TY - JOUR A1 - Salvador, Ellaine A1 - Shityakov, Sergey A1 - Förster, Carola T1 - Glucocorticoids and endothelial cell barrier function JF - Cell and Tissue Research N2 - Glucocorticoids (GCs) are steroid hormones that have inflammatory and immunosuppressive effects on a wide variety of cells. They are used as therapy for inflammatory disease and as a common agent against edema. The blood brain barrier (BBB), comprising microvascular endothelial cells, serves as a permeability screen between the blood and the brain. As such, it maintains homeostasis of the central nervous system (CNS). In many CNS disorders, BBB integrity is compromised. GC treatment has been demonstrated to improve the tightness of the BBB. The responses and effects of GCs are mediated by the ubiquitous GC receptor (GR). Ligand-bound GR recognizes and binds to the GC response element located within the promoter region of target genes. Transactivation of certain target genes leads to improved barrier properties of endothelial cells. In this review, we deal with the role of GCs in endothelial cell barrier function. First, we describe the mechanisms of GC action at the molecular level. Next, we discuss the regulation of the BBB by GCs, with emphasis on genes targeted by GCs such as occludin, claudins and VE-cadherin. Finally, we present currently available GC therapeutic strategies and their limitations. KW - endothelial cells KW - glucocorticoids KW - glucocorticoid receptor KW - blood brain barrier Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-132091 VL - 355 IS - 3 ER - TY - THES A1 - Blecharz, Kinga Grażyna T1 - Molekulare Ziele der Glukokortikoidbehandlung unter verschiedenen pathophysiologischen Bedingungen in einem in vitro Modell der Blut-Hirn-Schranke T1 - Molecular targets of glucocorticoid-treatment under different pathophysiological conditions in an in vitro model of the blood brain barrier N2 - 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 N2 - The integrity of the blood-brain barrier (BBB) is compromised in many disorders of the human central nervous system. A breakdown of the blood-brain barrier under conditions of neuroinflammation and cerebral ischemia, but also traumas, brain tumours and multiple Sclerosis (MS), leads to loss of the protective function of the barrier. In its breakdown one of the first observable changes is the loss of intercellular adhesion and concomitant an increase of permeability. Although therapeutic strategies for diseases with impaired BBB function include the treatment with glucocorticoids (GCs) but the mechanism explaining GC action still remains unclear. Recent studies showed the influence of GCs on the expression of the tight junction protein occludin in the brain capillary endothelial cell line cEND, contributing to improvement in endothelial barrier functions. In this study, we investigated GC effects on the expression of the adherens junction proteins VE- (vascular-endothelial) cadherin. It was possible to show a positive influence of dexamethasone administration on VE-cadherin protein levels as well as a rearrangement and the anchorage of VE-cadherin protein to the cytoskeleton. Investigation of transcriptional activation of the VE-cadherin promoter by dexamethasone, however, did not point to direct glucocorticoid-mediated VE-cadherin gene induction. But it rather suggested indirect steroid effects leading to increased VE-cadherin protein synthesis. We thus propose that glucocorticoid effects on VE-cadherin protein synthesis and organization are important for the formation of both adherens and tight junctions, and for improved barrier properties in microvascular brain endothelial cells. Abnormalities in the expression profile of tight junctions in cerebral endothelium constituting barrier functions occur early during neuroinflammation, as Multiple Sclerosis (MS). In the second part of this study, the disruption of tight junction proteins in the cEND cell line was analysed. cEND cells were incubated with sera from patients, which were in two different states of MS: in the acute exacerbation or the remission phase of the disease, and protein levels and gene expression of claudin-5, occludin and VE-cadherin with and without dexamethasone treatment were investigated. There arised a downregulation of claudin-5 and occludin on protein and mRNA levels and an accompanying upregulation of MMP-9 activity revealed. A minor reconstitution of barrier functions related to dexamethasone treatment could be shown. However, no reconstitution could be detected to the control level. Especially, observations in downregulation of claudin-5 and occludin in cEND cells incubated with sera from patients in remission phase of MS could not be demonstrated before. Thus, this finding is proposed to be a new useful prediagnostic tool for an early detection of upcoming exacerbation phase. One of the numerous side effects of GC therapy is hypertension arising from reduced release of the endothelium-derived vasodilator nitric oxide, NO, being in the centre of the third part of this study. While effects of dexamethasone on endothelial NO synthase, eNOS, expression itself could not be demonstrated, repressive effects of dexamethasone on eNOS enzyme activity were shown in the myocardial endothelial cell line MyEND. Following GC-treatment we observed decreased levels of the essential cofactor of eNOS, tetrahydrobiopterin, BH4. We also determined a downregulation of GTP cyclohydrolase-1, GTPCH-1, the key enzyme of BH4 synthesis. In contrast to recent data from other groups, we postulate that this downregulation of GTPCH-1 mRNA levels is not a direct downregulation effect of GC action. But it is rather a consequence of the ligand-dependent proteasomal degradation of the GC receptor, GR. The 26S-proteasome modulates GR-dependent gene transcription by regulation of its turnover and the recycling of receptor/transcriptional DNA complexes, thereby ensuring continued regulation of hormone responsivity. In this work, the inhibition of proteasome-mediated proteolysis of GR by using inhibitors of