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Angiogenesis, the formation of new blood vessels from existing ones, is a fundamental biological process required for embryonic development; it also plays an important role during postnatal organ development and various physiological and pathological remodeling processes in the adult organism. Vascular endothelial growth factor (VEGF) and its main receptor, VEGF receptor-2 (VEGFR-2), play a central role in angiogenesis. VEGFR-2 expression is strongly upregulated in angiogenic vessels, but the mechanisms regulating VEGFR-2 expression are not well understood. We found in this study that the G-protein α subunit Gα13 plays an important role in the regulation of VEGFR-2 expression. In vitro, we found that knockdown of Gα13 reduced VEGFR-2 expression in human umbilical vein endothelial cells and impaired responsiveness to VEGF-A. This phenotype was rescued by adenoviral normalization of VEGFR-2 expression. Gα13-dependent VEGFR-2 expression involved activation of the small GTPase RhoA and transcription factor NF-κB; it was abrogated by deletion of the NF-κB binding site at position -84 of the VEGFR-2 promoter. In vivo, endothelial cell-specific loss of Gα13 resulted in reduced VEGFR-2 expression, impaired responsiveness towards VEGF-A in Matrigel assays, and reduced retinal angiogenesis. Importantly, also tumor vascularization was diminished in the absence of endothelial Gα13, resulting in reduced tumor growth. Taken together, we identified Gα13-dependent NF-κB activation as a new pathway underlying the transcriptional regulation of VEGFR-2 during retinal and tumor angiogenesis.
Background: Serotonin plays a pivotal role in regulating and modulating physiological and behavioral processes in both vertebrates and invertebrates. In the honeybee (Apis mellifera), serotonin has been implicated in division of labor, visual processing, and learning processes. Here, we present the cloning, heterologous expression, and detailed functional and pharmacological characterization of two honeybee 5-HT2 receptors.
Methods: Honeybee 5-HT2 receptor cDNAs were amplified from brain cDNA. Recombinant cell lines were established constitutively expressing receptor variants. Pharmacological properties of the receptors were investigated by Ca2+ imaging experiments. Quantitative PCR was applied to explore the expression patterns of receptor mRNAs.
Results: The honeybee 5-HT2 receptor class consists of two subtypes, Am5-HT2α and Am5-HT2β. Each receptor gene also gives rise to alternatively spliced mRNAs that possibly code for truncated receptors. Only activation of the full-length receptors with serotonin caused an increase in the intracellular Ca2+ concentration. The effect was mimicked by the agonists 5-methoxytryptamine and 8-OH-DPAT at low micromolar concentrations. Receptor activities were blocked by established 5-HT receptor antagonists such as clozapine, methiothepin, or mianserin. High transcript numbers were detected in exocrine glands suggesting that 5-HT2 receptors participate in secretory processes in the honeybee.
Conclusions: This study marks the first molecular and pharmacological characterization of two 5-HT2 receptor subtypes in the same insect species. The results presented should facilitate further attempts to unravel central and peripheral effects of serotonin mediated by these receptors.
Die im Mittelhirn lokalisierten dopaminergen (DA) Neurone sind in einer Vielzahl von Hirnfunktionen involviert und werden aufgrund von anatomischen, molekularen sowie funktionellen Unterschieden in mehrere Subpopulationen aufgeteilt. DA Neurone, die in der Substantia nigra (SN) pars compacta lokalisiert sind, spielen durch ihre Projektion in das dorsale Striatum eine Rolle in der Steuerung der Willkürmotorik. Die Area tegmentalis ventralis (VTA) enthält DA Neurone, die in den präfrontalen Cortex, die basolateralen Amygdala sowie den Nucleus accumbens projizieren und in höheren kognitiven Funktionen, wie dem Arbeitsgedächtnis, der Motivation sowie belohnungsassoziierten Lernvorgängen involviert sind.
