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.
Abstract:
The cell signaling molecules nitric oxide (NO) and Ca2+ regulate diverse biological processes through their closely coordinated activities directed by signaling protein complexes. However, it remains unclear how dynamically the multicomponent protein assemblies behave within the signaling complexes upon the interplay between NO and Ca2+ signals. Here we demonstrate that TRPC5 channels activated by the stimulation of G-protein-coupled ATP receptors mediate Ca2+ influx, that triggers NO production from endothelial NO synthase (eNOS), inducing secondary activation of TRPC5 via cysteine S-nitrosylation and eNOS in vascular endothelial cells. Mutations in the caveolin-1-binding domains of TRPC5 disrupt its association with caveolin-1 and impair Ca2+ influx and NO production, suggesting that caveolin-1 serves primarily as the scaffold for TRPC5 and eNOS to assemble into the signal complex. Interestingly, during ATP receptor activation, eNOS is dissociated from caveolin-1 and in turn directly associates with TRPC5, which accumulates at the plasma membrane dependently on Ca2+ influx and calmodulin. This protein reassembly likely results in a relief of eNOS from the inhibitory action of caveolin-1 and an enhanced TRPC5 S-nitrosylation by eNOS localized in the proximity, thereby facilitating the secondary activation of Ca2+ influx and NO production. In isolated rat aorta, vasodilation induced by acetylcholine was significantly suppressed by the TRPC5 inhibitor AC1903. Thus, our study provides evidence that dynamic remodeling of the protein assemblies among TRPC5, eNOS, caveolin-1, and calmodulin determines the ensemble of Ca2+ mobilization and NO production in vascular endothelial cells.
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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