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

Shinichi Takahashi1, Hai Lin, Naomi Geshi

  • 1Department of Physiology, Graduate School of Medical Sciences, Fukuoka University, Fukuoka 814 0180, Japan.

Insights

The nitric oxide (NO)-cGMP-protein kinase G (PKG) pathway inhibits TRPC6 channels, likely through T69 phosphorylation. This NO-cGMP-PKG regulation of TRPC6 channels is important in vascular tissues.

Area of Science:

  • Physiology
  • Molecular Biology
  • Cardiovascular Research

Background:

  • Transient Receptor Potential Canonical 6 (TRPC6) channels are crucial ion channels involved in vascular smooth muscle function.
  • The nitric oxide (NO)-cyclic guanosine monophosphate (cGMP)-protein kinase G (PKG) pathway plays a significant role in regulating vascular tone and cellular processes.

Purpose of the Study:

  • To investigate the inhibitory role of the NO-cGMP-PKG pathway on receptor-activated TRPC6 channels.
  • To elucidate the specific molecular mechanisms underlying TRPC6 channel regulation by this pathway.

Main Methods:

  • Utilized a heterologous expression system (HEK293 cells) and A7r5 vascular myocytes.
  • Applied NO donors (SNAP), cGMP analogues (8Br-cGMP), and pathway inhibitors (ODQ, KT5823, DT3).
  • Performed site-directed mutagenesis of potential PKG phosphorylation sites on TRPC6 and single-channel recordings.

Main Results:

  • NO donor SNAP and 8Br-cGMP significantly suppressed TRPC6 channel currents by approximately 70%.
  • Inhibitors of guanylyl cyclase and PKG, as well as alanine substitution at the T69 phosphorylation site of TRPC6, attenuated the inhibitory effects.
  • PKG activation by SNAP promoted phosphorylation of TRPC6 at T69, confirming a direct regulatory mechanism.

Conclusions:

  • TRPC6 channels are negatively regulated by the NO-cGMP-PKG pathway, likely via phosphorylation at the N-terminal T69 site.
  • This regulatory mechanism is physiologically relevant in vascular tissues, impacting TRPC6 channel activity and membrane potential.

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