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Published on: December 31, 2013
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.
Abstract:
Transient receptor potential (TRP) cation channels, which are conserved across mammals, flies, fish, sea squirts, worms, and fungi, essentially contribute to cellular Ca2+ signaling. The activity of the unique TRP channel in yeast, TRP yeast channel 1 (TRPY1), relies on the vacuolar and cytoplasmic Ca2+ concentration. However, the mechanism(s) of Ca2+-dependent regulation of TRPY1 and possible contribution(s) of Ca2+-binding proteins are yet not well understood. Our results demonstrate a Ca2+-dependent binding of yeast calmodulin (CaM) to TRPY1. TRPY1 activity was increased in the cmd1-6 yeast strain, carrying a non-Ca2+-binding CaM mutant, compared with the parent strain expressing wt CaM (Cmd1). Expression of Cmd1 in cmd1-6 yeast rescued the wt phenotype. In addition, in human embryonic kidney 293 cells, hypertonic shock-induced TRPY1-dependent Ca2+ influx and Ca2+ release were increased by the CaM antagonist ophiobolin A. We found that coexpression of mammalian CaM impeded the activity of TRPY1 by reinforcing effects of endogenous CaM. Finally, inhibition of TRPY1 by Ca2+-CaM required the cytoplasmic amino acid stretch E33-Y92. In summary, our results show that TRPY1 is under inhibitory control of Ca2+-CaM and that mammalian CaM can replace yeast CaM for this inhibition. These findings add TRPY1 to the innumerable cellular proteins, which include a variety of ion channels, that use CaM as a constitutive or dissociable Ca2+-sensing subunit, and contribute to a better understanding of the modulatory mechanisms of Ca2+-CaM.
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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