Orientational changes of crossbridges during single turnover of ATP

被引:15
作者
Borejdo, J [1 ]
Akopova, I [1 ]
机构
[1] Univ N Texas, Hlth Sci Ctr, Dept Mol Biol & Immunol, Ft Worth, TX 76107 USA
关键词
D O I
10.1016/S0006-3495(03)75049-8
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Muscle contraction results from rotation of actin-bound myosin crossbridges. Crossbridges consist of the globular N-terminal catalytic domain and the alpha-helical C-terminal regulatory domain containing the essential and regulatory light chains. The essential light chain exists in two isoforms, of which the larger one has a 41-amino acid extension piece added at the N-terminus. The catalytic domain is responsible for binding to actin and for setting the stage for the main force-generating event, which is a "swing" of the regulatory domain. We measured the kinetics of the swing associated with the turnover of a single molecule of ATP. Muscle was labeled at the regulatory domain by replacing native essential or regulatory light chain with fluorescent adducts. The rotations were measured by the anisotropy of fluorescence originating from similar to400 crossbridges residing in a small volume defined by a confocal aperture of a microscope. The crossbridges; were synchronized by rapid photogeneration of a stoichiometric amount of ATP. The rotations reflected dissociation from thin filaments followed by a slow reattachment. The dissociation was the same for each light chain (halftime similar to120 ms) but the rate of reattachment depended on the type of light chain. The halftimes were 920 +/- 50 ms and 660 +/- 100 ms for isoforms 1 and 3 of the essential light chain, respectively. The reason that the lifetimes were so long was creation of a small amount of ATP, enough only for a single turnover of crossbridges. A model was constructed that quantitized this effect. After accounting for the slowdown, the halftimes of dissociation and attachment were 34 and 200 ms, respectively.
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页码:2450 / 2459
页数:10
相关论文
共 38 条
[1]   Orientation changes in myosin regulatory light chains following photorelease of ATP in skinned muscle fibers [J].
Allen, TS ;
Ling, N ;
Irving, M ;
Goldman, YE .
BIOPHYSICAL JOURNAL, 1996, 70 (04) :1847-1862
[2]  
Amdur I., 1966, Chemical Kinetics: Principles and Selected Topics
[3]   Interaction of the N-terminus of chicken skeletal essential light chain 1 with F-Actin [J].
Andreev, OA ;
Saraswat, LD ;
Lowey, S ;
Slaughter, C ;
Borejdo, J .
BIOCHEMISTRY, 1999, 38 (08) :2480-2485
[4]   2 DIFFERENT RIGOR COMPLEXES OF MYOSIN SUBFRAGMENT-1 AND ACTIN [J].
ANDREEV, OA ;
ANDREEVA, AL ;
MARKIN, VS ;
BOREJDO, J .
BIOCHEMISTRY, 1993, 32 (45) :12046-12053
[5]   CARBOCYANINE DYE ORIENTATION IN RED-CELL MEMBRANE STUDIED BY MICROSCOPIC FLUORESCENCE POLARIZATION [J].
AXELROD, D .
BIOPHYSICAL JOURNAL, 1979, 26 (03) :557-573
[6]  
BAGSHAW CR, 1982, MUSCLE CONTRACTION
[7]   FLUCTUATIONS IN TENSION DURING CONTRACTION OF SINGLE MUSCLE-FIBERS [J].
BOREJDO, J ;
MORALES, MF .
BIOPHYSICAL JOURNAL, 1977, 20 (03) :315-334
[8]   Regulatory and essential light chains of myosin rotate equally during contraction of skeletal muscle [J].
Borejdo, J ;
Ushakov, DS ;
Akopova, I .
BIOPHYSICAL JOURNAL, 2002, 82 (06) :3150-3159
[9]   The power stroke causes changes in the orientation and mobility of the termini of essential light chain 1 of myosin [J].
Borejdo, J ;
Ushakov, DS ;
Moreland, R ;
Akopova, I ;
Reshetnyak, Y ;
Saraswat, LD ;
Kamm, K ;
Lowey, S .
BIOCHEMISTRY, 2001, 40 (13) :3796-3803
[10]  
BOROVIKOV YS, 1991, GEN PHYSIOL BIOPHYS, V10, P441