference (RNAi) to cell-specifically manipulate nociceptive function. The results revealed that dCirl is transcribed in type II class IV peripheral sensory neurons – a cell type that is structurally similar to mammalian nociceptors and detects different nociceptive sensory modalities. Furthermore, dCirlKO larvae showed increased nocifensive behavior which can be rescued in cell specific reexpression experiments. Expression of bPAC (bacterial photoactivatable adenylate cyclase) in these nociceptive neurons enabled us to investigate an intracellular signaling cascade of dCIRL function provoked by light-induced elevation of cAMP. Here, the findings demonstrated that dCIRL operates as a down-regulator of nocifensive behavior by modulating nociceptive neurons. Given the clinical relevance of this results, dCirl function was tested in a chemically induced neuropathy model where it was shown that cell specific overexpression of dCirl rescued nocifensive behavior but not nociceptor morphology. N2 - Der Tastsinn ist die Fähigkeit, mechanische Reize wahrzunehmen, die für essentielle Verhaltensweisen notwendig sind. Dazu gehören die Vermeidung von Gewebsschädigungen, die Wahrnehmung der Umwelt und soziale Interaktion, aber auch die Propriozeption und das Hören. Daher bleibt die Forschung an Rezeptoren, die mechanische Reize in sensorischen Neuronen in elektrische Signale umwandeln, ein aktueller Forschungsschwerpunk. Die zugrundeliegenden molekularen Mechanismen für die mechanometabotrope Signalübertragung sind trotz der wesentlichen Rolle des Tastsinns in allen Bereichen der Physiologie weitgehend unbekannt. Adhäsions G-Protein gekoppelte Rezeptoren (aGPCRs), eine große Molekülfamilie mit über 30 Vertretern im Menschen, sind an einer Vielzahl von physiologischen Prozessen beteiligt. Demzufolge wird ein Zusammenhang zwischen diesen Rezeptoren und verschiedenen Erkrankungen des Menschen, wie z. B. Entwicklungsstörungen, Defekte des Nervensystems, Allergien und Krebs, angenommen. Mehrere aGPCRs wurden kürzlich mit mechanosensitiven Funktionen in Verbindung gebracht, was darauf hindeutet, dass die Verarbeitung mechanischer Reize ein gemeinsames Merkmal dieser Rezeptorfamilie ist – nicht nur in klassischen mechanosensorischen Strukturen. In diesem Projekt wurde Drosophila melanogaster verwendet, um die Funktion des aGPCR-Latrophilin/dCIRL in der mechanischen Nozizeption in vivo zu analysieren. Zu diesem Zweck konzentriert sich diese Arbeit auf mechano-sensorische Neurone (Typ II Klasse IV) der Fruchtfliegenlarve, um die molekularen Mechanismen der dCIRL-Aktivität zu untersuchen. Hierzu wurden noxische mechanische Reize in Kombination mit optogenetischen Werkzeugen, zur Manipulation der Second-Messenger-Signalübertragung, herangezogen. Zusätzlich wurde ein Neuropathie-Modell etabliert, um eine Beteiligung des aGPCRs dCIRL am beeinträchtigten peripheren Nervensystem zu testen. Zu diesem Zweck untersucht und charakterisiert diese Studie das nozizeptive Verhalten in dCirl-Nullmutanten (dCirlKO) und die RNA-Interferenz (RNAi) Methode, um zellspezifische Manipulationen auszuführen. Die Ergebnisse zeigen, dass dCirl in spezifischen peripheren sensorischen Neuronen (C4da) transkribiert wird - ein Zelltyp, der Nozizeptoren in Säugern strukturell ähnlich ist und verschiedene nozizeptive sensorische Modalitäten vermittelt. Darüber hinaus zeigen dCirlKO-Larven ein erhöhtes nozizeptives Verhalten, welches mittels zellspezifischer Reexpression gerettet werden kann. Die Expression von bPAC (bakterielle photoaktivierbare Adenylatcyclase) in diesen nozizeptiven Neuronen ermöglichte es, intrazelluläre Signalkaskaden von CIRL zu untersuchen, welche durch lichtinduzierte Erhöhung von cAMP angeregt werden. Dieser Versuch zeigt, dass dCIRL durch die Modulation nozizeptiver Neuronen eine Herabregulation des nozizeptiven Verhaltens bewirkt. Angesichts der klinischen Relevanz dieses Ergebnisses wurde die dCirl-Funktion in einem chemisch induzierten Neuropathie-Modell getestet. Dabei stellte sich heraus, dass zellspezifische Überexpression von dCirl eine ausgeprägte Hyperalgesie reduziert, morphologische Schädigungen hingegen nicht gerettet werden konnten. KW - Drosophila KW - Fluoreszenzmikroskopie KW - Nozizeption KW - Neuropathie KW - nociception KW - neuropathy KW - adhesion-GPCR KW - aGPCR KW - dCIRL KW - Latrophilin Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-201580 ER - TY - JOUR A1 - Werner, Franziska A1 - Kojonazarov, Baktybek A1 - Gaßner, Birgit A1 - Abeßer, Marco A1 - Schuh, Kai A1 - Völker, Katharina A1 - Baba, Hideo A. A1 - Dahal, Bhola K. A1 - Schermuly, Ralph T. A1 - Kuhn, Michaela T1 - Endothelial actions of atrial natriuretic peptide prevent pulmonary hypertension in mice JF - Basic Research in Cardiology N2 - The cardiac hormone atrial natriuretic peptide (ANP) regulates systemic and pulmonary arterial blood pressure by activation of its cyclic GMP-producing guanylyl cyclase-A (GC-A) receptor. In the lung, these hypotensive effects were mainly attributed to smooth muscle-mediated vasodilatation. It is unknown whether pulmonary endothelial cells participate in the homeostatic actions of ANP. Therefore, we analyzed GC-A/cGMP signalling in lung endothelial cells and the cause and functional impact of lung endothelial GC-A dysfunction. Western blot and cGMP determinations showed that cultured human and murine pulmonary endothelial cells exhibit prominent GC-A expression and activity which were markedly blunted by hypoxia, a condition known to trigger pulmonary hypertension (PH). To elucidate the consequences of impaired endothelial ANP signalling, we studied mice with genetic endothelial cell-restricted ablation of the GC-A receptor (EC GC-A KO). Notably, EC GC-A KO mice exhibit PH already under resting, normoxic conditions, with enhanced muscularization of small arteries and perivascular infiltration of inflammatory cells. These alterations were aggravated on exposure of mice to chronic hypoxia. Lung endothelial GC-A dysfunction was associated with enhanced expression of angiotensin converting enzyme (ACE) and increased pulmonary levels of Angiotensin II. Angiotensin II/AT(1)-blockade with losartan reversed pulmonary vascular remodelling and perivascular inflammation of EC GC-A KO mice, and prevented their increment by chronic hypoxia. This experimental study indicates that endothelial effects of ANP are critical to prevent pulmonary vascular remodelling and PH. Chronic endothelial ANP/GC-A dysfunction, e.g. provoked by hypoxia, is associated with activation of the ACE-angiotensin pathway in the lung and PH. KW - Atrial natriuretic peptide KW - Endothelium KW - Guanylyl cyclase-A KW - Cyclic GMP KW - Pulmonary hypertension Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-190664 VL - 111 IS - 2 ER - TY - THES A1 - Pickel, Simone T1 - Role of the β subunit of L-type calcium channels in cardiac hypertrophy T1 - Die Rolle der β Untereinheit von L-Typ Kalziumkänalen in der kardialen Hypertrophie N2 - L-type calcium channels (LTCCs) control crucial physiological processes in cardiomyocytes such as the duration and amplitude of action potentials, excitation-contraction coupling and gene expression, by regulating the entry of Ca2+ into the cells. Cardiac LTCCs consist of one pore-forming α1 subunit and the accessory subunits Cavβ, Cavα2δ and Cavγ. Of these auxiliary subunits, Cavβ is the most important regulator of the channel activity; however, it can also have LTCC-independent cellular regulatory functions. Therefore, changes in the expression of Cavβ can lead not only to a dysregulation of LTCC activity, but also to changes in other cellular functions. Cardiac hypertrophy is one of the most relevant risk factors for congestive heart failure and depends on the activation of calcium-dependent prohypertrophic signaling pathways. However, the role of LTCCs and especially