REGULATION OF SCALLOP MYOSIN BY MUTANT REGULATORY LIGHT-CHAINS

被引:35
作者
GOODWIN, EB
LEINWAND, LA
SZENTGYORGYI, AG
机构
[1] BRANDEIS UNIV, DEPT BIOL, WALTHAM, MA 02254 USA
[2] YESHIVA UNIV ALBERT EINSTEIN COLL MED, DEPT MICROBIOL & IMMUNOL, BRONX, NY 10461 USA
[3] YESHIVA UNIV ALBERT EINSTEIN COLL MED, DEPT GENET, BRONX, NY 10461 USA
关键词
D O I
10.1016/S0022-2836(05)80062-2
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Scallop adductor myosin is regulated by its subunits; the regulatory light chain (R-LC) and essential light chain (E-LC). Myosin light chains suppress muscle activity in the absence of calcium and are responsible for relaxation. The binding of Ca2+ to the myosin triggers contraction by releasing the inhibition imposed on myosin by the light chains. To map the functional domains of the R-LC, we have carried out mutagenesis followed by bacterial expression. Both wild-type and mutant proteins were hybridized to scallop myosin heavy chain/E-LC to map the regions of the light chain that are responsible for the binding to the myosin heavy chain/E-LC, for restoring the specific calcium-binding site, and controlling the myosin ATPase activity. The R-LC is expressed in Escherichia coli using the pKK223-3 (Pharmacia) expression vector and has been purified to greater than 90% purity. E. coli-expressed wild-type R-LC differs from the native R-LC by having the initiating methionine residue and an unblocked NH2 terminus. The wild-type R-LC restores Ca2+ binding and Ca2+ sensitivity when hybridized to scallop myosin. A point mutation of the sixth Ca2+-liganding position of domain I (Asp39 → Ala39) results in a R-LC that binds more weakly to the heavy chain/E-LC and restores the specific Ca2+-binding site but not regulation of the actin-activated Mg2+ ATPase. A second mutation was produced by substituting the last 11 residues of the COOH terminus with 15 different residues. This mutant restores the specific Ca2+-binding site, but does not restore Ca2+ regulation to the actin-activated ATPase activity. Several other point mutations do not alter light chain function. The experiments directly establish that the divalent cation-binding site of domain I is functionally distinct from the specific Ca2+-binding site. The results indicate that an intact domain I and the COOH terminus are required to suppress the myosin ATPase activity. The fact that the domain I mutation and the COOH-terminal mutation disrupt regulation but do not affect Ca2+-binding indicates that these two aspects of regulation are separable and, therefore, the R-LC has distinct functional regions. © 1990 Academic Press Limited.
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页码:85 / 93
页数:9
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