Differential neuromuscular adaptations following multi-joint vs single-joint resistance exercise training

Monte, A orcid iconORCID: 0000-0001-6604-2658, Baltzopoulos, V orcid iconORCID: 0000-0003-2050-9501, Zamparo, P, Clarck, D, Lucietto, N and Maganaris, CN orcid iconORCID: 0000-0002-1786-8047 (2026) Differential neuromuscular adaptations following multi-joint vs single-joint resistance exercise training. European Journal of Applied Physiology. pp. 1-13. ISSN 1439-6319

[thumbnail of Differential neuromuscular adaptations following multi-joint vs single-joint resistance exercise training.pdf]
Preview
Text
Differential neuromuscular adaptations following multi-joint vs single-joint resistance exercise training.pdf - Published Version
Available under License Creative Commons Attribution.

Download (1MB) | Preview

Abstract

We combined ultrasound, EMG and dynamometry measurements to establish differences in neuromechanical adaptations following two resistance training programs of equal training volume, one involving a multi-joint exercise and the second a single-joint exercise. Twenty-four participants were divided into a squat group (SQG) and a leg extension group (LEG). Both groups performed ten weeks of training. Before and after the training protocol, muscle architecture of the knee extensors was quantified in vivo using an ultrasound apparatus. The vastus lateralis (VL) torque-fascicle length relationship was also obtained. The maximum isometric torque (Tmax), the maximum EMG activity and the optimal VL fascicle length (L<inf>0</inf>) were determined. A significant increase in 1RM (P < 0.001) was observed in both groups post-training. Muscle thickness increased in both groups (P = 0.008 and P < 0.001 LEG and SQG, respectively), but the increase was greater in SQG than LEG (P = 0.031). Both groups showed significant changes in Tmax (P = 0.0084 and P = 0.0044 for LEG and SQG, respectively) and the improvement in T<inf>max</inf> was larger (P = 0.041) for SQG (+ 14%) than LEG (+ 10%). Pennation angle, fascicle length and VL L<inf>0</inf> increased post-training in SQG only. A transfer effect of 1RM was observed in both groups: SQG improved the leg extension 1RM by about 16%, whereas LEG increased the squat 1RM by about 9%; SQG showed a larger strength improvement transfer than LEG (P = 0.037). Due to the high knee torque required to maintain a given external load, squat exercise training may be more effective than the leg-extension setup used in the present study in eliciting neuromuscular adaptations.

Item Type: Article
Uncontrolled Keywords: EMG; F-L relationship; Knee extensors; Muscle architecture; 42 Health Sciences; 4207 Sports Science and Exercise; Physical Rehabilitation; Physical Activity; Rehabilitation; Clinical Research; 6.7 Physical; Musculoskeletal; 1106 Human Movement and Sports Sciences; Sport Sciences; 3202 Clinical sciences; 3208 Medical physiology; 4207 Sports science and exercise
Subjects: R Medicine > RC Internal medicine > RC1200 Sports Medicine
Divisions: Sport and Exercise Sciences
Publisher: Springer
Date of acceptance: 29 July 2026
Date of first compliant Open Access: 9 September 2026
Date Deposited: 09 Sep 2026 10:50
Last Modified: 09 Sep 2026 10:50
DOI or ID number: 10.1007/s00421-026-06391-7
URI: https://researchonline.ljmu.ac.uk/id/eprint/29358
View Item View Item