Cavβ in this pathology is controversial and needs to be further elucidated. Of the four Cavβ isoforms, Cavβ2 is the predominant one in cardiomyocytes. Moreover, there are five different splice variants of Cavβ2 (Cavβ2a-e), differing only in the N-terminal region. We reported that Cavβ2b is the predominant variant expressed in the heart. We also revealed that a pool of Cavβ2 is targeted to the nucleus in cardiomyocytes. The expression of the nuclear Cavβ2 decreases during in vitro and in vivo induction of cardiomyocyte hypertrophy and overexpression of a nucleus-targeted Cavβ2 completely abolishes the in vitro induced hypertrophy. Additionally, we demonstrated by shRNA-mediated protein knockdown that downregulation of Cavβ2 enhances the hypertrophy induced by the α1-adrenergic agonist phenylephrine (PE) without involvement of LTCC activity. These results suggest that Cavβ2 can regulate cardiac hypertrophy through LTCC-independent pathways. To further validate the role of the nuclear Cavβ2, we performed quantitative proteome analyses of Cavβ2-deficient neonatal rat cardiomyocytes (NRCs). The results show that downregulation of Cavβ2 influences the expression of various proteins, including a decrease of calpastatin, an inhibitor of the calcium-dependent cysteine protease calpain. Moreover, downregulation of Cavβ2 during cardiomyocyte hypertrophy drastically increases calpain activity as compared to controls after treatment with PE. Finally, the inhibition of calpain by calpeptin abolishes the increase in PE-induced hypertrophy in Cavβ2-deficient cells. These results suggest that nuclear Cavβ2 has Ca2+- and LTCC-independent functions during the development of hypertrophy. Overall, our results indicate a new role for Cavβ2 in antihypertrophic signaling in cardiac hypertrophy. N2 - Durch die Regulation des Calciumeintritts in die Zellen kontrollieren L-Typ-Calciumkanäle (LTCCs) wichtige physiologische Prozesse wie die Dauer und Amplitude von Aktionspotentialen, die elektromechanische Kopplung und die Genexpression in Kardiomyozyten. Kardiale LTCCs bestehen aus einer porenformenden α1 Untereinheit und Hilfsuntereinheiten wie Cavβ, Cavα2δ und Cavγ. Von diesen Hilfsuntereinheiten ist Cavβ der wichtigste Regulator der Kanalfunktion, wobei Cavβ auch LTCC-unabhängige zelluläre und regulatorische Funktionen haben kann. Veränderungen in der Expression dieses Proteins können daher zu einer Fehlregulation der LTCC-Aktivität führen, jedoch auch zu Veränderungen von anderen zellulären Funktionen. Einer der häufigsten Risikofaktoren für kongestive Herzinsuffizienz ist die kardiale Hypertrophie, welche abhängig ist von der Aktivierung von Calcium-abhängigen prohypertrophen Signalwegen. Die Rolle von LTCCs und insbesondere von Cavβ in dieser Erkrankung ist jedoch kontrovers und muss noch weiter erforscht werden. Von den vier Cavβ Splicevarianten ist Cavβ2 die dominierende Form in Kardiomyozyten. Darüber hinaus existieren fünf verschiedene Splicevarianten von Cavβ2 (Cavβ2a-e), die sich jeweils nur in der N-terminalen Region unterscheiden. Wir konnten demonstrieren, dass von diesen Splicevarianten überwiegend Cavβ2b im Herzen exprimiert wird. Außerdem konnten wir zeigen, dass ein Teil von Cavβ2 im Nukleus von Kardiomyozyten zu finden ist. Die Expression von nuklearem Cavβ2 verringert sich während der in vitro und in vivo induzierten kardialen Hypertrophie und außerdem verhindert die Überexpression von im Kern lokalisiertem Cavβ2 die in vitro induzierte Hypertrophie komplett. Zusätzlich konnten wir demonstrieren, dass die Reduktion von Cavβ2 mittels shRNA zu einer Steigerung der Hypertrophie induziert durch die Stimulation mit dem α1-adrenergen Agonisten Phenylephrin (PE) führt, ohne dass die LTCC-Aktivität beteiligt ist. Diese Ergebnisse legen nahe, dass Cavβ2 die Entstehung von Hypertrophie durch LTCC-unabhängige Signalwege beeinflussen kann. Um die Rolle von nuklearem Cavβ2 zu bekräftigen, haben wir quantitative Proteomanalysen von Cavβ2 defizienten neonatalen Rattenkardiomyozyten (NRCs) durchgeführt. Die Ergebnisse zeigen, dass die Reduktion von Cavβ2 die Expression verschiedener Proteine beeinflusst, zum Beispiel wird Calpastatin, ein Inhibitor der calciumabhängigen Cysteinproteasen Calpain, herunterreguliert. Außerdem wird durch die Cavβ2 Reduktion während der Hypertrophie von Kardiomyozyten die Calpainaktivität verglichen mit den Kontrollen signifikant erhöht. Letztendlich konnten wir zeigen, dass die Inhibierung von Calpain durch Calpeptin die gesteigerte PE-induzierte Hypertrophie in Cavβ2-defizienten Zellen verhindert. Diese Ergebnisse lassen eine Calcium- und LTCC-unabhängige Funktion von nuklearem Cavβ2 während der Entwicklung von Hypertrophie, annehmen. Insgesamt deuten unsere Ergebnisse auf eine neue Rolle von Cavβ2 in den antihypertrophen Signalwegen in der kardialen Hypertrophie hin. KW - Herzhypertrophie KW - Calciumkanal KW - Herzmuskelzelle KW - L-type calcium channels KW - Cavβ subunit KW - Calpain KW - LTCC-independent function of Cavβ Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-192829 ER - TY - THES A1 - Guerrero González, Hans T1 - Quantifizierung von prä- und postsynaptischen Protein-Veränderungen in der Amygdala-Region in SPRED2-defizienten Mäusen T1 - Quantification of pre- and postsynaptic protein-alterations in the amygdala-region in SPRED2-deficient mice N2 - SPRED2 ist ein Membran-assoziiertes Protein, das als wichtiger Regulator der Zelle fungiert. Es übt eine inhibitorische Wirkung auf dem Ras/ERK/MAPK-Signalweg und ist u.a. in der Neurogenese im zentralen Nervensystem beteiligt. Durch diverse Verhaltenstests in SPRED2-KO Mäusen konnten OCD-ähnliche Symptome bei den Tieren festgestellt werden sowie eine vermehrte Aktivität in thalamo-amygdalen Synapsen. Zur weiteren Abklärung dieser synaptischen Dysfunktion, wurde eine Quantifizierung von prä- und postsynaptischen Protein-Veränderungen in der Amygdala-Region in SPRED2-defizienten Mäusen im Vergleich zur Wildtyp Mäusen durchgeführt. Hier konnten signifikante Unterschiede festgestellt werden. N2 - SPRED2 is a membran associated protein that functions as an important cell-regulator. It has an inhibitory effect on the Ras/ERK/MAPK signaling pathway and is involved in neurogenesis of the central nervous system. Various behavioral tests in the SPRED2-KO mice displayed signs of OCD-behavior and showed an increased activity in thalamo-amygdal synapses. To further explain this synaptic dysfunction, a quantification of pre- and postsynaptic protein-alterations in the amygdala region was carried out in SPRED2-KO Mice. We were able to show significant difference between both groups. KW - Spred-Proteine KW - SPRED2 KW - OCD Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-216701 ER - TY - THES A1 - Tauscher, Sabine Christine T1 - Die Rolle von Atrialen und B-Typ Natriuretischen Peptiden bei der Regulation der Insulinsekretion und Funktion pankreatischer ß-Zellen T1 - Role of atrial and B-type natriuretic peptide in the regulation of insulin secretion and vitality of pancreatic ß cells N2 - Die kardialen Hormone Atriales (ANP) und B-Typ (BNP) Natriuretisches Peptid üben bekannte renale und kardiovaskuläre Effekte aus, welche durch ihren gemeinsamen, cGMP-bildenden Guanylatzyklase-Rezeptor A (GC-A) vermittelt werden. Diese Effekte sind entscheidend an der physiologischen Aufrechterhaltung des arteriellen Blutdrucks sowie des intravaskulären Blutvolumens beteiligt. Darüber hinaus zeigen aktuelle Studien, dass NPs die Mobilisierung von Fettsäuren aus dem Fettgewebe und deren Oxidation durch die Skelettmuskulatur steigern sowie die Thermogenese in braunem und weißem Fettgewebe aktivieren können. Dadurch können NPs den Energieverbrauch erhöhen und die Insulinsensitivität verbessern. Desweiteren ist Übergewicht mit einer gestörten NP/GC-A/cGMP-Signalübertragung verbunden, die möglicherweise zur Entwicklung