Institut für Anatomie und Zellbiologie
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- Adherens-Junction (1)
- DAMGO (1)
- Dexamethason (1)
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- Klinik und Poliklinik für Anästhesiologie (ab 2004) (7) (remove)
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- 241778 (1)
Early treatment with glucocorticoids could help reduce both cytotoxic and vasogenic edema, leading to improved clinical outcome after stroke. In our previous study, isosteviol sodium (STVNA) demonstrated neuroprotective effects in an in vitro stroke model, which utilizes oxygen-glucose deprivation (OGD). Herein, we tested the hypothesis that STVNA can activate glucocorticoid receptor (GR) transcriptional activity in brain microvascular endothelial cells (BMECs) as previously published for T cells. STVNA exhibited no effects on transcriptional activation of the glucocorticoid receptor, contrary to previous reports in Jurkat cells. However, similar to dexamethasone, STVNA inhibited inflammatory marker IL-6 as well as granulocyte-macrophage colony-stimulating factor (GM-CSF) secretion. Based on these results, STVNA proves to be beneficial as a possible prevention and treatment modality for brain ischemia-reperfusion injury-induced blood–brain barrier (BBB) dysfunction.
Diabetes mellitus is a common disease affecting more than 537 million adults worldwide. The microvascular complications that occur during the course of the disease are widespread and affect a variety of organ systems in the body. Diabetic retinopathy is one of the most common long-term complications, which include, amongst others, endothelial dysfunction, and thus, alterations in the blood-retinal barrier (BRB). This particularly restrictive physiological barrier is important for maintaining the neuroretina as a privileged site in the body by controlling the inflow and outflow of fluid, nutrients, metabolic end products, ions, and proteins. In addition, people with diabetic retinopathy (DR) have been shown to be at increased risk for systemic vascular complications, including subclinical and clinical stroke, coronary heart disease, heart failure, and nephropathy. DR is, therefore, considered an independent predictor of heart failure. In the present review, the effects of diabetes on the retina, heart, and kidneys are described. In addition, a putative common microRNA signature in diabetic retinopathy, nephropathy, and heart failure is discussed, which may be used in the future as a biomarker to better monitor disease progression. Finally, the use of miRNA, targeted neurotrophin delivery, and nanoparticles as novel therapeutic strategies is highlighted.
Protocadherins (PCDHs) belong to the cadherin superfamily and represent the largest subgroup of calcium-dependent adhesion molecules. In the genome, most PCDHs are arranged in three clusters, α, β, and γ on chromosome 5q31. PCDHs are highly expressed in the central nervous system (CNS). Several PCDHs have tumor suppressor functions, but their individual role in primary brain tumors has not yet been elucidated. Here, we examined the mRNA expression of PCDHGC3, a member of the PCDHγ cluster, in non-cancerous brain tissue and in gliomas of different World Health Organization (WHO) grades and correlated it with the clinical data of the patients. We generated a PCDHGC3 knockout U343 cell line and examined its growth rate and migration in a wound healing assay. We showed that PCDHGC3 mRNA and protein were significantly overexpressed in glioma tissue compared to a non-cancerous brain specimen. This could be confirmed in glioma cell lines. High PCDHGC3 mRNA expression correlated with longer progression-free survival (PFS) in glioma patients. PCDHGC3 knockout in U343 resulted in a slower growth rate but a significantly faster migration rate in the wound healing assay and decreased the expression of several genes involved in WNT signaling. PCDHGC3 expression should therefore be further investigated as a PFS-marker in gliomas. However, more studies are needed to elucidate the molecular mechanisms underlying the PCDHGC3 effects.
Takotsubo syndrome (TTS), also known as the transient left ventricular apical ballooning syndrome, is in contemporary times known as novel acute cardiac syndrome. It is characterized by transient left ventricular apical akinesis and hyperkinesis of the basal left ventricular portions. Although the precise etiology of TTS is unknown, events like the sudden release of stress hormones, such as the catecholamines and the increased inflammatory status might be plausible causes leading to the cardiovascular pathologies. Recent studies have highlighted that an imbalance in lipid accumulation might promote a deviant immune response as observed in TTS. However, there is no information on comprehensive profiling of serum lipids of TTS patients. Therefore, we investigated a detailed quantitative lipid analysis of TTS patients using ES-MSI. Our results showed significant differences in the majority of lipid species composition in the TTS patients compared to the control group. Furthermore, the computational analyses presented was able to link the altered lipids to the pro-inflammatory cytokines and disseminate possible mechanistic pathways involving TNFα and IL-6. Taken together, our study provides an extensive quantitative lipidome of TTS patients, which may provide a valuable Pre-diagnostic tool. This would facilitate the elucidation of the underlying mechanisms of the disease and to prevent the development of TTS in the future.
