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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.
Abstract:
TRPM7/ChaK1 is a unique channel/kinase that contains a TRPM channel domain with 6 transmembrane segments fused to a novel serine-threonine kinase domain at its C terminus. The goal of this study was to investigate a possible role of kinase activity and autophosphorylation in regulation of channel activity of TRPM7/ChaK1. Residues essential for kinase activity were identified by site-directed mutagenesis. Two major sites of autophosphorylation were identified in vitro by mass spectrometry at Ser(1511) and Ser(1567), and these sites were found to be phosphorylated in intact cells. TRPM7/ChaK1 is a cation-selective channel that exhibits strong outward rectification and inhibition by millimolar levels of internal [Mg(2+)]. Mutation of the two autophosphorylation sites or of a key catalytic site that abolished kinase activity did not alter channel activity measured by whole-cell recording or Ca(2+) influx. Inhibition by internal Mg(2+) was also unaffected in the autophosphorylation site or "kinase-dead" mutants. Moreover, kinase activity was enhanced by Mg(2+), was decreased by Zn(2+), and was unaffected by Ca(2+). In contrast, channel activity was inhibited by all three of these divalent cations. However, deletion of much of C-terminal kinase domain resulted in expression of an apparently inactive channel. We conclude that neither current activity nor regulation by internal Mg(2+) is affected by kinase activity or autophosphorylation but that the kinase domain may play a structural role in channel assembly or subcellular localization.
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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