von Diabetes Typ 2 und dessen kardio-metabolischen Folgeerkrankungen beiträgt. In vitro stimuliert synthetisches ANP über GC-A die Glukose-stimulierte Insulinsekretion aus kultivierten pankreatischen Inseln und die β-Zellproliferation. Die Bedeutung für die systemische Insulin/Glukosehomöostase in vivo ist jedoch unklar. Um zu untersuchen, ob die endogenen Herzhormone die sekretorische Funktion und/oder die Proliferation von β-Zellen unter (patho)physiologischen Bedingungen in vivo modulieren, haben wir ein neues genetisches Mausmodell mit selektiver Deletion des GC-A-Rezeptors in β-Zellen (ß GC-A KO) generiert. In kultivierten Inseln von β GC-A KO-Mäusen waren die insulinotropen und proliferativen Effekte von ANP aufgehoben. Übereinstimmend damit führte die Infusion von BNP bei Kontroll-Tieren in vivo zu leicht erhöhten basalen Plasma-Insulinspiegeln und verbesserter Glukose-induzierter Insulinsekretion. Dieser Effekt von exogenem BNP konnte bei β GC-A KO-Mäusen nicht beobachtet werden, was die effiziente Deletion des GC-A-Rezeptors in β-Zellen bestätigt. Interessanterweise hatte die Ablation des GC-A-Rezeptors auf ß-Zellen unter basalen Bedingungen keinen Einfluss auf physiologische und metabolische Parameter in vivo. Sowohl männliche als auch weibliche ß GC-A KO-Tiere zeigten keine Unterschiede in der basalen Insulin- und Glukosehomöostase, da sie ähnliche Nüchtern-Blutzucker- und Insulinspiegel (nach Fasten über Nacht) aufwiesen wie die Kontroll-Mäuse. Allerdings zeigten die mit HFD gefütterten β GC-A KO-Tiere frühzeitiger Glukose-Intoleranz sowie eine verminderte adaptive β-Zellproliferation. Abgesehen davon war das konsistenteste Ergebnis der in vivo-Studien der geschlechtsabhängige Unterschied in der Auswirkung der ß-Zellspezifischen GC-A-Deletion auf die Glukose-stimulierte Insulinsekretion. Weibliche, aber nicht männliche ß GC-A KO-Mäuse zeigten erhöhte Nüchtern-Insulinspiegel und eine signifikant erhöhte Glukose-stimulierte Insulinsekretion, was zu einer deutlich verbesserten Glukosetoleranz führte. Der postulierte und untersuchte Mechanismus beinhaltet eine Interaktion von Östrogenen und NPs, welche die Expression des mitochondrialen Uncoupling Protein 2 beeinflussen. Diese Arbeit erweitert das derzeitige Wissen über die metabolischen Effekte des NP/GC-A-Systems. Insbesondere zeigen die Ergebnisse, dass Natriuretische Peptide zu einer gesteigerten ß-Zellfunktion und Vitalität in frühen Stadien eines erhöhten Insulinbedarfs, d.h. bei Diabetes Typ 2, beitragen. Da die Studien eine wesentliche Rolle dieser kardialen Hormone im endokrinen Pankreas aufdecken, ist es umso wichtiger die pleiotropen Eigenschaften von NPs und ihre möglichen therapeutischen Anwendungen bei kardio-metabolischen Erkrankungen weiter zu untersuchen. N2 - The cardiac hormones atrial (ANP) and B-type (BNP) natriuretic peptide exert well-known renal and cardiovascular actions which are mediated by their shared cGMP-forming guanylyl cyclase A receptor (GC-A). These actions are critically involved in the physiological maintenance of arterial blood pressure and intravascular volume homeostasis. In addition, recent studies indicate that NPs can increase fatty acid mobilization from adipose tissue and their oxidation by skeletal muscles and activate a thermogenic program in brown and white fat. Thereby NPs increase energy expenditure and improve insulin sensitivity. Moreover, obesity is associated with impaired NP/GC-A/cGMP signaling, which possibly contributes to the development of type 2 diabetes and its cardiometabolic complications. In vitro, synthetic ANP, via GC-A, stimulates glucose-dependent insulin release from cultured pancreatic islets and β-cell proliferation. However, the relevance for systemic insulin/glucose homeostasis in vivo is not known. To dissect whether the endogenous cardiac hormones modulate the secretory function and/or proliferation of β-cells under (patho)physiological conditions in vivo, here we generated a novel genetic mouse model with selective disruption of the GC-A receptor in β-cells (ß GC-A KO). In vitro, the insulinotropic and proliferative actions of ANP were abolished in islets isolated from β GC-A KO mice. Concordantly, in vivo, infusion of BNP mildly enhanced baseline plasma insulin levels and glucose-induced insulin secretion in control mice. This effect of exogenous BNP was abolished in β GC-A KO mice, corroborating the efficient inactivation of the GC-A receptor in β-cells. Interestingly, the ablation of the GC-A receptor under basal conditions had no effect on physiological and metabolic parameters in vivo. Both male and female ß GC-A KO animals showed no differences in basal insulin and glucose homeostasis, as they have similar fasting blood glucose and insulin levels (after overnight fasting) as the control mice. However, HFD-fed β GC-A KO animals had accelerated glucose intolerance and diminished adaptative β-cell proliferation. Apart from that, the most consistent result of the in vivo studies was the gender dependent difference in the impact of ß-cell GC-A deletion on glucose-stimulated insulin secretion. Female, but not male, ß GC-A KO mice showed enhanced fasted insulin levels and a markedly enhanced glucose-stimulated insulin secretion resulting in a distinctly improved glucose tolerance. The postulated and investigated mechanism involves an interaction of estrogens and NPs affecting expression levels of mitochondrial uncoupling protein 2. This thesis extends the current knowledge of the metabolic actions of the NP/GC-A system. Specifically the results indicate that natriuretic peptides contribute to enhanced ß-cell function and vitality during early stages of increased insulin demand, i.e. in type 2 diabetes. Since the studies show an essential role of these cardiac hormones in the endocrine pancreas, it becomes even more important to further investigate the pleiotropic actions of NPs and their potential therapeutic applications in cardio-metabolic diseases. KW - Guanylylzyklase KW - Atriales natriuretisches Hormon KW - Brain natriuretic Peptide KW - Bauchspeicheldrüse KW - Insulinsekretion KW - Atriales Natriuretisches Peptid KW - B-Typ Natriuretisches Peptid KW - pankreatische ß-Zellen KW - Insulinsekretion KW - GC-A Rezeptor Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-208427 ER - TY - JOUR A1 - Markert, Sebastian Matthias A1 - Britz, Sebastian A1 - Proppert, Sven A1 - Lang, Marietta A1 - Witvliet, Daniel A1 - Mulcahy, Ben A1 - Sauer, Markus A1 - Zhen, Mei A1 - Bessereau, Jean-Louis A1 - Stigloher, Christian T1 - Filling the gap: adding super-resolution to array tomography for correlated ultrastructural and molecular identification of electrical synapses at the C. elegans connectome JF - Neurophotonics N2 - Correlating molecular labeling at the ultrastructural level with high confidence remains challenging. Array tomography (AT) allows for a combination of fluorescence and electron microscopy (EM) to visualize subcellular protein localization on serial EM sections. Here, we describe an application for AT that combines near-native tissue preservation via high-pressure freezing and freeze substitution with super-resolution light microscopy and high-resolution scanning electron microscopy (SEM) analysis on the same section. We established protocols that combine SEM with structured illumination microscopy (SIM) and direct stochastic optical reconstruction microscopy (dSTORM). We devised a method for easy, precise, and unbiased correlation of EM images and super-resolution imaging data using endogenous cellular landmarks and freely available image processing software. We demonstrate that these methods allow us to identify and label gap junctions in Caenorhabditis elegans with precision and confidence, and imaging of even smaller structures is feasible. With the emergence of connectomics, these methods will allow us