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Deli, M. A.

Publications and source records attributed to Deli, M. A..

2 recordsLinked to original sources

A small molecule cocktail for robust induction of blood-brain barrier properties

Blood-brain barrier (BBB) models derived from human stem cells are powerful tools to improve our understanding of cerebrovascular diseases and to facilitate drug development for the human brain. Yet providing stem cell-derived endothelial cells with the right signaling cues to acquire BBB characteristics while also retaining their vascular identity remains challenging. Here, we show that the simultaneous activation of cyclic AMP and Wnt/{beta}-catenin signaling, and inhibition of the TGF-{beta} pathway in endothelial cells robustly induce BBB properties in vitro. To target this novel interaction, we present a small molecule cocktail named cARLA, which synergistically enhances barrier tightness in a range of BBB models across species. Mechanistically, we reveal that the three pathways converge on Wnt/{beta}-catenin signaling to mediate the effect of cARLA via the tight junction protein claudin-5. We demonstrate that cARLA shifts the gene expressional profile of human stem cell-derived endothelial cells towards the in vivo brain endothelial signature, with a higher glycocalyx density and efflux pump activity, lower rates of endocytosis and a characteristic endothelial response to proinflammatory cytokines. Finally, we illustrate how cARLA can improve the predictive value of human BBB models regarding the brain penetration of drugs and targeted nanoparticles. Due to its synergistic effect, high reproducibility and ease of use, cARLA has the potential to advance drug development for the human brain by improving BBB models across laboratories. Significance StatementThe blood-brain barrier (BBB) hinders drug delivery to the brain and is implicated in neurological diseases. To better understand these processes in humans, there is a need for culture models that mimic the complexity of the BBB. However, state-of-the-art human BBB models either suffer from a non-physiological, mixed epithelial-endothelial identity or have weak barrier tightness, which greatly limits their usability. We identified a molecule combination that synergistically enhances barrier tightness in several in vitro models and induces complex BBB properties in human stem cell-derived endothelial cells by targeting a novel link between three signaling pathways. The molecule combination has the potential to improve BBB culture models across laboratories to advance both basic research and drug development for the human brain.

bioengineering↗

Effects of sub-chronic, in vivo administration of sigma-1 receptor ligands on platelet and aortic arachidonate cascade in streptozotocin-induced diabetic rats

Diabetes mellitus is a chronic metabolic disorder which induces endothelial dysfunction and platelet activation. Eicosanoids produced from arachidonic acid regulate cellular and vascular functions. Sigma-1 receptor expressed in platelets and endothelial cells can regulate intracellular signalization. Our aim was to examine the influence of sub-chronic, in vivo administered sigma-1 receptor ligands (2-(4-morpholino)ethyl-1-phenylcyclohexane-1-carboxylate, PRE-084; S-N-Benzyl-6,7-dimethoxy-1,2,3,4-tetrahydro-1-isoquinolineethanamine, a new compound (S)-L1; and N,N-dipropyl-2-[4-methoxy-3-(2-phenylethoxy)-phenyl]-ethylamine monohydrochloride, NE-100) on the ex vivo arachidonic acid metabolism of platelets and aorta in streptozotocin-induced diabetic rats. The serum level of sigma-1 receptor ligands was detected by liquid chromatography-mass spectrometry before the ex vivo analysis. Sigma-1 receptor and cyclooxygenase gene expression in platelets were determined by reverse transcription coupled quantitative polymerase chain reaction. The eicosanoid synthesis was examined by using of radiolabeled arachidonic acid substrate and enzyme-linked immunosorbent assay. In diabetic rats, the sub-chronic, in vivo administration of the sigma-1 receptor ligands modified the transcript levels of sigma-1 receptor and cyclooxygenase-1, the concentration of cyclooxygenase in platelets and the eicosanoid synthesis in both platelets and aorta. Sigma-1 receptor ligands, by changing platelet and blood vessel eicosanoid synthesis, may play a role in modulating diabetic complications.

pharmacology and toxicology↗