Limas C J
Biochem J. 1980 Dec 15;192(3):867-72. doi: 10.1042/bj1920867.
Phosphorylation of cardiac sarcoplasmic reticulum by cyclic AMP-dependent protein kinase results in enhanced Ca2+ transport even though Ca2+-dependent ATPase is not a substrate for the kinase. The mechanisms involved in this enhancement are not clear. In the present study, we used the reactivity of sulphydryl groups in the Ca2+-dependent ATPase as an index of conformational change during the Ca2+ transport cycle and examined the effects of protein kinase-catalysed phosphorylation. N-Ethylmaleimide alkylation allowed the distinction of several thiol groups with variable functional significance for the ATPase. A sulphydryl group involved in the formation of the phosphorylated intermediate (EP) of the Ca2+-dependent ATPase was protected by adenosine 5'-[beta, gamma-imido]triphosphate. Reactivity of an additional thiol group was related to EP dephosphorylation and was dependent on Ca2+. The Ca2+ concentration for change in the reactivity of this sulphydryl group and ATPase inhibition occurred within the range for Ca2+ binding to the high-affinity sites. Phosphorylation of cardiac sarcoplasmic reticulum by cyclic AMP-dependent protein kinase resulted in decreased N-ethyl[1-14C]-maleimide binding and the ATPase inhibition; the thiol groups involved in EP dephosphorylation were selectively protected. The results indicate that protein kinase-catalysed phosphorylation results in conformational changes of the ATPase, which renders certain thiol groups inaccessible to N-ethylmaleimide. This conformational change may facilitate functional movements involved in Ca2+ transport.
环磷酸腺苷依赖性蛋白激酶对心肌肌浆网的磷酸化作用可导致钙离子转运增强,尽管钙离子依赖性ATP酶不是该激酶的底物。这种增强作用所涉及的机制尚不清楚。在本研究中,我们将钙离子依赖性ATP酶中巯基的反应性作为钙离子转运循环中构象变化的指标,并研究了蛋白激酶催化的磷酸化作用的影响。N-乙基马来酰亚胺烷基化能够区分对ATP酶具有不同功能意义的几个巯基。参与钙离子依赖性ATP酶磷酸化中间体(EP)形成的一个巯基受到腺苷5'-[β,γ-亚氨基]三磷酸的保护。另一个巯基的反应性与EP的去磷酸化有关,并且依赖于钙离子。该巯基反应性变化和ATP酶抑制作用的钙离子浓度发生在钙离子与高亲和力位点结合的范围内。环磷酸腺苷依赖性蛋白激酶对心肌肌浆网的磷酸化作用导致N-乙基[1-14C]-马来酰亚胺结合减少以及ATP酶抑制;参与EP去磷酸化的巯基被选择性保护。结果表明,蛋白激酶催化的磷酸化作用导致ATP酶的构象变化,使得某些巯基无法与N-乙基马来酰亚胺接触。这种构象变化可能有助于钙离子转运过程中涉及的功能运动。