to fill in the gap-acquiring the correlated ultrastructural and molecular identity of electrical synapses. KW - caenorhabditis elegans KW - localization micoscopy KW - fluorescent-probes KW - junction proteins KW - resolution limit KW - direct stochasticoptical reconstruction microscopy KW - structured illumination microscopy KW - correlative light and electron microscopy KW - gap junction KW - neural circuits KW - nervous-system KW - image data KW - reconstruction KW - innexins KW - super-resolution microscopy Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-187292 VL - 3 IS - 4 ER - TY - JOUR A1 - Scholz, Nicole A1 - Guan, Chonglin A1 - Nieberler, Matthias A1 - Grotmeyer, Alexander A1 - Maiellaro, Isabella A1 - Gao, Shiqiang A1 - Beck, Sebastian A1 - Pawlak, Matthias A1 - Sauer, Markus A1 - Asan, Esther A1 - Rothemund, Sven A1 - Winkler, Jana A1 - Prömel, Simone A1 - Nagel, Georg A1 - Langenhan, Tobias A1 - Kittel, Robert J T1 - Mechano-dependent signaling by Latrophilin/CIRL quenches cAMP in proprioceptive neurons JF - eLife N2 - Adhesion-type G protein-coupled receptors (aGPCRs), a large molecule family with over 30 members in humans, operate in organ development, brain function and govern immunological responses. Correspondingly, this receptor family is linked to a multitude of diverse human diseases. aGPCRs have been suggested to possess mechanosensory properties, though their mechanism of action is fully unknown. Here we show that the Drosophila aGPCR Latrophilin/dCIRL acts in mechanosensory neurons by modulating ionotropic receptor currents, the initiating step of cellular mechanosensation. This process depends on the length of the extended ectodomain and the tethered agonist of the receptor, but not on its autoproteolysis, a characteristic biochemical feature of the aGPCR family. Intracellularly, dCIRL quenches cAMP levels upon mechanical activation thereby specifically increasing the mechanosensitivity of neurons. These results provide direct evidence that the aGPCR dCIRL acts as a molecular sensor and signal transducer that detects and converts mechanical stimuli into a metabotropic response. KW - Latrophilin KW - adhesion GPCR KW - dCIRL KW - sensory physiology KW - metabotropic signalling KW - mechanotransduction Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-170520 VL - 6 IS - e28360 ER - TY - JOUR A1 - Beck, Sebastian A1 - Yu-Strzelczyk, Jing A1 - Pauls, Dennis A1 - Constantin, Oana M. A1 - Gee, Christine E. A1 - Ehmann, Nadine A1 - Kittel, Robert J. A1 - Nagel, Georg A1 - Gao, Shiqiang T1 - Synthetic light-activated ion channels for optogenetic activation and inhibition JF - Frontiers in Neuroscience N2 - Optogenetic manipulation of cells or living organisms became widely used in neuroscience following the introduction of the light-gated ion channel channelrhodopsin-2 (ChR2). ChR2 is a non-selective cation channel, ideally suited to depolarize and evoke action potentials in neurons. However, its calcium (Ca2\(^{2+}\)) permeability and single channel conductance are low and for some applications longer-lasting increases in intracellular Ca\(^{2+}\) might be desirable. Moreover, there is need for an efficient light-gated potassium (K\(^{+}\)) channel that can rapidly inhibit spiking in targeted neurons. Considering the importance of Ca\(^{2+}\) and K\(^{+}\) in cell physiology, light-activated Ca\(^{2+}\)-permeant and K\(^{+}\)-specific channels would be welcome additions to the optogenetic toolbox. Here we describe the engineering of novel light-gated Ca\(^{2+}\)-permeant and K\(^{+}\)-specific channels by fusing a bacterial photoactivated adenylyl cyclase to cyclic nucleotide-gated channels with high permeability for Ca\(^{2+}\) or for K\(^{+}\), respectively. Optimized fusion constructs showed strong light-gated conductance in Xenopus laevis oocytes and in rat hippocampal neurons. These constructs could also be used to control the motility of Drosophila melanogaster larvae, when expressed in motoneurons. Illumination led to body contraction when motoneurons expressed the light-sensitive Ca\(^{2+}\)-permeant channel, and to body extension when expressing the light-sensitive K\(^{+}\) channel, both effectively and reversibly paralyzing the larvae. Further optimization of these constructs will be required for application in adult flies since both constructs led to eclosion failure when expressed in motoneurons. KW - optogenetics KW - calcium KW - potassium KW - bPAC KW - CNG channel KW - cAMP KW - Drosophila melanogaster motoneuron KW - rat hippocampal neurons Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-177520 VL - 12 IS - 643 ER - TY - THES A1 - Grotemeyer, Alexander T1 - Characterisation and application of new optogenetic tools in \(Drosophila\) \(melanogaster\) T1 - Charakterisierung und Anwendung neuer optogenetischer Werkzeuge in \(Drosophila\) \(melanogaster\) N2 - Since Channelrhodopsins has been described first and introduced successfully in freely moving animals (Nagel et al., 2003 and 2005), tremendous impact has been made in this interesting field of neuroscience. Subsequently, many different optogenetic tools have been described and used to address long-lasting scientific issues. Furthermore, beside the ‘classical’ Channelrhodopsin-2 (ChR2), basically a cation-selective ion channel, also altered ChR2 descendants, anion selective channels and light-sensitive metabotropic proteins have expanded the optogenetic toolbox. However, in spite of this variety of different tools most researches still pick Channelrhodopsin-2 for their optogenetic approaches due to its well-known kinetics. In this thesis, an improved Channelrhodopsin, Channelrhodopsin2-XXM (ChR2XXM), is described, which might become an useful tool to provide ambitious neuroscientific approaches by dint of its characteristics. Here, ChR2XXM was chosen to investigate the functional consequences of Drosophila larvae lacking latrophilin in their chordotonal organs. Finally, the functionality of GtACR, was checked at the Drosophila NMJ. For a in-depth characterisation, electrophysiology along with behavioural setups was employed. In detail, ChR2XXM was found to have a better cellular expression pattern, high spatiotemporal precision, substantial increased light sensitivity and improved affinity to its chromophore retinal, as compared to ChR2. Employing ChR2XXM, effects of latrophilin (dCIRL) on signal transmission in the chordotonal organ could be clarified with a minimum of side effects, e.g. possible heat response of the chordotonal organ, due to high light sensitivity. Moreover, optogenetic activation of the chordotonal organ, in vivo, led to behavioural changes. Additionally, GtACR1 was found to be effective to inhibit motoneuronal excitation but is accompanied by unexpected side effects. These results demonstrate that further improvement and research of optogenetic tools is highly valuable and required to enable researchers to choose the best fitting optogenetic tool to address their scientific questions. N2 - Seit dem Channelrhodopsine das erste Mal beschrieben und erfolgreich in lebende Tiere eingebracht wurden (Nagel et al., 2003 und 2005), kam es zu einem beträchtlichen Fortschritt in diesem interessanten Gebiet der Neurowissenschaften. In der nachfolgenden Zeit wurden viele verschiedene optogenetische Werkzeuge beschrieben und zur Bearbeitung neurowissenschaftlicher Fragestellungen angewandt. Des Weiteren haben neben dem „klassischen“ Channelrhodopsin-2 (ChR2), ein im Wesentlichen Kation selektiver Kanal, auch modifizierte ChR2 Abkömmlinge, Anion selektive Kanäle und Licht sensitive metabotrope Proteine, die opotogenetische Werkzeugkiste erweitert. Dennoch greifen die meisten Wissenschaftler trotz der Vielfalt an optogenetischen Werkzeugen meist noch zu Channelrhodopsin-2, da seine Wirkungseigenschaften sehr gut erforscht sind. In der nachfolgenden