Structural and Functional Insights on the Myosin Superfamily

被引:39
作者
Syamaladevi, Divya P. [1 ,2 ]
Spudich, James A. [1 ,3 ]
Sowdhamini, R. [1 ]
机构
[1] NCBS, TIFR, GKVK Campus,Bellary Rd, Bangalore, Karnataka, India
[2] SBI, ICAR, Coimbatore, Tamil Nadu, India
[3] Stanford Univ, Dept Biochem, Stanford, CA 94305 USA
关键词
myosin structure; myosin domain architecture; coiled coil;
D O I
10.4137/BBI.S8451
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The myosin superfamily is a versatile group of molecular motors involved in the transport of specific biomolecules, vesicles and organelles in eukaryotic cells. The processivity of myosins along an actin filament and transport of intracellular 'cargo' are achieved by generating physical force from chemical energy of ATP followed by appropriate conformational changes. The typical myosin has a head domain, which harbors an ATP binding site, an actin binding site, and a light-chain bound 'lever arm', followed often by a coiled coil domain and a cargo binding domain. Evolution of myosins started at the point of evolution of eukaryotes, S. cerevisiae being the simplest one known to contain these molecular motors. The coiled coil domain of the myosin classes II, V and VI in whole genomes of several model organisms display differences in the length and the strength of interactions at the coiled coil interface. Myosin II sequences have long-length coiled coil regions that are predicted to have a highly stable dimeric interface. These are interrupted, however, by regions that are predicted to be unstable, indicating possibilities of alternate conformations, associations to make thick filaments, and interactions with other molecules. Myosin V sequences retain intermittent regions of strong and weak interactions, whereas myosin VI sequences are relatively devoid of strong coiled coil motifs. Structural deviations at coiled coil regions could be important for carrying out normal biological function of these proteins.
引用
收藏
页码:11 / 21
页数:11
相关论文
共 67 条
[61]   SOCKET: A program for identifying and analysing coiled-coil motifs within protein structures [J].
Walshaw, J ;
Woolfson, DN .
JOURNAL OF MOLECULAR BIOLOGY, 2001, 307 (05) :1427-1450
[62]   MYOSIN STRUCTURE AND FUNCTION IN CELL MOTILITY [J].
WARRICK, HM ;
SPUDICH, JA .
ANNUAL REVIEW OF CELL BIOLOGY, 1987, 3 :379-421
[63]   Myosin VI is an actin-based motor that moves backwards [J].
Wells, AL ;
Lin, AW ;
Chen, LQ ;
Safer, D ;
Cain, SM ;
Hasson, T ;
Carragher, BI ;
Milligan, RA ;
Sweeney, HL .
NATURE, 1999, 401 (6752) :505-508
[64]   PDZRhoGEF and myosin II localize RhoA activity to the back of polarizing neutrophil-like cells [J].
Wong, Kit ;
Van Keymeulen, Alexandra ;
Bourne, Henry R. .
JOURNAL OF CELL BIOLOGY, 2007, 179 (06) :1141-1148
[65]   Redistribution of myosin VI from top to base of proximal tubule microvilli during acute hypertension [J].
Yang, LE ;
Maunsbach, AB ;
Leong, PKK ;
McDonough, AA .
JOURNAL OF THE AMERICAN SOCIETY OF NEPHROLOGY, 2005, 16 (10) :2890-2896
[66]   Myosin V orientates the mitotic spindle in yeast [J].
Yin, HW ;
Pruyne, D ;
Huffaker, TC ;
Bretscher, A .
NATURE, 2000, 406 (6799) :1013-1015
[67]   Myosin VI Undergoes Cargo-Mediated Dimerization [J].
Yu, Cong ;
Feng, Wei ;
Wei, Zhiyi ;
Miyanoiri, Yohei ;
Wen, Wenyu ;
Zhao, Yanxiang ;
Zhang, Mingjie .
CELL, 2009, 138 (03) :537-548