Kinetics studies of the cardiac Ca-ATPase expressed in Sf21 cells: new insights on Ca-ATPase regulation by phospholamban.
Kinetics studies of the cardiac Ca-ATPase expressed in Sf21 cells: new insights on Ca-ATPase regulation by phospholamban.
复制标题
Sf21 细胞中表达的心脏 Ca-ATP 酶的动力学研究:受磷蛋白调节 Ca-ATP 酶的新见解。
DOI:
10.1016/s0006-3495(00)76686-0
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发表时间:
2000
影响因子:
3.4
通讯作者:
Jones,LR
中科院分区:
文献类型:
--
作者:
Mahaney,JE;Autry,JM;Jones,LR
Kinetics studies of the cardiac Ca-ATPase expressed in Sf21 cells (Spodoptera frugiperdainsect cells) have been carried out to test the hypotheses that phospholamban inhibits Ca-ATPase cycling by decreasing the rate of the E1·Ca to E1′·Ca transition and/or the rate of phosphoenzyme hydrolysis. Three sample types were studied: Ca-ATPase expressed alone, Ca-ATPase coexpressed with wild-type phospholamban (the natural pentameric inhibitor), and Ca-ATPase coexpressed with the L37A-phospholamban mutant (a more potent monomeric inhibitor, in which Leu37is replaced by Ala). Phospholamban coupling to the Ca-ATPase was controlled using a monoclonal antibody against phospholamban. Gel electrophoresis and immunoblotting confirmed an equivalent ratio of Ca-ATPase and phospholamban in each sample (1mol Ca-ATPase to 1.5mol phospholamban). Steady-state ATPase activity assays at 37°C, using 5mM MgATP, showed that the phospholamban-containing samples had nearly equivalent maximum activity (∼0.75μmol·nmol Ca-ATPase−1·min−1at 15μM Ca2+), but that wild-type phospholamban and L37A-phospholamban increased the Ca-ATPaseKCavalues by 200 nM and 400 nM, respectively. When steady-state Ca-ATPase phosphoenzyme levels were measured at 0°C, using 1μM MgATP, theKCavalues also shifted by 200 nM and 400 nM, respectively, similar to the results obtained by measuring ATP hydrolysis at 37°C. Measurements of the time course of phosphoenzyme formation at 0°C, using 1μM MgATP and 268 nM ionized [Ca2+], indicated that L37A-phospholamban decreased the steady-state phosphoenzyme level to a greater extent (45%) than did wild-type phospholamban (33%), but neither wild-type nor L37A-phospholamban had any effect on the apparent rate of phosphoenzyme formation relative to that of Ca-ATPase expressed alone. Measurements of inorganic phosphate (Pi) release concomitant with the phosphoenzyme formation studies showed that L37A-phospholamban decreased the steady-state rate of Pirelease to a greater extent (45%) than did wild-type phospholamban (33%). However, independent measurements of Ca-ATPase dephosphorylation after the addition of 5mM EGTA to the phosphorylated enzyme showed that neither wild-type phospholamban nor L37A-phospholamban had any effect on the rate of phosphoenzyme decay relative to Ca-ATPase expressed alone. Computer simulation of the kinetics data indicated that phospholamban and L37A-phospholamban decreased twofold and fourfold, respectively, the equilibrium binding of the first Ca2+ion to the Ca-ATPase E1 intermediate, rather than inhibiting rate of the E·Ca to E′·Ca transition or the rate of phosphoenzyme decay. Therefore, we conclude that phospholamban inhibits Ca-ATPase cycling by decreasing Ca-ATPase Ca2+binding to the E1 intermediate.