Arbeit wird ein weiterentwickeltes Channelrhodopsin, Channelrhodopsin2-XXM (ChR2XXM), beschrieben. Aufgrund seiner vielfältigen Eigenschaften stellt es ein vielversprechendes Werkzeug dar, vor allem für zukünftige neurowissenschaftliche Forschungsarbeiten. Hierbei wurde ChR2XXM eingesetzt, um zu untersuchen welche Auswirkungen das Fehlen von Latrophilin im Chordotonal Organ von Drosophilalarven hat. Schließlich wurde noch die Funktionalität von GtACR an der neuromuskulären Endplatte der Drosophila überprüft. Für die umfassende Charakterisierung wurden elektrophysiologische und verhaltensbasierte Experimente an Larven durchgeführt. Es konnte gezeigt werden, dass ChR2XXM aufgrund einer erhöhten Affinität zu dem Chromophore Retinal, im Vergleich zu ChR2 ein besseres zelluläres Expressionsmuster, eine bessere zeitliche Auflösung und eine erheblich höhere Lichtsensitiviät aufweist. Durch den Einsatz von ChR2XXM konnte, aufgrund der hohen Lichtsensitiviät, mit nur minimalen Nebeneffekten, wie z.B. mögliche Wärmeaktivierung des Chordotonalorgans, der Einfluss von Latrophilin (dCIRL) auf die Signaltransmission im Chordotonalorgan, aufgeklärt werden. Ferner führte eine optogenetische, in vivo, Aktivierung des Chordotonalorgans zu Verhaltensänderungen. Zusätzlich konnte gezeigt werden, dass GtACR1 zwar effektiv motoneuronale Erregung inhibieren kann, dies aber von unerwarteten Nebeneffekten begleitet wird. Diese Ergebnisse zeigen auf, dass weitere Forschung und Verbesserungen im Bereich der optogenetischen Werkzeuge sehr wertvoll und notwendig ist, um Wissenschaftlern zu erlauben das am besten geeignetste optogenetische Werkzeug für ihre wissenschaftlichen Fragestellungen auswählen zu können. KW - Optogenetik KW - Taufliege KW - Elektrophysiologie KW - Channelrhodopsin-2 KW - optogenetics KW - Drosophila melanogaster KW - Channelrhodopsin KW - Electrophysiology Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-178793 ER - TY - THES A1 - Hasse, Stephanie T1 - Funktionelle Charakterisierung von Parathormon-Rezeptor Mutanten im Xenopus Oozyten-Expressionssystem T1 - Functional characterisation of parathyroid hormone receptor mutants in the xenopus oocyte expression system N2 - G-Protein gekoppelte Rezeptoren (GPCRs) regulieren eine Vielzahl physiologischer als auch pathophysiologischer Prozesse im menschlichen Körper. Verankert in der Zellmembran vermitteln sie die Transduktion äußerer Stimuli zur Aktivierung nachgeschalteter Signalwege. Durch die Aktivierung Adenylatcyclasen-, Phosphlipasen C- und Mitogen-aktivierte Proteinkinase (MAPK)- abhängiger Signalwege, vermittelt der zur Familie B der GPCRs gehörige Parathormon-Rezeptor PTH1R die endokrine und parakrine Wirkungen des Parathormons (PTH) und des Parathormon-verwandten Proteins (PTHrP). Diese sind die Regulation der Kalzium-Homöostase, des Knochenmetabolismus und der Skelettentwicklung. In dieser Arbeit wurden vier Mutationen im PTH1-Rezeptor untersucht, die durch Roth und Mitarbeiter (2014) in den Zusammenhang mit dem Krankheitsbild der primären Zahndurchbruchsstörung (PFE) gebracht wurden. Die vier untersuchten Mutanten sind PTH1R [P119L], PTH1R [H442D], PTH1R [L232R] und PTH1R [L292P]: Bei den durch Mutagenese herbeigeführten Punktmutationen handelt es sich jeweils um eine missense-Mutation, bei der der Austausch einer einzelnen Base in der DNA-Sequenz zum Einbau einer anderen Aminosäure im Protein führt. Es folgte die funktionelle Charakterisierung des Parathormon-Rezeptors und seiner Mutanten, welche auf einer indirekten Messung der Rezeptoraktivität basierte. Direkt gemessen wurden dabei die Kaliumströme der Tandemporen-Kaliumkanäle TASK-1 und TRESK, welche durch Gq-Protein gekoppelte Rezeptoren reguliert werden können: So werden TASK-Ströme durch GPCRs inhibiert, TRESK-Ströme dagegen aktiviert. TASK-1 Kanäle und Parathormon-Rezeptoren wurden zeitgleich heterolog in Xenopus laevis Oozyten exprimiert und anschließend mittels der Zwei-Elektroden-Spannungsklemme (TEVC) elektrophysiologisch untersucht. Nach Zugabe von PTH (100 nM) ergab sich nach Kopplung an den TASK-1 Kanal für den PTH1R-Wildtyp eine durchschnittliche Stromamplitude von 52,11 % ± 3,60 % (n=28). Dagegen zeigten sich für die PTH1R-Mutanten keine signifikanten Änderungen der Stromamplituden nach Zugabe der PTH-haltigen Messlösung. Die Untersuchungen wurden mit dem TRESK-Kanal wiederholt. Hier zeigte sich eine deutliche TRESK-Aktivierung durch Kopplung an den PTH1R-Wildtyp beim Einwaschen von PTH. Bei den Mutanten kam es ebenfalls nicht zu einer signifikanten Änderung der Stromamplitude durch PTH-Zugabe. Ein Austausch dieser entsprechenden Aminosäuren führt somit zu einem Funktionsverlust des Parathormon-Rezeptors Typ 1. Bei den untersuchten Mutationen handelt es sich daher um Loss-of-function-Mutationen. Diese Ergebnisse lassen den Schluss zu, dass die von Roth und Mitarbeitern in ihrer Pathogenität als „wahrscheinlich schädlich“ eingestuften Mutationen durch die vorliegende Arbeit nun als „pathogen“ und damit PFE-verursachend bezeichnet werden können. Die zahnmedizinische Relevanz dieser Ergebnisse liegt darin begründet, dass durch eine genetisch gesicherte Diagnose PFE, die korrekte und erfolgversprechendste Behandlungsoption gewählt werden kann. Von PFE betroffene Zähne ankylosieren nach Applikation kieferorthopädischer Kräfte und können nicht weiter bewegt werden. Somit kann nach der Diagnose PFE ein individuelles Behandlungskonzept erstellt werden, das sich nach dem Ausmaß der Durchbruchsstörung richtet. Langjährige und frustrierende kieferorthopädische Behandlungen bleiben dem Patienten, aber auch dem Kieferorthopäden erspart. N2 - Functional characterisation of parathyroid hormone receptor mutants in the xenopus oocyte expression system: Heterozygous mutations of the parathyroid hormone receptor (PTH1R) gene are causally linked to primary failure of tooth eruption (PFE). KW - Rezeptor KW - PTH1R KW - PFE Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-178613 ER - TY - JOUR A1 - Jansch, Charline A1 - Günther, Katharina A1 - Waider, Jonas A1 - Ziegler, Georg C. A1 - Forero, Andrea A1 - Kollert, Sina A1 - Svirin, Evgeniy A1 - Pühringer, Dirk A1 - Kwok, Chee Keong A1 - Ullmann, Reinhard A1 - Maierhofer, Anna A1 - Flunkert, Julia A1 - Haaf, Thomas A1 - Edenhofer, Frank A1 - Lesch, Klaus-Peter T1 - Generation of a human induced pluripotent stem cell (iPSC) line from a 51-year-old female with attention-deficit/hyperactivity disorder (ADHD) carrying a duplication of SLC2A3 JF - Stem Cell Research N2 - Fibroblasts were isolated from a skin biopsy of a clinically diagnosed 51-year-old female attention-deficit/hyperactivity disorder (ADHD) patient carrying a duplication of SLC2A3, a gene encoding neuronal glucose transporter-3 (GLUT3). Patient fibroblasts were infected with Sendai virus, a single-stranded RNA virus, to generate transgene-free human induced pluripotent stem cells (iPSCs). SLC2A3-D2-iPSCs showed expression of pluripotency-associated markers, were able to differentiate into cells of the three germ layers in vitro and had a normal female karyotype. This in vitro cellular model can be used to study the role of risk genes in the pathogenesis of ADHD, in a patient-specific manner. KW - ADHD KW - SLC2A3 KW - induced pluripotent stem cells Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-176654 VL - 28 ER - TY - JOUR A1 - Tauscher, Sabine A1 - Nakagawa, Hitoshi A1 - Völker, Katharina A1 - Werner, Franziska A1 - Krebes, Lisa A1 - Potapenko, Tamara A1 - Doose, Sören A1 - Birkenfeld, Andreas L. A1 - Baba, Hideo A. A1 - Kuhn, Michaela T1 - β Cell-specific deletion of guanylyl cyclase A, the receptor for atrial natriuretic peptide, accelerates obesity-induced glucose intolerance in mice JF - Cardiovascular Diabetology N2 - Background: The cardiac hormones atrial (ANP) and B-type natriuretic peptides (BNP) moderate arterial blood