EXCITATION–CONTRACTION COUPLING FROM THE 1950s INTO THE NEW MILLENNIUM
- 10 August 2006
- journal article
- review article
- Published by Wiley in Clinical and Experimental Pharmacology and Physiology
- Vol. 33 (9) , 763-772
- https://doi.org/10.1111/j.1440-1681.2006.04441.x
Abstract
SUMMARY: Excitation–contraction coupling is broadly defined as the process linking the action potential to contraction in striated muscle or, more narrowly, as the process coupling surface membrane depolarization to Ca2+ release from the sarcoplasmic reticulum. We now know that excitation–contraction coupling depends on a macromolecular protein complex or ‘calcium release unit’. The complex extends the extracellular space within the transverse tubule invaginations of the surface membrane, across the transverse tubule membrane into the cytoplasm and then across the sarcoplasmic reticulum membrane and into the lumen of the sarcoplasmic reticulum. The central element of the macromolecular complex is the ryanodine receptor calcium release channel in the sarcoplasmic reticulum membrane. The ryanodine receptor has recruited a surface membrane L‐type calcium channel as a ‘voltage sensor’ to detect the action potential and the calcium‐binding protein calsequestrin to detect in the environment within the sarcoplasmic reticulum. Consequently, the calcium release channel is able to respond to surface depolarization in a manner that depends on the Ca2+ load within the calcium store. The molecular components of the ‘calcium release unit’ are the same in skeletal and cardiac muscle. However, the mechanism of excitation–contraction coupling is different. The signal from the voltage sensor to ryanodine receptor is chemical in the heart, depending on an influx of external Ca2+ through the surface calcium channel. In contrast, conformational coupling links the voltage sensor and the ryanodine receptor in skeletal muscle. Our current understanding of this amazingly efficient molecular signal transduction machine has evolved over the past 50 years. None of the proteins had been identified in the 1950s; indeed, there was debate about whether the molecules involved were, in fact, protein. Nevertheless, a multitude of questions about the molecular interactions and structures of the proteins and their interaction sites remain to be answered and provide a challenge for the next 50 years.Keywords
This publication has 84 references indexed in Scilit:
- Physical Coupling between Ryanodine Receptor–Calcium Release ChannelsJournal of Molecular Biology, 2005
- The interplay between structure and function in intrinsically unstructured proteinsFEBS Letters, 2005
- Structure of Ca2+ Release Channel at 14Å ResolutionJournal of Molecular Biology, 2005
- Location of Divergent Region 2 on the Three-dimensional Structure of Cardiac Muscle Ryanodine Receptor/Calcium Release ChannelJournal of Molecular Biology, 2004
- Protein Kinase A Phosphorylation of the Cardiac Calcium Release Channel (Ryanodine Receptor) in Normal and Failing HeartsJournal of Biological Chemistry, 2003
- Identification of Calcium Release-triggering and Blocking Regions of the II-III Loop of the Skeletal Muscle Dihydropyridine ReceptorPublished by Elsevier ,1995
- Regions of the skeletal muscle dihydropyridine receptor critical for excitation–contraction couplingNature, 1990
- Subunit structure and localization of dihydropyridine-sensitive calcium channels in mammalian brain, spinal cord, and retinaNeuron, 1990
- Sarcoplasmic reticulum contains adenine nucleotide-activated calcium channelsNature, 1985
- Distribution of potassium and chloride permeability over the surface and T-tubule membranes of mammalian skeletal muscleThe Journal of Membrane Biology, 1979