Flexibility of myosin-subfragment-1 in its complex with actin as revealed by fluorescence resonance energy transfer

被引:16
作者
Nyitrai, M
Hild, G
Bódis, E
Lukács, A
Somogyi, B
机构
[1] Univ Pecs, Fac Med, Dept Biophys, H-7624 Pecs, Hungary
[2] Hungarian Acad Sci, Res Grp, H-1051 Budapest, Hungary
来源
EUROPEAN JOURNAL OF BIOCHEMISTRY | 2000年 / 267卷 / 14期
关键词
muscle; protein dynamics; fluorescence spectroscopy; temperature dependence;
D O I
10.1046/j.1432-1327.2000.01461.x
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
The flexibility of the acto-myosin complex in rigor conditions was characterized by measuring the temperature profile of normalized fluorescence resonance energy transfer efficiency, f' [Somogyi, B., Matko, J., Papp, S., Hevessy, J., Welch, G.R. & Damjanovich, S. (1984) Biochemistry 23, 3403-3411]. Fluorescence acceptors were introduced to the Cys374 residues of actin and the donors were covalently attached either to Cys707 in the catalytic domain or to Cys177 in the essential light-chain of myosin S1. Fluorescence resonance energy transfer measurements revealed that the protein matrix between Cys374 of actin and Cys707 of S1 is rigid. In contrast, the link between the catalytic and light-chain-binding domains in myosin S1 is flexible. We have recently shown that the positional distribution of Cys707 was narrow relative to the actin filament, while that of the Cys177 was broad. Accordingly, the broad positional distribution of Cys177 is likely to be due to the large flexibility of the link between the catalytic and light-chain-binding domains. This flexibility is probably essential for the interdomain reorganization of the myosin head during the force generation process and for accommodating the symmetry difference between actin and myosin filaments to allow the formation of cross-bridges.
引用
收藏
页码:4334 / 4338
页数:5
相关论文
共 30 条
[1]   Independent mobility of catalytic and regulatory domains of myosin heads [J].
Adhikari, B ;
Hideg, K ;
Fajer, PG .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1997, 94 (18) :9643-9647
[2]   THE MECHANISM OF MUSCLE-CONTRACTION [J].
COOKE, R .
CRC CRITICAL REVIEWS IN BIOCHEMISTRY, 1986, 21 (01) :53-118
[3]   FLUORESCENCE RESONANCE ENERGY-TRANSFER SPECTROSCOPY IS A RELIABLE RULER FOR MEASURING STRUCTURAL-CHANGES IN PROTEINS - DISPELLING THE PROBLEM OF THE UNKNOWN ORIENTATION FACTOR [J].
DOSREMEDIOS, CG ;
MOENS, PDJ .
JOURNAL OF STRUCTURAL BIOLOGY, 1995, 115 (02) :175-185
[4]  
Feuer G., 1948, HUNGARICA ACTA PHYSIOL, V1, P150
[5]  
Fiske CH, 1925, J BIOL CHEM, V66, P375
[6]   Structural mechanism of muscle contraction [J].
Geeves, MA ;
Holmes, KC .
ANNUAL REVIEW OF BIOCHEMISTRY, 1999, 68 :687-728
[7]   USE OF NONSPECIFIC DYE LABELING FOR SINGLET ENERGY-TRANSFER MEASUREMENTS IN COMPLEX SYSTEMS - SIMPLE MODEL [J].
GENNIS, RB ;
CANTOR, CR .
BIOCHEMISTRY, 1972, 11 (13) :2509-+
[8]   ATOMIC MODEL OF THE ACTIN FILAMENT [J].
HOLMES, KC ;
POPP, D ;
GEBHARD, W ;
KABSCH, W .
NATURE, 1990, 347 (6288) :44-49
[9]  
HOLMES KC, 1997, CURR BIOL, V7, P112
[10]   MEASUREMENT OF ACTIN CONCENTRATION IN SOLUTION - COMPARISON OF METHODS [J].
HOUK, TW ;
UE, K .
ANALYTICAL BIOCHEMISTRY, 1974, 62 (01) :66-74