Channel function is dissociated from the intrinsic kinase activity and autophosphorylation of TRPM7/ChaK1

Masayuki Matsushita1, J Ashot Kozak, Yoshio Shimizu

  • 1First Department of Physiology, Okayama University Medical School, 2-5-1 Shikata-cho, Okayama 700-8558, Japan.

Insights

The kinase activity of TRPM7/ChaK1 (Transient Receptor Potential Melastatin 7/Chastity Kinase 1) does not regulate its channel function or Mg2+ inhibition. The kinase domain may be crucial for channel assembly or localization.

Area of Science:

  • Molecular Biology
  • Ion Channel Physiology
  • Enzymology

Background:

  • TRPM7/ChaK1 is a bifunctional protein combining a cation channel with a serine-threonine kinase domain.
  • Its regulation by kinase activity and autophosphorylation remains incompletely understood.

Purpose of the Study:

  • To investigate the role of TRPM7/ChaK1 kinase activity and autophosphorylation in regulating channel function.
  • To determine if kinase activity affects channel gating or inhibition by intracellular divalent cations.

Main Methods:

  • Site-directed mutagenesis to identify key kinase residues and autophosphorylation sites (Ser1511, Ser1567).
  • Mass spectrometry for in vitro autophosphorylation site identification.
  • Whole-cell patch-clamp recording to measure channel activity and Ca2+ influx in intact cells and mutants.
  • Deletion mutagenesis of the kinase domain.

Main Results:

  • Mutations abolishing kinase activity or targeting autophosphorylation sites did not alter TRPM7/ChaK1 channel activity or Mg2+ inhibition.
  • Divalent cations (Mg2+, Zn2+, Ca2+) differentially affected kinase activity but inhibited channel function.
  • Deletion of the kinase domain resulted in an apparently inactive channel, suggesting a structural role.

Conclusions:

  • TRPM7/ChaK1 kinase activity and autophosphorylation are not essential for its cation channel function or Mg2+ regulation.
  • The kinase domain likely plays a critical structural role in channel assembly, stability, or proper subcellular localization.

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