In dieser Arbeit wurden die differentiellen Eigenschaften des transienten A-Typ Kaliumstroms sowie dessen Funktion für die intrinsische elektrische Aktivität und die Integration von synaptischen Eingängen in Subpopulationen von DA Neuronen untersucht. Dieser spannungsgesteuerte Strom ist an der Kontrolle der Schrittmacheraktivität beteiligt, beeinflusst die Form und Dauer von Aktionspotentialen und moduliert die Erregbarkeit des somatodendritischen Kompartiments. Der A-Typ Kaliumkanal besteht in DA Neuronen aus einem Tetramer von porenbildenden KV4.3 α-Untereinheiten. Die Koexpression von akzessorischen β-Untereinheiten moduliert maßgeblich die biophysikalischen Parameter des A-Stroms, wie z. B. die Kinetik der Inaktivierung sowie die Spannungsabhängigkeit der Aktivierung und Inaktivierung. Zu diesen β-Untereinheiten gehören die cytoplasmatischen Kaliumkanal-interagierenden Proteine (KChIPs) sowie die transmembranären Dipeptidylpeptidase-ähnlichen Proteine (DPPLs). Während in DA SN Neuronen vor allem KChIP3 exprimiert wird und einen schnell inaktivierenden A-Strom gewährleistet, sind DA VTA Neurone durch die zusätzliche Expression der KChIP4a Splice-Variante charakterisiert, welche durch Inhibition der schnellen Inaktivierung in einem langsam inaktivierenden A-Strom resultiert. Die Bedeutung der differentiellen KChIP4a-Expression für DA Mittelhirnneurone wurde mit Hilfe von KChIP4-Knock-Out (KO)-Mäusen untersucht. Alle Versuche wurden in vitro an akuten Hirnschnitten adulter Wildtyp (WT)- und KChIP4-KO-Tiere durchgeführt und die DA neurochemische Identität sowie die Lage der gemessenen Zellen im Anschluss immunhistochemisch bestätigt. Die biophysikalischen Eigenschaften des A-Stroms wurden mit der Patch-Clamp Technik in der nucleated outside-out Konfiguration untersucht, welche optimale Bedingungen für Voltage-Clamp Experimente gewährleistet. Der A-Strom in DA VTA Neuronen aus KChIP4-KO-Tieren wies dabei eine siebenfach schnellere Inaktivierungskinetik als in vergleichbaren Neuronen aus WT-Tieren auf, während die Inaktivierungskinetik in DA SN Neuronen aus KChIP4-KO-Tieren lediglich um den Faktor zwei schneller war. Außerdem wurde festgestellt, dass selektiv in DA VTA Neuronen das halbmaximale Aktivierungspotential ebenfalls von der KChIP4-Expression abhängig war. Somit konnte gezeigt werden, dass die Expression von KChIP4 für die charakteristischen A-Strom-Eigenschaften von DA VTA Neuronen verantwortlich ist.
Die funktionelle Rolle des KChIP4-vermittelten langsamen A-Stroms wurde mit Hilfe von Current-Clamp Messungen in Ganzzellableitungen untersucht. Dabei wurde deutlich, dass die Expression von KChIP4 die Spontanaktivität von DA SN und VTA Neuronen nicht beeinflusst. Das für DA VTA Neuronen charakteristische verzögerte Wiedereintreten der Spontanaktivität nach einer Inhibition zeigte allerdings eine Abhängigkeit von der KChIP4-Expression, da der sog. rebound delay in DA VTA Neuronen aus KChIP4-KO-Tieren signifikant kürzer war, als in Zellen aus WT-Tieren. Dies konnte sowohl durch Strominjektionen, die in ihrer Kinetik GABAergen synaptischen Eingängen ähnelten, als auch nach direkter Aktivierung von GABA-Rezeptoren durch iontophoretische GABA-Applikation bestätigt werden. KChIP4 könnte somit einen internen Verzögerungsmechanismus nach einer transienten Inhibition von DA Neuronen gewährleisten, die z.B. bei Präsentation von aversiven Stimuli sowie beim Ausbleiben von erwarteten Belohnungen auftritt. Somit könnte die physiologische Relevanz des KChIP4-gesteuerten A-Stroms in der Integration von inhibitorischen synaptischen Eingängen im Kontext von belohnungsgesteuerten Lernprozessen liegen.
We report here the effects of temperature on the p1 neuromuscular system of the stomatogastric system of the lobster (Panulirus interruptus). Muscle force generation, in response to both the spontaneously rhythmic in vitro pyloric network neural activity and direct, controlled motor nerve stimulation, dramatically decreased as temperature increased, sufficiently that stomach movements would very unlikely be maintained at warm temperatures. However, animals fed in warm tanks showed statistically identical food digestion to those in cold tanks. Applying dopamine, a circulating hormone in crustacea, increased muscle force production at all temperatures and abolished neuromuscular system temperature dependence. Modulation may thus exist not only to increase the diversity of produced behaviors, but also to maintain individual behaviors when environmental conditions (such as temperature) vary.
