Literature DB >> 25147246

Titin force is enhanced in actively stretched skeletal muscle.

Krysta Powers1, Gudrun Schappacher-Tilp2, Azim Jinha1, Tim Leonard1, Kiisa Nishikawa3, Walter Herzog4.   

Abstract

The sliding filament theory of muscle contraction is widely accepted as the means by which muscles generate force during activation. Within the constraints of this theory, isometric, steady-state force produced during muscle activation is proportional to the amount of filament overlap. Previous studies from our laboratory demonstrated enhanced titin-based force in myofibrils that were actively stretched to lengths which exceeded filament overlap. This observation cannot be explained by the sliding filament theory. The aim of the present study was to further investigate the enhanced state of titin during active stretch. Specifically, we confirm that this enhanced state of force is observed in a mouse model and quantify the contribution of calcium to this force. Titin-based force was increased by up to four times that of passive force during active stretch of isolated myofibrils. Enhanced titin-based force has now been demonstrated in two distinct animal models, suggesting that modulation of titin-based force during active stretch is an inherent property of skeletal muscle. Our results also demonstrated that 15% of the enhanced state of titin can be attributed to direct calcium effects on the protein, presumably a stiffening of the protein upon calcium binding to the E-rich region of the PEVK segment and selected Ig domain segments. We suggest that the remaining unexplained 85% of this extra force results from titin binding to the thin filament. With this enhanced force confirmed in the mouse model, future studies will aim to elucidate the proposed titin-thin filament interaction in actively stretched sarcomeres.
© 2014. Published by The Company of Biologists Ltd.

Entities:  

Keywords:  Cross-bridge theory; Eccentric contractions; Force enhancement; Skeletal muscle; Titin

Mesh:

Substances:

Year:  2014        PMID: 25147246     DOI: 10.1242/jeb.105361

Source DB:  PubMed          Journal:  J Exp Biol        ISSN: 0022-0949            Impact factor:   3.312


  35 in total

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10.  Differences in stability and calcium sensitivity of the Ig domains in titin's N2A region.

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