pressure and improve energy metabolism as well as insulin sensitivity via their shared cGMP-producing guanylyl cyclase-A (GC-A) receptor. Obesity is associated with impaired NP/GC-A/cGMP signaling, which possibly contributes to the development of type 2 diabetes and its cardiometabolic complications. In vitro, synthetic ANP, via GC-A, stimulates glucose-dependent insulin release from cultured pancreatic islets and β-cell proliferation. However, the relevance for systemic glucose homeostasis in vivo is not known. To dissect whether the endogenous cardiac hormones modulate the secretory function and/or proliferation of β-cells under (patho)physiological conditions in vivo, here we generated a novel genetic mouse model with selective disruption of the GC-A receptor in β-cells. Methods: Mice with a floxed GC-A gene were bred to Rip-CreTG mice, thereby deleting GC-A selectively in β-cells (β GC-A KO). Weight gain, glucose tolerance, insulin sensitivity, and glucose-stimulated insulin secretion were monitored in normal diet (ND)- and high-fat diet (HFD)-fed mice. β-cell size and number were measured by immunofluorescence-based islet morphometry. Results: In vitro, the insulinotropic and proliferative actions of ANP were abolished in islets isolated from β GC-A KO mice. Concordantly, in vivo, infusion of BNP mildly enhanced baseline plasma insulin levels and glucose-induced insulin secretion in control mice. This effect of exogenous BNP was abolished in β GC-A KO mice, corroborating the efficient inactivation of the GC-A receptor in β-cells. Despite this under physiological, ND conditions, fasted and fed insulin levels, glucose-induced insulin secretion, glucose tolerance and β-cell morphology were similar in β GC-A KO mice and control littermates. However, HFD-fed β GC-A KO animals had accelerated glucose intolerance and diminished adaptative β-cell proliferation. Conclusions: Our studies of β GC-A KO mice demonstrate that the cardiac hormones ANP and BNP do not modulate β-cell's growth and secretory functions under physiological, normal dietary conditions. However, endogenous NP/GC-A signaling improves the initial adaptative response of β-cells to HFD-induced obesity. Impaired β-cell NP/GC-A signaling in obese individuals might contribute to the development of type 2 diabetes. KW - cylic GMP KW - guanylyl cyclase-A KW - insulin KW - natriuretic peptides KW - obesity KW - β-cells Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-176322 VL - 17 IS - 103 ER - TY - THES A1 - Aue, Annemarie T1 - Lokalisation und Bedeutung der NO-sensitiven Guanylyl-Cyclase bei der Lungenfibrose in der Maus T1 - Localization and importance of NO-sensitive guanylyl cyclase in a murine model of lung fibrosis N2 - Die im Rahmen dieser Arbeit behandelten Fragestellungen vermitteln neue Kenntnisse über die Pathogenese der Lungenfibrose auf zellulärer Ebene. Bei der Lungenfibrose handelt es sich um eine chronische Erkrankung, die durch eine initiale Inflammation und das Auftreten von Myofibroblasten gekennzeichnet ist. Die Myofibroblasten führen zu einer vermehrten Produktion von EZM, was in einer Zerstörung der Lungenarchitektur, Narbenbildung und folglich einem verminderten Gasaustausch resultiert. Eine modulatorische Rolle von Stickstoffmonoxid (NO) bei der Entwicklung der Lungenfibrose wird vermutet, dennoch sind die Effektorzellen in der Lunge noch nicht bekannt. Daher wurde im ersten Teil dieser Arbeit die Lokalisation des NO-Rezeptors, der NO-sensitiven Guanylyl-Cyclase (NO-GC), in der Lunge untersucht. Dazu wurden Knockout-Mäuse generiert, bei denen die NO-GC global (GCKO) oder Perizyten-spezifisch (PDGFRβ-GCKO, SMMHC-GCKO, NG2-GCKO und SMMHC/NG2-GCKO) deletiert ist. Zudem wurden tdTomato-Reportermäuse verwendet, die das Fluoreszenzprotein unter Kontrolle eines spezifischen Reporters exprimieren (PDGFRβ/tomato, SMMHC/tomato, NG2/tomato, FoxD1/tomato und Tie2/tomato). In der Lunge sind Perizyten der NO-GC-exprimierende Zelltyp. Durch Immunhistochemie konnten zudem zwei verschiedene Subpopulationen von NO-GC-exprimierenden Perizyten identifiziert werden: Eine große Population an SMMHC/PDGFRβ-positiven Perizyten und eine kleine Population an NG2/PDGFRβ-positiven Perizyten. Im zweiten Teil dieser Arbeit wurde die Funktion der NO-GC während der Bleomycin-induzierten Lungenfibrose untersucht. Bleomycin führt zu einer fibrotischen Antwort in allen Genotypen, was durch ein erhöhtes Lungengewicht und einen erhöhten Kollagengehalt deutlich wird. Der Schweregrad der Lungenverletzung ist in NO-GC-defizienten Mäusen größer als in Anwesenheit der NO-GC. Dies deutet auf eine Rolle der NO-GC bei der Bleomycin-induzierten Lungenfibrose hin. Während der Entstehung der Lungenfibrose kommt es zur Bildung von Myofibroblasten, die als die Schlüsselzellen der Wundheilung und fibrotischer Prozesse bezeichnet werden. Diese Zellen kommen unter physiologischen Bedingungen kaum vor und ihre Herkunft ist nach wie vor nicht eindeutig geklärt. Da Perizyten als mögliche Vorläuferzellen betrachtet werden, wurde Lineage Tracing von Perizyten durchgeführt. Erstmals wurden zwei verschiedene Myofibroblasten-Subtypen durch die Expression von NO-GC unterschieden: (1) NO-GC-positive Myofibroblasten, die in der Alveolarwand lokalisiert sind und von Perizyten abstammen und (2) NO-GC-negative Myofibroblasten, die sich innerhalb der Alveolen befinden, deren Ursprung jedoch nicht Perizyten sind. Diese Myofibroblasten zeigen jedoch eine de novo-Synthese von PDGFRβ. Durch Lineage Tracing-Versuche sowie immunhistochemische Analysen können Perizyten, Endothelzellen und Fibrozyten als Vorläuferzellen ausgeschlossen werden. Die Ursprungszelle der intra-alveolären Myofibroblasten ist somit bislang nicht identifiziert. Im letzten Teil der Arbeit wurde die Rolle der an der Lungenfibrose beteiligten Zelltypen näher untersucht. Dazu wurde die Auflösung der reversiblen Bleomycin-induzierten Lungenschäden betrachtet. Der Verlust der beiden Myofibroblasten-Subtypen weist darauf hin, dass sie zwar die Effektorzellen der Wundheilungsreaktion, jedoch nicht an der Entstehung der chronisch manifesten Fibrose beteiligt sind. Perizyten proliferieren in Folge der Gabe von Bleomycin und sind vermehrt im Lungenparenchym auch nach Auflösung der Bleomycin-induzierten Lungenverletzung vorzufinden. Diese Ergebnisse führen zu der Annahme, dass es sich hierbei um die Effektorzellen der chronisch manifesten Lungenfibrose handelt, die durch eine Verdickung der Alveolarwand gekennzeichnet ist. Um die zellulären Mechanismen der Lungenfibrose umfassend aufzuklären, müssen weitere Untersuchungen an irreversiblen Fibrosemodellen folgen, die auch die chronischen Charakteristiken der Erkrankung berücksichtigen. N2 - This project provides new insights into the pathogenesis of pulmonary fibrosis on the cellular level. Pulmonary fibrosis is a chronic disease characterized by signs of inflammation and the appearance of myofibroblasts that are responsible for excessive production of extracellular matrix (ECM). This leads to destroyed lung architecture, scar formation and reduced gas exchange. A modulatory role of nitric oxide (NO) in the development of pulmonary fibrosis has been proposed. However, the effector cells in the lung are remain elusive. The first part of the thesis focused on the localization of NO-sensitive guanylyl cyclase (NO-GC) in lung. Pericytes are the major NO-GC-expressing cell type in lung. Knock-out mice were generated lacking NO-GC globally (GCKO) as well as pericyte-specific GCKO mice (PDGFRβ-GCKO, SMMHC-GCKO, NG2-GCKO und SMMHC/NG2-GCKO). In addition, reporter mice were used that express tdTomato following cre-mediated recombination (PDGFRβ/tomato, SMMHC/tomato, NG2/tomato, FoxD1/tomato und Tie2/tomato). Immunohistochemical analysis shows the existence of two subpopulations of pericytes expressing NO-GC in lung: SMMHC/PDGFRβ-positive