TY - JOUR
T1 - Negative control mechanism with features of adaptation controls Ca2+ release in cardiac myocytes
AU - Yasui, K.
AU - Palade, P.
AU - Györke, S.
N1 - Funding Information:
We thank Drs. 0. Hamill, M. Brodwick, and M. Fill for reading the manu- script. FPL 64176 was a generous gift from Fisons Pharmaceuticals, Leicestershire, England. This work was supported by grants from the American Heart Association (S. Gyorke) and National Institutes of Health (P. Palade, grant no. HL 42527) and by Japan Heart Foundation in the form of an International Re- search Fellowship (K. Yasui).
PY - 1994
Y1 - 1994
N2 - The central paradox of cardiac excitation-contraction coupling is that Ca(2+)-induced Ca2+ release (CICR), an inherently self-regenerating process, is finely graded by surface membrane Ca2+ current (ICa). By using FPL64176, a novel Ca2+ channel agonist that reduces inactivation of ICa, a rapid negative control mechanism was unmasked at the Ca2+ release level in isolated rat ventricular myocytes. This mechanism terminates CICR independently of the duration of trigger ICa and before the sarcoplasmic reticulum becomes depleted of Ca2+. In its ability to be reactivated by incremental increases in trigger ICa, this mechanism differs from conventional inactivation/desensitization and is similar to the mechanism of increment detection or adaptation described for intracellular Ca2+ release channels. These results indicate that ryanodine receptor adaptation regulates Ca2+ release in cardiac muscle, accounting for or contributing to the graded nature of CICR and, additionally, permitting stores to reload at later times during Ca2+ entry.
AB - The central paradox of cardiac excitation-contraction coupling is that Ca(2+)-induced Ca2+ release (CICR), an inherently self-regenerating process, is finely graded by surface membrane Ca2+ current (ICa). By using FPL64176, a novel Ca2+ channel agonist that reduces inactivation of ICa, a rapid negative control mechanism was unmasked at the Ca2+ release level in isolated rat ventricular myocytes. This mechanism terminates CICR independently of the duration of trigger ICa and before the sarcoplasmic reticulum becomes depleted of Ca2+. In its ability to be reactivated by incremental increases in trigger ICa, this mechanism differs from conventional inactivation/desensitization and is similar to the mechanism of increment detection or adaptation described for intracellular Ca2+ release channels. These results indicate that ryanodine receptor adaptation regulates Ca2+ release in cardiac muscle, accounting for or contributing to the graded nature of CICR and, additionally, permitting stores to reload at later times during Ca2+ entry.
UR - https://www.scopus.com/pages/publications/0028321797
U2 - 10.1016/S0006-3495(94)80501-6
DO - 10.1016/S0006-3495(94)80501-6
M3 - Article
C2 - 7919019
AN - SCOPUS:0028321797
SN - 0006-3495
VL - 67
SP - 457
EP - 460
JO - Biophysical Journal
JF - Biophysical Journal
IS - 1
ER -