ArticlePhysiological reports2024
Decoupling of muscle-tendon unit and fascicle velocity contributes to the in vivo stretch-shortening cycle effect in the male human triceps surae muscle.
Article in Physiological reports, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed.
- Effects of Knee Sleeve Density on Theoretical Neuromuscular Capacities Derived from the Force-Velocity-Power Profile in the Back Squat.Journal of functional morphology and kinesiology · 2026Article
- Maximal eccentric-concentric strength determines stretch-shortening cycle leg power across biological sexes.Scientific reports · 2026Article
- Effects of an eight-week French contrast training program on lower-limb explosive power, acceleration, and muscle strength in male college badminton players.Frontiers in physiology · 2026Article
- Effect of resistance training on kinetic and kinematic indicators in jump athletes: a systematic review.BMC sports science, medicine & rehabilitation · 2025Article
- The stretch-shortening cycle effect is not associated with cortical or spinal excitability modulations.The Journal of physiology · 2025Article
- Modulation of stretch activation influences the stretch-shortening cycle effect in in vivo human knee extensors.Physiological reports · 2025Article
- Decoupling of muscle-tendon unit and fascicle velocity contributes to the in vivo stretch-shortening cycle effect in the male human triceps surae muscle.Physiological reports · 2024Article
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5 authors.
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Abstract
During the shortening of stretch-shortening cycles (SSCs), muscle force output is enhanced compared with pure shortening (SHO), referred to as the SSC-effect. In general, muscle-tendon unit (MTU), muscle belly, muscle fascicle, and tendon length changes can be decoupled during contraction, which affects force generation and elastic recoil. We researched whether MTU decoupling contributes to the SSC-effect. Participants performed electrically stimulated submaximal fixed-end, SSC, and SHO plantar-flexions on a dynamometer at two velocities (40, 120°/s) and two ranges of motion (15, 25°). Fascicle and tendon length changes of the gastrocnemius medialis, and ankle joint kinematics were assessed by ultrasound and motion capture, respectively. During SSC shortening, ankle joint torque and work, MTU force and work, and fascicle force were increased by 12%-22% compared with SHO, confirming a SSC-effect. Further, fascicle length change and velocity during SSCs were significantly reduced compared with SHO condition, and SSC fascicle work was decreased by ~35%. Our results indicate that MTU decoupling leads to a reduction in fascicle shortening amplitude and velocity, thereby increasing the muscle's force capacity while reducing its work output during SSC shortening. MTU decoupling therefore contributes to the SSC-effect and underlines the limited transferability of joint work measurements to estimated muscle work.
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