Introduction: Gastropoda are guided by several sensory organs in the head region, referred to as cephalic sensory organs (CSOs). These CSOs are innervated by distinct nerves. This study proposes a unified terminology for the cerebral nerves and the categories of CSOs and then investigates the neuroanatomy and cellular innervation patterns of these cerebral nerves, in order to homologise them. The homologisation of the cerebral nerves in conjunction with other data, e.g. ontogenetic development or functional morphology, may then provide insights into the homology of the CSOs themselves.
Results: Nickel-lysine axonal tracing (“backfilling”) was used to stain the somata projecting into specific nerves in representatives of opisthobranch Gastropoda. Tracing patterns revealed the occurrence, size and relative position of somata and their axons and enabled these somata to be mapped to specific cell clusters. Assignment of cells to clusters followed a conservative approach based primarily on relative location of the cells. Each of the four investigated cerebral nerves could be uniquely identified due to a characteristic set of soma clusters projecting into the respective nerves via their axonal pathways.
Conclusions: As the described tracing patterns are highly conserved morphological characters, they can be used to homologise nerves within the investigated group of gastropods. The combination of adequate number of replicates and a comparative approach allows us to provide preliminary hypotheses on homologies for the cerebral nerves. Based on the hypotheses regarding cerebral nerve homology together with further data on ultrastructure and immunohistochemistry of CSOs published elsewhere, we can propose preliminary hypotheses regarding homology for the CSOs of the Opisthobranchia themselves.
Gene homologs of GlnK PII regulators and AmtB-type ammonium transporters are often paired on prokaryotic genomes, suggesting these proteins share an ancient functional relationship. Here, we demonstrate for the first time in Archaea that GlnK associates with AmtB in membrane fractions after ammonium shock, thus, providing a further insight into GlnK-AmtB as an ancient nitrogen sensor pair. For this work, Haloferax mediterranei was advanced for study through the generation of a pyrE2-based counterselection system that was used for targeted gene deletion and expression of Flag-tagged proteins from their native promoters. AmtB1-Flag was detected in membrane fractions of cells grown on nitrate and was found to coimmunoprecipitate with GlnK after ammonium shock. Thus, in analogy to bacteria, the archaeal GlnK PII may block the AmtB1 ammonium transporter under nitrogen-rich conditions. In addition to this regulated protein–protein interaction, the archaeal amtB-glnK gene pairs were found to be highly regulated by nitrogen availability with transcript levels high under conditions of nitrogen limitation and low during nitrogen excess. While transcript levels of glnK-amtB are similarly regulated by nitrogen availability in bacteria, transcriptional regulators of the bacterial glnK promoter including activation by the two-component signal transduction proteins NtrC (GlnG, NRI) and NtrB (GlnL, NRII) and sigma factor σN (σ54) are not conserved in archaea suggesting a novel mechanism of transcriptional control.
Protein quality control systems (PQC), i.e. UPS and aggresome-autophagy pathway, have been suggested to be a promising target in cancer therapy. Simultaneous pharmacological inhibition of both pathways have shown increase efficacy in various tumors, such as ovarian and colon carcinoma. Here, we investigate the effect of concomitant inhibition of 26S proteasome by FDA-approved inhibitor Bortezomib, and HDAC6, as key mediator of the aggresome-autophagy system, by the highly specific inhibitor ST80 in rhabdomyosarcoma (RMS) cell lines. We demonstrated that simultaneous inhibition of 26S proteasome and selective aggresome-autophagy pathway significantly increases apoptosis in all tested RMS cell lines. Interestingly, we observed that a subpopulation of RMS cells was able to survive the co-treatment and, upon drug removal, to recover similarly to untreated cells. In this study, we identified co-chaperone BAG3 as the key mediator of this recovery: BAG3 is transcriptionally up-regulated specifically in the ST80/Bortezomib surviving cells and mediates clearance of cytotoxic protein aggregates by selective autophagy. Impairment of the autophagic pathway during the recovery phase, both by conditional knock-down of ATG7 or by inhibition of lysosomal degradation by BafylomicinA1, triggers accumulation of insoluble protein aggregates, loss of cell recovery and cell death similarly to stable short harpin RNA (shRNA) BAG3 knock-down. Our results are the first demonstration that BAG3 mediated selective autophagy is engaged to cope with proteotoxicity induced by simultaneous inhibition of constitutive PQC systems in cancer cell lines during cell recovery. Moreover, our data give new insights in the regulation of constitutive and on demand PQC mechanisms pointing to BAG3 as a promising target in RMS therapy.
