Activity of the yeast vacuolar TRP channel TRPY1 is inhibited by Ca2+-calmodulin binding

Mahnaz Amini1, Yiming Chang1, Ulrich Wissenbach2

  • 1Experimentelle und Klinische Pharmakologie und Toxikologie/PZMS, Universität des Saarlandes, Homburg, Deutschland; Department of Medical Biochemistry and Molecular Biology/PZMS, Medical School, Saarland University, Homburg, Germany.

Insights

Yeast calmodulin (CaM) inhibits TRP yeast channel 1 (TRPY1) activity in a calcium-dependent manner. This Ca2+-CaM inhibition involves a specific amino acid region and can be mimicked by mammalian CaM.

Area of Science:

  • Cellular biology
  • Molecular biology
  • Biochemistry

Background:

  • Transient receptor potential (TRP) channels are crucial for cellular calcium (Ca2+) signaling across diverse species.
  • The yeast TRP channel 1 (TRPY1) is regulated by intracellular Ca2+, but the precise mechanisms and Ca2+-binding protein involvement remain unclear.

Purpose of the Study:

  • To elucidate the Ca2+-dependent regulation of TRPY1 by calmodulin (CaM).
  • To investigate the role of specific CaM interactions in modulating TRPY1 activity.

Main Methods:

  • Yeast genetics to study CaM mutants (cmd1-6) and wild-type CaM (Cmd1) effects on TRPY1.
  • Heterologous expression in human embryonic kidney 293 cells to assess TRPY1 activity.
  • Pharmacological inhibition using a CaM antagonist (ophiobolin A).
  • Site-directed mutagenesis to identify critical regions for CaM interaction.

Main Results:

  • Demonstrated Ca2+-dependent binding of yeast CaM to TRPY1.
  • Observed increased TRPY1 activity in yeast strains with non-Ca2+-binding CaM mutants.
  • Showed that mammalian CaM can inhibit TRPY1 activity, similar to yeast CaM.
  • Identified a specific cytoplasmic amino acid stretch (E33-Y92) essential for Ca2+-CaM-mediated TRPY1 inhibition.

Conclusions:

  • TRPY1 activity is under inhibitory control by Ca2+-bound calmodulin.
  • Mammalian CaM can functionally substitute for yeast CaM in inhibiting TRPY1.
  • TRPY1 utilizes CaM as a Ca2+-sensing subunit, adding to the known roles of CaM in regulating ion channels.

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