Palmitoylation regulates cellular distribution of and transmembrane Ca flux through TrpM7
Xing Gao1, Chien-Wen Kuo1, Alice Main1
1Institute of Cardiovascular & Medical Sciences, University of Glasgow, Glasgow G12 8QQ, United Kingdom.
Abstract:
The bifunctional cation channel/kinase TrpM7 is ubiquitously expressed and regulates embryonic development and pathogenesis of several common diseases. The TrpM7 integral membrane ion channel domain regulates transmembrane movement of divalent cations, and its kinase domain controls gene expression via histone phosphorylation. Mechanisms regulating TrpM7 are elusive. It exists in two populations in the cell: at the cell surface where it controls divalent cation fluxes, and in intracellular vesicles where it controls zinc uptake and release. Here we report that TrpM7 is palmitoylated at a cluster of cysteines at the C terminal end of its Trp domain. Palmitoylation controls the exit of TrpM7 from the endoplasmic reticulum and the distribution of TrpM7 between cell surface and intracellular pools. Using the Retention Using Selective Hooks (RUSH) system, we demonstrate that palmitoylated TrpM7 traffics from the Golgi to the surface membrane whereas non-palmitoylated TrpM7 is sequestered in intracellular vesicles. We identify the Golgi-resident enzyme zDHHC17 and surface membrane-resident enzyme zDHHC5 as responsible for palmitoylating TrpM7 and find that TrpM7-mediated transmembrane calcium uptake is significantly reduced when TrpM7 is not palmitoylated. The closely related channel/kinase TrpM6 is also palmitoylated on the C terminal side of its Trp domain. Our findings demonstrate that palmitoylation controls ion channel activity of TrpM7 and that TrpM7 trafficking is dependant on its palmitoylation. We define a new mechanism for post translational modification and regulation of TrpM7 and other Trps.
Insights
Palmitoylation, a key modification, controls the TrpM7 channel/kinase
Area of Science:
- Molecular biology
- Cell biology
- Biochemistry
Background:
- TrpM7 is a bifunctional protein with both ion channel and kinase activity.
- It plays roles in embryonic development and disease pathogenesis.
- TrpM7 localization and regulation are not fully understood, existing in cell surface and intracellular pools.
Purpose of the Study:
- To investigate the post-translational modifications regulating TrpM7.
- To elucidate the role of palmitoylation in TrpM7 trafficking and function.
- To identify the enzymes responsible for TrpM7 palmitoylation.
Main Methods:
- Utilized the Retention Using Selective Hooks (RUSH) system for studying protein trafficking.
- Investigated TrpM7 palmitoylation at the C-terminal end of its Trp domain.
- Identified zDHHC17 and zDHHC5 as the enzymes responsible for TrpM7 palmitoylation.
Main Results:
- TrpM7 undergoes palmitoylation at cysteine residues in its Trp domain.
- Palmitoylation is essential for TrpM7 exit from the endoplasmic reticulum and proper trafficking.
- Non-palmitoylated TrpM7 is retained in intracellular vesicles, while palmitoylated TrpM7 reaches the cell surface.
- TrpM7-mediated calcium uptake is significantly reduced in non-palmitoylated forms.
- The related TrpM6 protein is also palmitoylated.
Conclusions:
- Palmitoylation is a critical post-translational modification regulating TrpM7 ion channel activity and cellular localization.
- This modification dictates TrpM7 trafficking between intracellular vesicles and the cell surface.
- Identified specific zDHHC enzymes responsible for TrpM7 palmitoylation, revealing a novel regulatory mechanism for TrpM7 and related proteins.
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