Functional and structural characterization of axonal opioid receptors as targets for analgesia
(2016)
Background
Opioids are the gold standard for the treatment of acute pain despite serious side effects in the central and enteric nervous system. µ-opioid receptors (MOPs) are expressed and functional at the terminals of sensory axons, when activated by exogenous or endogenous ligands. However, the presence and function of MOP along nociceptive axons remains controversial particularly in naïve animals. Here, we characterized axonal MOPs by immunofluorescence, ultrastructural, and functional analyses. Furthermore, we evaluated hypertonic saline as a possible enhancer of opioid receptor function.
Results
Comparative immunolabeling showed that, among several tested antibodies, which all provided specific MOP detection in the rat central nervous system (CNS), only one monoclonal MOP-antibody yielded specificity and reproducibility for MOP detection in the rat peripheral nervous system including the sciatic nerve. Double immunolabeling documented that MOP immunoreactivity was confined to calcitonin gene-related peptide (CGRP) positive fibers and fiber bundles. Almost identical labeling and double labeling patterns were found using mcherry-immunolabeling on sciatic nerves of mice producing a MOP-mcherry fusion protein (MOP-mcherry knock-in mice). Preembedding immunogold electron microscopy on MOP-mcherry knock-in sciatic nerves indicated presence of MOP in cytoplasm and at membranes of unmyelinated axons. Application of [D-Ala\(^2\), N-MePhe\(^4\), Gly-ol]-enkephalin (DAMGO) or fentanyl dose-dependently inhibited depolarization-induced CGRP release from rat sciatic nerve axons ex vivo, which was blocked by naloxone. When the lipophilic opioid fentanyl was applied perisciatically in naïve Wistar rats, mechanical nociceptive thresholds increased. Subthreshold doses of fentanyl or the hydrophilic opioid DAMGO were only effective if injected together with hypertonic saline. In vitro, using β-arrestin-2/MOP double-transfected human embryonic kidney cells, DAMGO as well as fentanyl lead to a recruitment of β-arrestin-2 to the membrane followed by a β-arrestin-2 reappearance in the cytosol and MOP internalization. Pretreatment with hypertonic saline prevented MOP internalization.
Conclusion
MOPs are present and functional in the axonal membrane from naïve animals. Hypertonic saline acutely decreases ligand-induced internalization of MOP and thereby might improve MOP function. Further studies should explore potential clinical applications of opioids together with enhancers for regional analgesia.
During stroke the blood–brain barrier (BBB) is damaged which can result in vasogenic brain edema and inflammation. The reduced blood supply leads to decreased delivery of oxygen and glucose to affected areas of the brain. Oxygen and glucose deprivation (OGD) can cause upregulation of glucose uptake of brain endothelial cells. In this letter, we investigated the influence of MK801, a non-competitive inhibitor of the NMDA-receptor, on the regulation of the glucose uptake and of the main glucose transporters glut1 and sglt1 in murine BBB cell line cerebEND during OGD. mRNA expression of glut1 was upregulated 68.7- fold after 6 h OGD, which was significantly reduced by 10 μM MK801 to 28.9-fold. Sglt1 mRNA expression decreased during OGD which was further reduced by MK801. Glucose uptake was significantly increased up to 907% after 6 h OGD and was still higher (210%) after the 20 h reoxygenation phase compared to normoxia. Ten micromolar MK801 during OGD was able to reduce upregulated glucose uptake after OGD and reoxygenation significantly. Presence of several NMDAR subunits was proven on the mRNA level in cerebEND cells. Furthermore, it was shown that NMDAR subunit NR1 was upregulated during OGD and that this was inhibitable by MK801. In conclusion, the addition of MK801 during the OGD phase reduced significantly the glucose uptake after the subsequent reoxygenation phase in brain endothelial cells.
