Lipid-independent control of endothelial and neuronal TRPC3 channels by light

Lipid-gated TRPC channels are highly expressed in cardiovascular and neuronal tissues. Exerting precise pharmacological control over their activity in native cells is expected to serve as a basis for the development of novel therapies. Here we report on a new photopharmacological tool that enables m...

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Veröffentlicht in:Chemical science (Cambridge) 2019-03, Vol.10 (9), p.2837-2842
Hauptverfasser: Tiapko, Oleksandra, Shrestha, Niroj, Lindinger, Sonja, Guedes de la Cruz, Gema, Graziani, Annarita, Klec, Christiane, Butorac, Carmen, Graier, Wolfgang F, Kubista, Helmut, Freichel, Marc, Birnbaumer, Lutz, Romanin, Christoph, Glasnov, Toma, Groschner, Klaus
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Sprache:eng
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Zusammenfassung:Lipid-gated TRPC channels are highly expressed in cardiovascular and neuronal tissues. Exerting precise pharmacological control over their activity in native cells is expected to serve as a basis for the development of novel therapies. Here we report on a new photopharmacological tool that enables manipulation of TRPC3 channels by light, in a manner independent of lipid metabolism and with higher temporal precision than lipid photopharmacology. Using the azobenzene photoswitch moiety, we modified GSK1702934A to generate light-controlled TRPC agonists. We obtained one light-sensitive molecule (OptoBI-1) that allows us to exert efficient, light-mediated control over TRPC3 activity and the associated cellular Ca signaling. OptoBI-1 enabled high-precision, temporal control of TRPC3-linked cell functions such as neuronal firing and endothelial Ca transients. With these findings, we introduce a novel photopharmacological strategy to control native TRPC conductances.
ISSN:2041-6520
2041-6539
DOI:10.1039/c8sc05536j