Ribosome biogenesis is well described in Saccharomyces cerevisiae. In contrast only very little information is available on this pathway in plants. This study presents the characterization of five putative protein co-factors of ribosome biogenesis in Arabidopsis thaliana, namely Rrp5, Pwp2, Nob1, Enp1 and Noc4. The characterization of the proteins in respect to localization, enzymatic activity and association with pre-ribosomal complexes is shown. Additionally, analyses of T-DNA insertion mutants aimed to reveal an involvement of the plant co-factors in ribosome biogenesis. The investigated proteins localize mainly to the nucleolus or the nucleus, and atEnp1 and atNob1 co-migrate with 40S pre-ribosomal complexes. The analysis of T-DNA insertion lines revealed that all proteins are essential in Arabidopsis thaliana and mutant plants show alterations of rRNA intermediate abundance already in the heterozygous state. The most significant alteration was observed in the NOB1 T-DNA insertion line where the P-A3 fragment, a 23S-like rRNA precursor, accumulated. The transmission of the T-DNA through the male and female gametophyte was strongly inhibited indicating a high importance of ribosome co-factor genes in the haploid stages of plant development. Additionally impaired embryogenesis was observed in some mutant plant lines. All results support an involvement of the analyzed proteins in ribosome biogenesis but differences in rRNA processing, gametophyte and embryo development suggested an alternative regulation in plants.
Die Kirschen in Nachbars Garten sind vermeintlich süßer – und Männer mit festen Partnerinnen für andere Frauen oft attraktiver. Ehering-Effekt nennen das die Psychologen. Dahinter steckt ein uraltes Gesetz der Biologie. Vereinfacht ausgedrückt: Nicht alle guten Männer sind vergeben, doch diejenigen Männer, die vergeben sind, sind gut. Ähnlich ist es auch im Tierreich: So haben Forscher der Goethe-Universität herausgefunden, dass bei Fischen, genauer bei Atlantikkärpflingen, die Weibchen Partner bevorzugen, die zuvor bereits mit anderen Partnern zusammen waren. Interessant ist allerdings, dass es den Weibchen egal war, ob der Partner vorher hetero- oder homosexuelles Verhalten gezeigt hatte. Bei den Fischen ist sexuelle Aktivität an sich offenbar ein Qualitätsmerkmal, das gesunde von kranken und unterernährten Partnern unterscheidet. Bisexualität erhöht also den Fortpflanzungserfolg.
Epigenetic dysregulation contributes to the high cardiovascular disease burden in chronic kidney disease (CKD) patients. Although microRNAs (miRNAs) are central epigenetic regulators, which substantially affect the development and progression of cardiovascular disease (CVD), no data on miRNA dysregulation in CKD-associated CVD are available until now. We now performed high-throughput miRNA sequencing of peripheral blood mononuclear cells from ten clinically stable hemodialysis (HD) patients and ten healthy controls, which allowed us to identify 182 differentially expressed miRNAs (e.g., miR-21, miR-26b, miR-146b, miR-155). To test biological relevance, we aimed to connect miRNA dysregulation to differential gene expression. Genome-wide gene expression profiling by MACE (Massive Analysis of cDNA Ends) identified 80 genes to be differentially expressed between HD patients and controls, which could be linked to cardiovascular disease (e.g., KLF6, DUSP6, KLF4), to infection / immune disease (e.g., ZFP36, SOCS3, JUND), and to distinct proatherogenic pathways such as the Toll-like receptor signaling pathway (e.g., IL1B, MYD88, TICAM2), the MAPK signaling pathway (e.g., DUSP1, FOS, HSPA1A), and the chemokine signaling pathway (e.g., RHOA, PAK1, CXCL5). Formal interaction network analysis proved biological relevance of miRNA dysregulation, as 68 differentially expressed miRNAs could be connected to 47 reciprocally expressed target genes. Our study is the first comprehensive miRNA analysis in CKD that links dysregulated miRNA expression with differential expression of genes connected to inflammation and CVD. After recent animal data suggested that targeting miRNAs is beneficial in experimental CVD, our data may now spur further research in the field of CKD-associated human CVD.