Die Integrität der Blut-Hirn-Schranke (BHS) ist bei vielen Erkrankungen des humanen zentralen Nervensystems (ZNS) beeinträchtigt. Unter verschiedenen neuroinflammatorischen Bedingungen, wie bei zerebralen Ischämien, Traumata, Hirntumoren oder der Multiplen Sklerose (MS), kommt es zum Verlust der protektiven Schrankenfunktion. Zu den ersten Anzeichen des BHS-Zusammenbruchs zählt der Verlust der Zell-Zell-Adhäsion: der Adhärens- und Occludenskontakte. Therapeutische Maßnahmen dieser Krankheiten beinhalten Behandlungen mit Glukokortikoiden (GCs), wobei der Mechanismus und die Wirkungsweise dieser Substanzen bis heute nicht vollkommen aufgeklärt sind. In der zerebralen Hirnendothelzelllinie cEND [Forster C, Silwedel C, Golenhofen N, Burek M, Kietz S, Mankertz J & Drenckhahn D. (2005). Occludin as direct target for glucocorticoid-induced improvement of blood-brain barrier properties in a murine in vitro system. J Physiol 565, 475-486] wurde eine Funktionsverbesserung der Endothelbarriere durch die Expressionerhöhung von Occludin nach GC-Behandlung bereits analysiert. Daraufhin wurden andere Kandidaten des apikalen Junktionssystems gesucht, die positiv auf GC-Gabe ansprechen. Der erste Teil der Arbeit präsentiert den positiven Einfluss der Dexamethason-Behandlung auf die Expression des Adhärenskontakt-Proteins VE- (Vascular-Endothelial) Cadherin in cEND-Zellen. Dabei wurde eine Reorganisation des Zytoskeletts, eine verstärkte Verankerung des VE-Cadherins an das Zytoskelett, sowie eine einhergehende Morphologieänderung der behandelten Zellen beobachtet. Untersuchungen der Transkriptionsaktivierung des VE-Cadherin-Promoters nach Dexamethason-Behandlung, wiesen auf einen indirekten Steroid-Effekt hin, der zu einer Erhöhung der VE-Cadherin-Proteinsynthese führte. Somit sind GCs wichtig für die Proteinsynthese und -organisation beider Kontaktproteinarten: der Adhärens- und Occludenskontakte in mikrovaskulären Hirnendothelzellen. Die Beeinträchtigung der BHS-Integrität mit Veränderungen der Occludenskontaktexpression zählt zu den frühen Ereignissen bei der Entstehung einer Inflammation des ZNS, wie beispielsweise bei der MS. Im zweiten Teil der Dissertation wurde die Herunterregulation von Occludenskontaktproteinen in der cEND-Zelllinie untersucht. Dabei wurden cEND-Zellen mit Seren von Patienten, die sich in zwei verschiedenen Stadien der MS befanden, behandelt: in der akuten Exazerbationsphase oder der Remissionsphase, und auf die Protein- und Genexpression mit und ohne Dexamethasons-Behandlung untersucht. Es konnte ein negativer Effekt auf den Barrierewiderstand und die Occludenskontaktexpression, sowie eine erhöhte MMP-9-Genexpression nach Krankheitssereninkubation gezeigt werden. Die Dexamethason-Behandlung ergab eine geringe, aber keine vollständige Rekonstitution der Barrierefunktion. Anhand dieser Studie konnte jedoch erstmals eine Erniedrigung der Protein- und mRNA-Synthese von Claudin-5 und Occludin in Remissionspatientenseren inkubierten cEND-Zellen demonstriert werden. Somit könnten diese Erkenntnisse zur Prädiagnose einer bevorstehenden Exazerbationsphase der MS eingesetzt werden. Eine Langzeit-GC-Behandlung führt zu zahlreichen Nebenwirkungen, u. a. zum Bluthochdruck, welcher aufgrund einer eingeschränkten Produktion des vasodilatativen Faktors Stickstoffmonoxid, NO, im myokardialen Endothel hervorgerufen wird. Veränderungen in der NO-Produktion, wie auch anderer Faktoren der NO-Signalkaskade in der myokardialen Endothelzelllinie MyEND unter Einfluss von Dexamethason standen im Zentrum des dritten Teils dieser Arbeit. Während keine Veränderungen in der Expression der endothelialen NO-Synthase, eNOS, nach GC-Behandlung gezeigt werden konnten, wurden repressive Einflüsse von Dexamethason auf die Enzymaktivität der eNOS in MyEND-Zellen untersucht. GC-Gabe führte zur einer herabgesetzten Synthese des essenziellen Co-Faktors der eNOS, des Tetrahydrobiopterins, BH4, sowie zu einer Herunterregulation der GTP-Cyclohydrolase-1 (GTPCH-1), des geschwindigkeitsbestimmenden Enzyms der BH4-Produktion. Im Gegensatz zu bisherigen Ergebnissen anderer Arbeitsgruppen, konnte in der vorliegenden Studie belegt werden, dass die Herunterregulation der GTPCH-1 mRNA-Level auf den Liganden-abhängigen proteasomalen Abbau des Glukokortikoid-Rezeptors (GR) zurückzuführen ist. Das 26S-Proteasom moduliert die GR-abhängige Genexpression durch Kontrolle des Umsatzes und des Recyclings des Rezeptors selbst, wodurch eine regulierte Hormonresponsivität gewährleistet wird. Die Aufhebung des Liganden-abhängigen Abbaus des GR-Proteins durch gezielte Proteasominhibition, sowie durch eine Überexpression des ubiquitinylierungsdefekten GR-Konstruktes, K426A-GR, in Dexamethason-behandelten MyEND-Zellen resultierte in einer Erhöhung der GTPCH-1-Expression, sowie einer gesteigerten eNOS-Aktivität. Die hier beschriebenen Ergebnisse erlauben einen innovativen Einblick in die Erkenntnisse zur GC-vemittelten Hypertonie. Zusammenfassend kann festgestellt werden, dass GC-Behandlungen von mikrovaskulären Hirnendothelzellen zu einer Stabilisierung der Endothelbarriere führen. Unter pathologischen Bedingungen, wie der MS, wird der protektive GC-Effekt durch andere Faktoren beeinträchtigt