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Consecutive SSCs increase the SSC effect in skinned rat muscle fibres

Tobias Elst; Sven Weidner; André Tomalka; Daniel Hahn; Florian Kurt Paternoster; Wolfgang Seiberl; Tobias Siebert
Pflügers Archiv - European Journal of Physiology · Vol. 477, Issue 6 · pp. 873-888 · 2025

Abstract

Muscle function is essential for generating force and movement, with stretch–shortening cycles (SSCs) playing a fundamental role in the economy of everyday locomotion. Compared with pure shortening contractions, the SSC effect is characterised by increased force, work, and power output during the SSC shortening phase. Few studies have investigated whether SSC effects transfer across consecutive SSCs. Therefore, we investigated SSC effects over three consecutive SSCs in skinned rat muscle fibres by analysing the isometric force immediately before stretch onset ( F onset ), the peak force at the end of stretching ( F peak ), and the minimum force at the end of shortening ( F min ), along with mechanical ( Work SSC ) and shortening work ( Work SHO ) at different activation levels (20%, 60%, and 100%). Each SSC was followed by an isometric hold phase, allowing force to return to a steady state. Results indicated an increase in both F peak (20.3%) and Work SSC (60.9%) from SSC1 to SSC3 across all activation levels tested. At 20% and 60% activation, F onset , F min , and Work SHO increased (range: 4.5–28.5%) from SSC1 to SSC3. However, at 100% activation, F onset and Work SHO remained unchanged, while F min decreased (− 8.5%) from SSC1 to SSC3. These results suggest that the increase in SSC effects at submaximal activation may be primarily due to increased cross-bridge forces. The absence of increases in F onset , F min , and Work SHO at 100% activation suggests that increases in F peak and Work SSC may not be attributed to increased cross-bridge force but could instead be caused by additional effects, possibly involving modulation of non-cross-bridge structures, likely titin, and their stiffness.

Bibliographic Information

JournalPflügers Archiv - European Journal of Physiology
PublisherSpringer
Publication Date2025-06-01
Publication Year2025
Volume477
Issue6
Pages873-888
Document TypeJournal Article
Print ISSN0031-6768
eISSN1432-2013
DOI10.1007/s00424-025-03088-2

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NARA Access Coverage1868-01-01~Current
Journal Homepagehttps://www.springer.com/journal/424
Publisher PageOpen Publisher Page
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