pericytes and a smaller subpopulation of NG2/PDGFRβ-positive pericytes. In the second part of the thesis, the role of NO-GC during bleomycin-induced lung injury was investigated. Bleomycin led to a fibrotic response in all genotypes as seen by an increase of lung weight and collagen content. Severity of lung injury in NO-GC-deficient mice was greater compared to wild type (WT) mice following instillation of bleomycin. These results indicate a possible role of NO-GC during bleomycin-induced lung injury. The development of pulmonary fibrosis is characterized by the formation of myofibroblasts that are known to be key players of wound healing and fibrotic processes. These cells do not occur under physiological conditions and their origin is still under debate. Lineage tracing of pericytes showed that NO-GC-expression allows to differentiate interstitial from intra-alveolar myofibroblasts: (1) NO-GC-positive, pericyte-derived myofibroblasts located in the alveolar wall and (2) NO-GC-negative, intra-alveolar myofibroblasts that are not derived from pericytes but, surprisingly, show de novo-expression of PDGFRβ after injury. The precursor cell type of intra-alveolar myofibroblasts is not identified yet. Pericytes, endothelial cells and fibrocytes do not transdifferentiate into myofibroblasts. Investigation of different cell types during resolution of lung fibrosis showed the disappearance of both types of myofibroblast. NO-GC-expressing pericytes that proliferate following administration of bleomycin are still present in an increased number. These results implicate a major role of myofibroblasts during wound healing responses but pericytes could be the effectors of chronic and manifest pulmonary fibrosis that is characterized by thickening of the alveolar wall. For a further understanding of the cellular mechanisms during pulmonary fibrosis investigations on irreversible models of fibrosis need to be performed. KW - Lungenfibrose KW - Guanylatcyclase KW - Myofibroblast KW - Perizyt KW - NO-sensitive Guanylyl-Cyclase KW - Bleomycin KW - Pulmonary fibrosis KW - NO-sensitive guanylyl cyclase KW - myofibroblast KW - pericyte KW - bleomycin Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-176710 ER - TY - JOUR A1 - Ehmann, Nadine A1 - Sauer, Markus A1 - Kittel, Robert J. T1 - Super-resolution microscopy of the synaptic active zone JF - Frontiers in Cellular Neuroscience N2 - Brain function relies on accurate information transfer at chemical synapses. At the presynaptic active zone (AZ) a variety of specialized proteins are assembled to complex architectures, which set the basis for speed, precision and plasticity of synaptic transmission. Calcium channels are pivotal for the initiation of excitation-secretion coupling and, correspondingly, capture a central position at the AZ. Combining quantitative functional studies with modeling approaches has provided predictions of channel properties, numbers and even positions on the nanometer scale. However, elucidating the nanoscopic organization of the surrounding protein network requires direct ultrastructural access. Without this information, knowledge of molecular synaptic structure-function relationships remains incomplete. Recently, super-resolution microscopy (SRM) techniques have begun to enter the neurosciences. These approaches combine high spatial resolution with the molecular specificity of fluorescence microscopy. Here, we discuss how SRM can be used to obtain information on the organization of AZ proteins KW - excitation-secretion coupling KW - Ca\(^{2+}\) channels KW - structure-function relationships KW - super-resolution microscopy KW - active zone KW - presynaptic calcium KW - neurotransmitter release Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-148997 VL - 9 IS - 7 ER - TY - JOUR A1 - Paul, Mila M. A1 - Pauli, Martin A1 - Ehmann, Nadine A1 - Hallermann, Stefan A1 - Sauer, Markus A1 - Kittel, Robert J. A1 - Heckmann, Manfred T1 - Bruchpilot and Synaptotagmin collaborate to drive rapid glutamate release and active zone differentiation JF - Frontiers in Cellular Neuroscience N2 - The active zone (AZ) protein Bruchpilot (Brp) is essential for rapid glutamate release at Drosophila melanogaster neuromuscular junctions (NMJs). Quantal time course and measurements of action potential-waveform suggest that presynaptic fusion mechanisms are altered in brp null mutants (brp\(^{69}\)). This could account for their increased evoked excitatory postsynaptic current (EPSC) delay and rise time (by about 1 ms). To test the mechanism of release protraction at brp\(^{69}\) AZs, we performed knock-down of Synaptotagmin-1 (Syt) via RNAi (syt\(^{KD}\)) in wildtype (wt), brp\(^{69}\) and rab3 null mutants (rab3\(^{rup}\)), where Brp is concentrated at a small number of AZs. At wt and rab3\(^{rup}\) synapses, syt\(^{KD}\) lowered EPSC amplitude while increasing rise time and delay, consistent with the role of Syt as a release sensor. In contrast, syt\(^{KD}\) did not alter EPSC amplitude at brp\(^{69}\) synapses, but shortened delay and rise time. In fact, following syt\(^{KD}\), these kinetic properties were strikingly similar in wt and brp\(^{69}\), which supports the notion that Syt protracts release at brp\(^{69}\) synapses. To gain insight into this surprising role of Syt at brp\(^{69}\) AZs, we analyzed the structural and functional differentiation of synaptic boutons at the NMJ. At tonic type Ib motor neurons, distal boutons contain more AZs, more Brp proteins per AZ and show elevated and accelerated glutamate release compared to proximal boutons. The functional differentiation between proximal and distal boutons is Brp-dependent and reduced after syt\(^{KD}\). Notably, syt\(^{KD}\) boutons are smaller, contain fewer Brp positive AZs and these are of similar number in proximal and distal boutons. In addition, super-resolution imaging via dSTORM revealed that syt\(^{KD}\) increases the number and alters the spatial distribution of Brp molecules at AZs, while the gradient of Brp proteins per AZ is diminished. In summary, these data demonstrate that normal structural and functional differentiation of Drosophila AZs requires concerted action of Brp and Syt. KW - neuromuscular junction KW - Bruchpilot KW - synaptic delay KW - dSTORM KW - synaptotagmin KW - presynaptic differentiation KW - neurotransmitter release KW - active zone KW - synaptic transmission KW - fluorescent probes Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-148988 VL - 9 IS - 29 ER - TY - THES A1 - Zechner, Martin T1 - Quantifizierung morphologischer Veränderungen an Neuronen der lateralen Amygdala in SPRED2-defizienten Mäusen T1 - Quantification of morphological changes on lateral amygdala neurons in SPRED2-deficient mice N2 - In der vorliegenden Dissertation wurden die Folgen einer SPRED2-Defizienz in einem Knockout Mausmodell untersucht. Dabei wurde insbesondere die mögliche Verbindung zur Zwangsstörung, einer psychiatrischen Erkrankung beleuchtet. Das SPRED2-Protein kommt im menschlichen Körper in zahlreichen Geweben vor, besonders im Hirn wurde eine ubiquitäre Expression nachgewiesen und ein Zusammenhang mit der Neurogenese und neuronaler Differenzierung vermutet. Seine regulatorische Funktion besteht in einer inhibitorischen Wirkung auf den BDNF/TrkB-ERK-Signalweg, welcher u.a. für die Transkription neuronaler Gene verantwortlich ist. Die verwendeten SPRED2-defizienten Mäuse wurden durch Insertion eines Gene-Trap Vektors in das Spred2-Gen generiert. Die Insertion verhindert letztendlich die korrekte Translation des Proteins. Von der durch weitere Verpaarung entstehenden SPRED2-Knockout Mauslinie wurden ausschließlich männliche Tiere verwendet. Im Rahmen einer SPRED2-KO-Studie von der AG Schuh des Physiologischen Instituts der Universität Würzburg, die u.a. die Entgleisung der HHNA mit resultierendem erhöhten Stresshormonspiegel und