Dynamic remodeling of TRPC5 channel-caveolin-1-eNOS protein assembly potentiates the positive feedback interaction

Reiko Sakaguchi1, Nobuaki Takahashi2, Takashi Yoshida3

  • 1Laboratory of Molecular Biology, Department of Synthetic Chemistry and Biological Chemistry, Graduate School of Engineering, Kyoto University, Kyoto, Japan; Institute for Integrated Cell-Material Sciences, Kyoto University, Kyoto, Japan; Laboratory of Biomaterials and Chemistry, School of Medicine, University of Occupational and Environmental Health, Fukuoka, Japan.

Insights

Dynamic protein assembly remodeling involving TRPC5, eNOS, and caveolin-1 controls calcium (Ca2+) influx and nitric oxide (NO) production in vascular cells, impacting vasodilation.

Area of Science:

  • Cellular Biology
  • Molecular Signaling
  • Cardiovascular Physiology

Background:

  • Nitric oxide (NO) and calcium (Ca2+) are key cell signaling molecules regulated by protein complexes.
  • The dynamic behavior of these protein assemblies under NO and Ca2+ interplay is not fully understood.

Purpose of the Study:

  • To investigate the dynamic remodeling of protein assemblies in response to G-protein-coupled ATP receptor activation.
  • To elucidate the roles of TRPC5, endothelial NO synthase (eNOS), and caveolin-1 in Ca2+ influx and NO production.

Main Methods:

  • Studied TRPC5 channel activation, Ca2+ influx, and NO production in vascular endothelial cells.
  • Utilized site-directed mutagenesis of TRPC5 to assess the role of caveolin-1 binding domains.
  • Examined protein-protein interactions and localization using biochemical and cellular imaging techniques.
  • Assessed vasodilation in isolated rat aorta using a TRPC5 inhibitor.

Main Results:

  • ATP receptor stimulation activates TRPC5, leading to Ca2+ influx and subsequent NO production by eNOS.
  • eNOS undergoes secondary activation of TRPC5 through S-nitrosylation.
  • Caveolin-1 acts as a scaffold for TRPC5 and eNOS; its disruption impairs signaling.
  • eNOS dissociates from caveolin-1 and binds TRPC5 upon activation, enhancing NO production and Ca2+ influx.
  • TRPC5 inhibition suppressed acetylcholine-induced vasodilation in rat aorta.

Conclusions:

  • Dynamic remodeling of the TRPC5, eNOS, caveolin-1, and calmodulin complex is crucial for regulating Ca2+ and NO signaling.
  • This remodeling process fine-tunes vascular endothelial cell function and vasodilation.

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