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Trading force for speed: Why superfast crossbridge kinetics leads to superlow forces
Author(s) -
Lawrence C. Rome,
Chris Cook,
Douglas A. Syme,
Martin A. Connaughton,
Miriam A. AshleyRoss,
A. A. Klimov,
Boris A. Tikunov,
Yale E. Goldman
Publication year - 1999
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.96.10.5826
Subject(s) - crossbridge , toadfish , biophysics , kinetics , byssus , muscle contraction , contraction (grammar) , chemistry , anatomy , biology , physics , fish <actinopterygii> , ecology , classical mechanics , mussel , fishery , endocrinology
Superfast muscles power high-frequency motions such as sound production and visual tracking. As a class, these muscles also generate low forces. Using the toadfish swimbladder muscle, the fastest known vertebrate muscle, we examined the crossbridge kinetic rates responsible for high contraction rates and how these might affect force generation. Swimbladder fibers have evolved a 10-fold faster crossbridge detachment rate than fast-twitch locomotory fibers, but surprisingly the crossbridge attachment rate has remained unchanged. These kinetics result in very few crossbridges being attached during contraction of superfast fibers (only approximately 1/6 of that in locomotory fibers) and thus low force. This imbalance between attachment and detachment rates is likely to be a general mechanism that imposes a tradeoff of force for speed in all superfast fibers.

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