eine Dysregulation des Mineralhaushaltshormons Aldosteron zeigte, wurden bei den Versuchstieren zwanghafte Verhaltensmuster beobachtet. Daraufhin wurden elektrophysiologische Messungen durchgeführt, die auf eine Anomalie in der synaptischen Übertragung zwischen Thalamus und Amygdala hindeuteten. Erhöhte Effizienz und Erregbarkeit der amygdaloiden Neuronen führten zu der morphologischen Untersuchung, die im Rahmen dieser Arbeit durchgeführt wurden. Da die Afferenzen des Thalamus vorwiegend in den lateralen Kern der Amygdala projizieren, wurde zunächst dieser betrachtet. Ziel der Untersuchung war es, Erkenntnisse darüber zu erlangen, ob der Knockout des SPRED2-Proteins in Mäusen zu einer veränderten Morphologie der Neuronen der lateralen Amygdala führt. Falls dies der Fall sein sollte, könnte damit zumindest ansatzweise das zwanghafte Verhalten der SPRED2-defizienten Mäusen erklärt werden. Die Hirne der Versuchstiere wurden nach der Golgi-Cox-Imprägnierung nach Glaser und Van der Loos und der Einbettung in Celloidin in 150 μm dicke Scheiben geschnitten und anschließend mithilfe eines Hellfeld-Mikroskops und des Neurolucida-Systems analysiert. Quantitativ erfasst und analysiert wurden pyramidale Klasse 1-Neuronen der lateralen Amygdala inklusive absoluter Anzahl und Dichte der Spines an ihren Dendriten. Die Untersuchung zeigte bei SPRED2-KO-Mäusen eine signifikante Erhöhung der mittleren Länge des apikalen Dendriten in Branch order 3 und eine tendenzielle Erhöhung der Gesamtzahl der Spines an den Dendriten in Branch order 1-3 gegenüber den Wildtyp-Mäusen. Daraus lässt sich folgern, dass ein Knockout des SPRED2-Proteins sich auf die Morphologie der Neuronen der lateralen Amygdala auswirkt. Die erhöhte mittlere Länge des apikalen Dendriten in Branch order 3 und die tendenziell erhöhte Spine-Anzahl korrelieren mit der gesteigerten synaptischen Übertragung und Erregbarkeit an amygdaloiden pyramidalen Neuronen. Auf molekularer Ebene kann die Hyperaktivität der lateralen Amygdala als Folge der fehlenden Inhibition des BDNF/TrkB-ERK-Signalwegs und der dadurch veränderten Expression zahlreicher synaptischer Proteine diskutiert werden. Die veränderte Morphologie der Neuronen in der lateralen Amygdala kann eine Ursache für das zwanghafte Verhalten der Mäuse sein, jedoch ist anzunehmen, dass Zwangsstörungen nicht bloß eine monokausale Ursache haben. Diese Arbeit identifiziert SPRED2 als neuen Regulator der Morphologie und Aktivität von Synapsen und die Amygdala als wichtige Hirnregion bei der Entstehung von Zwangsstörungen. SPRED2 ist somit ein vielversprechender Angriffspunkt für andere und spezifischere Untersuchungen der Hirnfunktion und eine potenzielle genetische Ursache für weitere neurologische Erkrankungen. N2 - In this present dissertation, the consequences of SPRED2-deficiency in a knockout mouse model have been investigated. In particular, the possible connection to the obsessive-compulsive disorder was examined. The SPRED2 protein is found in many tissues in the human body. Especially in the brain, ubiquitous expression was found and a connection to neurogenesis and neuronal differentiation was suspected. Its regulatory function is an inhibitory effect to the BDNF/TrkB-ERK signaling pathway, which amongst others is responsible for the transcription of neuronal genes. The SPRED2-deficient mice used were generated by insertion of a gene trap vector into the Spred2 gene. The insertion ultimately prevents the correct translation of the protein. From the SPRED2 knockout mouse line only male animals were used. As part of a SPRED2-KO study by AG Schuh of the Physiological Institute of the University of Würzburg, which showed, inter alia, the derailment of HHNA resulting in increased stress hormone levels and a dysregulation of the mineral household hormone aldosterone, obsessive behaviors were observed in the experimental animals. Subsequently, electrophysiological measurements were performed indicating an abnormality in synaptic transmission between thalamus and amygdala. Increased efficiency and excitability of the amygdaloid neurons led to the morphological investigation, which were accomplished in the context of this work. Since the afferents of the thalamus predominantly project into the lateral nucleus of the amygdala, it was first considered. The aim of the study was to find out if the knockout of the SPRED2 protein in mice leads to an altered morphology of neurons of the lateral amygdala. If so, it could at least somewhat explain the compulsive behavior of SPRED2-deficient mice. The brains of the test animals were cut into 150 μm slices and, after Golgi-Cox impregnation according to Glaser and Van der Loos, embedded in celloidin and then analyzed using a bright field microscope and the Neurolucida system. Quantitatively, pyramidal class 1 neurons of the lateral amygdala were recorded and analyzed, including the absolute number and density of the spines at their dendrites. The study showed a significant increase in the mean length of the apical dendrites in branch order 3 in SPRED2-KO mice and a tendency to increase the total number of spines on the dendrites in branch order 1-3 compared to the wild-type mice. It can be concluded that a knockout of the SPRED2 protein affects the morphology of the neurons of the lateral amygdala. The increased mean length of the apical dendrites in branch order 3 and the tendency to increased spine counts correlate with the increased synaptic transmission and excitability of amygdaloid pyramidal neurons. At the molecular level, the hyperactivity of the lateral amygdala may be discussed as a consequence of the lack of inhibition of the BDNF/TrkB-ERK pathway and the resulting altered expression of numerous synaptic proteins. The altered morphology of the neurons in the lateral amygdala may be a cause of the compulsive behavior of the mice, but it can be assumed that obsessive-compulsive disorder does not merely have a monocausal cause. This work identifies SPRED2 as a new regulator of morphology and activity of synapses and the amygdala as an important brain region in the development of obsessive-compulsive disorder. SPRED2 is thus a promising target for other and more specific studies of brain function and a potential genetic cause for other neurological disorders. KW - SPRED2 KW - OCD KW - Amygdala KW - SPRED2-defiziente Mäuse KW - Zwangsstörung KW - Ras-Raf-Signalweg Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-172291 ER - TY - JOUR A1 - Scholz, Nicole A1 - Gehring, Jennifer A1 - Guan, Chonglin A1 - Ljaschenko, Dmitrij A1 - Fischer, Robin A1 - Lakshmanan, Vetrivel A1 - Kittel, Robert J. A1 - Langenhan, Tobias T1 - The adhesion GPCR Latrophilin/CIRL shapes mechanosensation JF - Cell Reports N2 - G-protein-coupled receptors (GPCRs) are typically regarded as chemosensors that control cellular states in response to soluble extracellular cues. However, the modality of stimuli recognized through adhesion GPCR (aGPCR), the second largest class of the GPCR superfamily, is unresolved. Our study characterizes the Drosophila aGPCR Latrophilin/dCirl, a prototype member of this enigmatic receptor class. We show that dCirl shapes the perception of tactile, proprioceptive, and auditory stimuli through chordotonal neurons, the principal mechanosensors of Drosophila. dCirl sensitizes these neurons for the detection of mechanical stimulation by amplifying their input-output function. Our results indicate that aGPCR may generally process and modulate the perception of mechanical signals, linking these important stimuli to the sensory canon of the GPCR superfamily. KW - \(\alpha\)-latrotoxin KW - chordotonal organs KW - Johnstons organ KW - ligand CD55 KW - hearing KW - binding KW - shear stress KW - protein-coupled receptors KW - drosophila larvae KW - domain Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-148626 VL - 11 ER -