Transient receptor potential channel 1 (TRPC1) reduces calcium permeability in heteromeric channel complexes
Ursula Storch1, Anna-Lena Forst, Maximilian Philipp
1Walther-Straub-Institute for Pharmacology and Toxicology, Ludwig-Maximilians University, 80336 Munich, Germany.
Abstract:
Specific biological roles of the classical transient receptor potential channel 1 (TRPC1) are still largely elusive. To investigate the function of TRPC1 proteins in cell physiology, we studied heterologously expressed TRPC1 channels and found that recombinant TRPC1 subunits do not form functional homomeric channels. Instead, by electrophysiological analysis TRPC1 was shown to form functional heteromeric, receptor-operated channel complexes with TRPC3, -4, -5, -6, and -7 indicating that TRPC1 proteins can co-assemble with all members of the TRPC subfamily. In all TRPC1-containing heteromers, TRPC1 subunits significantly decreased calcium permeation. The exchange of select amino acids in the putative pore-forming region of TRPC1 further reduced calcium permeability, suggesting that TRPC1 subunits contribute to the channel pore. In immortalized immature gonadotropin-releasing hormone neurons endogenously expressing TRPC1, -2, -5, and -6, down-regulation of TRPC1 resulted in increased calcium permeability and elevated basal cytosolic calcium concentrations. We did not observe any involvement of TRPC1 in store-operated cation influx. Notably, TRPC1 suppressed the migration of gonadotropin-releasing hormone neurons without affecting cell proliferation. Conversely, in TRPC1 knockdown neurons, specific migratory properties like distance covered, locomotion speed, and directionality were increased. These findings suggest a novel regulatory mechanism relying on the expression of TRPC1 and the subsequent formation of heteromeric TRPC channel complexes with reduced calcium permeability, thereby fine-tuning neuronal migration.
Insights
Classical transient receptor potential channel 1 (TRPC1) forms heteromeric channels that decrease calcium permeability. TRPC1 suppresses gonadotropin-releasing hormone neuron migration, suggesting a role in fine-tuning neuronal movement.
Area of Science:
- Molecular biology
- Neuroscience
- Ion channel physiology
Background:
- The biological functions of classical transient receptor potential channel 1 (TRPC1) remain largely unknown.
- TRPC1 is a member of the TRPC subfamily of ion channels.
Purpose of the Study:
- To investigate the physiological roles of TRPC1 proteins.
- To determine the channel-forming properties and regulatory functions of TRPC1.
Main Methods:
- Heterologous expression of TRPC1 channels.
- Electrophysiological analysis of TRPC1-containing channel complexes.
- TRPC1 down-regulation in gonadotropin-releasing hormone neurons.
- Assessment of calcium permeability and neuronal migration.
Main Results:
- TRPC1 does not form functional homomeric channels but co-assembles with all other TRPC subfamily members into heteromeric complexes.
- TRPC1 subunits significantly reduce calcium permeability in these heteromers.
- TRPC1 down-regulation in GnRH neurons increases calcium permeability and basal cytosolic calcium.
- TRPC1 suppresses gonadotropin-releasing hormone neuron migration, while its knockdown enhances migration parameters.
Conclusions:
- TRPC1 forms heteromeric channels that modulate calcium influx.
- TRPC1 plays a novel regulatory role in suppressing neuronal migration by forming TRPC complexes with reduced calcium permeability.
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