the 26S-proteasome, or overexpression of a point-mutated, ubiquitination-defective GR construct, K426A-GR, which attenuates endothelial GC responsivity, was demonstrated. The abrogation of ligand-dependent degradation of GR protein resulted in increased levels of GTPCH-1 hence expression, leading to an increased eNOS-activity. These results provide a new insight into the research of GC-induced hypertension. Taken together, these data demonstrate, that GC treatment in microvascular brain endothelial cells leads to barrier stabilisation, but under conditions of MS there are many other factors like cytokines and chemokines, which abrogate this positive action. KW - Blut-Hirn-Schranke KW - Endothel KW - Tight junction KW - Dexamethason KW - Zellskelett KW - Proteasom KW - Hypertonie KW - Glukokortikoide KW - Endothelzelllinie KW - Adherens-Junction KW - blood brain barrier KW - brain endothelial cell line KW - tight junction KW - adherens junction KW - multiple sclerosis KW - proteasome Y1 - 2009 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-57256 ER - TY - JOUR A1 - Rösing, Nils A1 - Salvador, Ellaine A1 - Güntzel, Paul A1 - Kempe, Christoph A1 - Burek, Malgorzata A1 - Holzgrabe, Ulrike A1 - Soukhoroukov, Vladimir A1 - Wunder, Christian A1 - Förster, Carola T1 - Neuroprotective Effects of Isosteviol Sodium in Murine Brain Capillary Cerebellar Endothelial Cells (cerebEND) After Hypoxia JF - Frontiers in Cellular Neuroscience N2 - Ischemic stroke is one of the leading causes of death worldwide. It damages neurons and other supporting cellular elements in the brain. However, the impairment is not only confined to the region of assault but the surrounding area as well. Besides, it also brings about damage to the blood-brain barrier (BBB) which in turn leads to microvascular failure and edema. Hence, this necessitates an on-going, continuous search for intervention strategies and effective treatment. Of late, the natural sweetener stevioside proved to exhibit neuroprotective effects and therapeutic benefits against cerebral ischemia-induced injury. Its injectable formulation, isosteviol sodium (STVNA) also demonstrated favorable results. Nonetheless, its effects on the BBB have not yet been investigated to date. As such, this present study was designed to assess the effects of STVNA in our in vitro stroke model of the BBB.The integrity and permeability of the BBB are governed and maintained by tight junction proteins (TJPs) such as claudin-5 and occludin. Our data show increased claudin-5 and occludin expression in oxygen and glucose (OGD)-deprived murine brain capillary cerebellar endothelial cells (cerebEND) after STVNa treatment. Likewise, the upregulation of the transmembrane protein integrin-αv was also observed. Finally, cell volume was reduced with the simultaneous administration of STVNA and OGD in cerebEND cells. In neuropathologies such as stroke, the failure of cell volume control is a major feature leading to loss of cells in the penumbra as well as adverse outcomes. Our initial findings, therefore, point to the neuroprotective effects of STVNA at the BBB in vitro, which warrant further investigation for a possible future clinical intervention. KW - isosteviol sodium KW - hypoxia KW - cerebEND cells KW - blood brain barrier KW - neuroprotection Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-215013 SN - 1662-5102 VL - 14 ER - TY - JOUR A1 - Salvador, Ellaine A1 - Burek, Malgorzata A1 - Förster, Carola Y. T1 - Stretch and/or oxygen glucose deprivation (OGD) in an in vitro traumatic brain injury (TBI) model induces calcium alteration and inflammatory cascade JF - Frontiers in Cellular Neuroscience N2 - The blood-brain barrier (BBB), made up of endothelial cells of capillaries in the brain, maintains the microenvironment of the central nervous system. During ischemia and traumatic brain injury (TBI), cellular disruption leading to mechanical insult results to the BBB being compromised. Oxygen glucose deprivation (OGD) is the most commonly used in vitro model for ischemia. On the other hand, stretch injury is currently being used to model TBI in vitro. In this paper, the two methods are used alone or in combination, to assess their effects on cerebrovascular endothelial cells cEND in the presence or absence of astrocytic factors. Applying severe stretch and/or OGD to cEND cells in our experiments resulted to cell swelling and distortion. Damage to the cells induced release of lactate dehydrogenase enzyme (LDH) and nitric oxide (NO) into the cell culture medium. In addition, mRNA expression of inflammatory markers interleukin (I L)-6, IL-1\(\alpha\) chemokine (C-C motif) ligand 2 (CCL2) and tumor necrosis factor (TNF)-\(\alpha\) also increased. These events could lead to the opening of calcium ion channels resulting to excitotoxicity. This could be demonstrated by increased calcium level in OGD-subjected cEND cells incubated with astrocyte-conditioned medium. Furthermore, reduction of cell membrane integrity decreased tight junction proteins claudin-5 and occludin expression. In addition, permeability of the endothelial cell monolayer increased. Also, since cell damage requires an increased uptake of glucose, expression of glucose transporter glut1 was found to increase at the mRNA level after OGD. Overall, the effects of OGD on cEND cells appear to be more prominent than that of stretch with regards to TJ proteins, NO, glutl expression, and calcium level. Astrocytes potentiate these effects on calcium level in cEND cells. Combining both methods to model TBI in vitro shows a promising improvement to currently available models. KW - receptor antagonist KW - cytokine expression KW - tight junctions KW - cell stretch KW - calcium level KW - nitric oxide KW - endothelial cells KW - necrosis factor alpha KW - barrier properties KW - cerebral ischemia KW - nervous system KW - CNS injury KW - blood brain barrier KW - cEND KW - astrocytes KW - traumatic brain injury KW - oxygen-glucose deprivation Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-148255 VL - 9 IS - 323 ER -