4.6 Article

Nitric oxide-cGMP-protein kinase G pathway negatively regulates vascular transient receptor potential channel TRPC6

期刊

JOURNAL OF PHYSIOLOGY-LONDON
卷 586, 期 17, 页码 4209-4223

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WILEY-BLACKWELL
DOI: 10.1113/jphysiol.2008.156083

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  1. grant-in-aid from the Japan Society of the Promotion of Science [17590221]
  2. Grants-in-Aid for Scientific Research [20249015] Funding Source: KAKEN

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We investigated the inhibitory role of the nitric oxide (NO)-cGMP-protein kinase G (PKG) pathway on receptor-activated TRPC6 channels in both a heterologous expression system (HEK293 cells) and A7r5 vascular myocytes. Cationic currents due to TRPC6 expression were strongly suppressed (by similar to 70%) by a NO donor SNAP (100 mu M) whether it was applied prior to muscarinic receptor stimulation with carbachol (CCh; 100 mu M) or after G-protein activation with intracellular perfusion of GTP gamma S (100 mu M). A similar extent of suppression was also observed with a membrane-permeable analogue of cGMP, 8Br-cGMP (100 mu M). The inhibitory effects of SNAP and 8Br-cGMP on TRPC6 channel currents were strongly attenuated by the presence of inhibitors for guanylyl cyclase and PKG such as ODQ, KT5823 and DT3. Alanine substitution for the PKG phosphorylation candidate site at T69 but not at other sites (T14A, S28A, T193A, S321A) of TRPC6 similarly attenuated the inhibitory effects of SNAP and 8Br-cGMP. SNAP also significantly reduced single TRPC6 channel activity recorded in the inside-out configuration in a PKG-dependent manner. SNAP-induced PKG activation stimulated the incorporation of (32)P into wild-type and S321A-mutant TRPC6 proteins immunoprecipitated by TRPC6-specific antibody, but this was greatly attenuated in the T69A mutant. SNAP or 8Br-cGMP strongly suppressed TRPC6-like cation currents and membrane depolarization evoked by Arg(8)-vasopressin in A7r5 myocytes. These results strongly suggest that TRPC6 channels can be negatively regulated by the NO-cGMP-PKG pathway, probably via T69 phosphorylation of the N-terminal. This mechanism may be physiologically important in vascular tissues where NO is constantly released from vascular endothelial cells or nitrergic nerves.

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