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Effect of Tjap1 knock-down on blood-brain barrier properties under normal and hypoxic conditions
(2023)
Stroke is one of the leading causes of mortality and disability worldwide. The blood-brain barrier (BBB) plays an important role in maintaining brain homeostasis by tightly regulating the exchange of substances between circulating blood and brain parenchyma. BBB disruption is a common pathologic feature of stroke and traumatic brain injury. Understanding the cellular and molecular events that affect the BBB after ischaemic brain injury is important to improve patient prognosis.
We have previously shown that microRNA-212/132 is elevated in hypoxic brain microvascular endothelial cells and acts through suppressing the expression of direct microRNA-212/132 target genes with function at the BBB: claudin-1, junctional adhesion molecule 3 (Jam3) and tight-junction associated protein 1 (Tjap1). While the role of claudin-1 and Jam3 at the BBB is well known, the role of Tjap1 is still unclear. The aim of this work was therefore to characterize the role of Tjap1 in brain endothelial cells using a knock-down (KD) approach in established murine in vitro BBB models cEND and cerebEND. Tjap1 KD was established by stable transfection of a plasmid expressing shRNA against Tjap1. The successful downregulation of Tjap1 mRNA and protein was demonstrated by qPCR and Western blot. Tjap1 KD resulted in impaired barrier properties of endothelial cells as shown by lower TEER values and higher paracellular permeability. Interestingly, the Tjap1 KD cells showed lower cell viability and proliferation but migrated faster in a wound healing assay. In the tube formation assay, Tjap1 KD cell lines showed a lower angiogenic potential due to a significantly lower tube length and number as well as a lower amount of branching points in formed capillaries. Tjap1 KD cells showed changes in gene and protein expression. The TJ proteins claudin-5, Jam3 and ZO-1 were significantly increased in Tjap1 KD cell lines, while occludin was strongly decreased. In addition, efflux pump P-glycoprotein was downregulated in Tjap1 KD cells. Oxygen-glucose deprivation (OGD) is a method to mimic stroke in vitro. Brain endothelial cell lines treated with OGD showed lower barrier properties compared to cells cultured under normal condition. These effects were more severe in Tjap1 KD cells, indicating active Tjap1 involvement in the OGD response in brain microvascular endothelial cells.
We thus have shown that Tjap1 contributes to a tight barrier of the BBB, regulates cell viability and proliferation of endothelial cells, suppresses their migration and promotes new vessel formation. This means that Tjap1 function is important for mature BBB structure in health and disease.
TTFields sind eine zugelassene Therapie für die Behandlung von Glioblastom IDH-Wildtyp. Es handelt sich dabei um elektrische Wechselfelder niedriger Intensität und mittlerer Frequenz, die therapeutisch aus zwei Richtungen durch ein tragbares, nicht-invasives Gerät appliziert werden. Sie verhindern die Spindelfaserbildung während der Mitose.
Die Wirkung vieler effektiver Chemotherapeutika ist im ZNS durch die Blut-Hirn-Schranke (BHS) eingeschränkt. Die BHS wird nach TTFields Applikation bei 100 kHz in einem murinen cerebEND-Zell-Modell vorübergehend geöffnet. Dieser Effekt wurde in dieser Arbeit zunächst mit Hilfe von Immunfluoreszenzmikroskopie und dann durch einen fraktionierten Western-Blot bestätigt, dass der mutmaßliche Wirkungsmechanismus von TTFields in der Delokalisierung des tight junction Proteins Claudin-5 von der Membran in das Zytoplasma liegt. TEER-Messungen zeigten, dass sich die Integrität der BHS durch 100 kHz TTFields nach 72 h verringerte und 48 h - 72 h nach Ende der Behandlung wieder normalisierte, auch wenn statt eines Behandlungsendes auf 200 kHz TTFields umgeschaltet wurde. Der zweite Teil der Untersuchung bestand darin, ein BHS-Modell aus humanen HBMVEC Zellen zu etablieren, um die Auswirkungen von TTFields im humanen System verifizieren zu können. Zunächst konnten keine Effekte von TTFields unterschiedlicher Frequenz auf eine HBMVEC-Monokultur festgestellt werden. In einer Kokultur mit Perizyten gab es eine erhöhte Expression von Claudin-5, Occludin und PECAM-1. Allerdings zeigten die TEER-Messungen und ein Permeabilitätsassay keine Unterschiede zwischen den Mono- und Kokultur-Modellen der BHS auf.
Durch eine transiente Öffnung der BHS könnte eine höhere Dosis von Therapeutika, die normalerweise die BHS nicht überwinden können, im ZNS erreicht werden. Damit könnten TTFields eine innovative Methode zur Behandlung von Hirntumoren und anderen Erkrankungen des ZNS darstellen. Die hier präsentierten Daten geben erste Hinweise in diese Richtung, müssen aber noch optimiert und verifiziert werden.
In a recent study, we showed in an in vitro murine cerebellar microvascular endothelial cell (cerebEND) model as well as in vivo in rats that Tumor-Treating Fields (TTFields) reversibly open the blood–brain barrier (BBB). This process is facilitated by delocalizing tight junction proteins such as claudin-5 from the membrane to the cytoplasm. In investigating the possibility that the same effects could be observed in human-derived cells, a 3D co-culture model of the BBB was established consisting of primary microvascular brain endothelial cells (HBMVEC) and immortalized pericytes, both of human origin. The TTFields at a frequency of 100 kHz administered for 72 h increased the permeability of our human-derived BBB model. The integrity of the BBB had already recovered 48 h post-TTFields, which is earlier than that observed in cerebEND. The data presented herein validate the previously observed effects of TTFields in murine models. Moreover, due to the fact that human cell-based in vitro models more closely resemble patient-derived entities, our findings are highly relevant for pre-clinical studies.