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Controllable Ion Channel Expression through Inducible Transient Transfection
Published on: February 17, 2017
Physiology and pathophysiology of canonical transient receptor potential channels
Joel Abramowitz1, Lutz Birnbaumer
1Transmembrane Signaling Group, Laboratory of Neurobiology, National Institute of Environmental Health Sciences, National Institutes of Health, Research Triangle Park, NC 27709, USA. abramow1@niehs.nih.gov
Abstract:
The existence of a mammalian family of TRPC ion channels, direct homologues of TRP, the visual transduction channel of flies, was discovered during 1995-1996 as a consequence of research into the mechanism by which the stimulation of the receptor-Gq-phospholipase Cbeta signaling pathway leads to sustained increases in intracellular calcium. Mammalian TRPs, TRPCs, turned out to be nonselective, calcium-permeable cation channels, which cause both a collapse of the cell's membrane potential and entry of calcium. The family comprises 7 members and is widely expressed. Many cells and tissues express between 3 and 4 of the 7 TRPCs. Despite their recent discovery, a wealth of information has accumulated, showing that TRPCs have widespread roles in almost all cells studied, including cells from excitable and nonexcitable tissues, such as the nervous and cardiovascular systems, the kidney and the liver, and cells from endothelia, epithelia, and the bone marrow compartment. Disruption of TRPC function is at the root of some familial diseases. More often, TRPCs are contributing risk factors in complex diseases. The present article reviews what has been uncovered about physiological roles of mammalian TRPC channels since the time of their discovery. This analysis reveals TRPCs as major and unsuspected gates of Ca(2+) entry that contribute, depending on context, to activation of transcription factors, apoptosis, vascular contractility, platelet activation, and cardiac hypertrophy, as well as to normal and abnormal cell proliferation. TRPCs emerge as targets for a thus far nonexistent field of pharmacological intervention that may ameliorate complex diseases.
Insights
Transient Receptor Potential Canonical (TRPC) channels are crucial calcium-permeable cation channels involved in numerous cellular processes. This review highlights their diverse physiological roles and potential as therapeutic targets for complex diseases.
Area of Science:
- Molecular Biology
- Cell Physiology
- Ion Channel Research
Background:
- Mammalian TRPC channels, homologous to fly TRP, were discovered through research on Gq-phospholipase Cbeta signaling and calcium influx.
- TRPC channels are nonselective, calcium-permeable cation channels influencing membrane potential and calcium entry.
Purpose of the Study:
- To review the physiological roles of mammalian TRPC channels since their discovery.
- To elucidate the involvement of TRPC channels in various cellular functions and disease pathogenesis.
Main Methods:
- Literature review of accumulated research on mammalian TRPC channels.
- Analysis of studies investigating TRPC channel function in diverse cell types and tissues.
Main Results:
- TRPC channels are widely expressed across numerous cell types, including excitable and nonexcitable tissues.
- TRPC dysfunction is linked to familial diseases and contributes to complex disease risk.
- TRPCs act as significant calcium entry gates influencing transcription factors, apoptosis, vascular contractility, platelet activation, cardiac hypertrophy, and cell proliferation.
Conclusions:
- Mammalian TRPC channels play fundamental roles in a wide array of physiological processes.
- TRPC channels represent promising, yet largely untapped, targets for pharmacological interventions in complex diseases.
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