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Voltage- and calcium-dependent inactivation in high voltage-gated Ca(2+) channels
- Source :
- Progress in biophysics and molecular biology. 90(1-3)
- Publication Year :
- 2005
-
Abstract
- Calcium influx into cardiac myocytes via voltage-gated Ca channels is a key step in initiating the contractile response. During prolonged depolarizations, toxic Ca(2+) overload is prevented by channel inactivation occurring through two different processes identified by their primary trigger: voltage or intracellular Ca(2+). In physiological situations, cardiac L-type (Ca(V)1.2) Ca(2+) channels inactivate primarily via Ca(2+)-dependent inactivation (CDI), while neuronal P/Q (Ca(V)2.1) Ca(2+) channels use preferentially voltage-dependent inactivation (VDI). In certain situations however, these two types of channels have been shown to be able to inactivate by both processes. From a structural view point, the rearrangement occurring during CDI and VDI is not precisely known, but functional studies have underlined the role played by at least 2 channel sequences: a C-terminal binding site for the Ca(2+) sensor calmodulin, essential for CDI, and the loop connecting domains I and II, essential for VDI. The conserved regulation of VDI and CDI by the auxiliary channel beta subunit strongly suggests that these two mechanisms may use a set of common protein-protein interactions that are influenced by the auxiliary subunit. We will review our current knowledge of these interactions. New data are presented on L-P/Q (Ca(V)1.2/Ca(V)2.1) channel chimera that confirm the role of the I-II loop in VDI and CDI, and reveal some of the essential steps in Ca(2+) channel inactivation.
- Subjects :
- Calmodulin
Calcium Channels, L-Type
Protein subunit
Molecular Sequence Data
Biophysics
In Vitro Techniques
Models, Biological
Membrane Potentials
Xenopus laevis
Myocyte
Animals
Myocytes, Cardiac
Amino Acid Sequence
Binding site
Molecular Biology
biology
Voltage-dependent calcium channel
Chemistry
High voltage
Calcium dependent
Biochemistry
biology.protein
Oocytes
Calcium
Female
Ion Channel Gating
Intracellular
Subjects
Details
- ISSN :
- 00796107
- Volume :
- 90
- Issue :
- 1-3
- Database :
- OpenAIRE
- Journal :
- Progress in biophysics and molecular biology
- Accession number :
- edsair.doi.dedup.....1cc30f19e341ad1c66e837da609d56cc