NARA Discovery
Article Details
← Back to Search Results
Journal Article

Soleus Muscle Stiffness is Regulated by Scaled Activation to Manage Unpredictable and Predictable Walking Perturbations

Sebastian Bohm; Morteza Ghasemi; Christos Theodorakis; Falk Mersmann; Thomas Roberts; Adamantios Arampatzis
Annals of Biomedical Engineering · Vol. 54, Issue 3 · pp. 750-766 · 2026

Abstract

During unexpected drop-like gait perturbations, the body’s center of mass (CoM) energy must be absorbed reactively by the leg muscles, challenging muscle–tendon unit (MTU) function and body stability. Anticipation and prior experience may adjust muscle activation in advance to improve the perturbation response. The study's purpose was to investigate the interplay of muscle activation, MTU decoupling mechanisms, and contractile conditions for the CoM energy management during gait challenges. Kinematics, electromyographic activity (EMG), soleus fascicle length, and total CoM energy were measured during unperturbed walking, unpredictable and adapted (experience-based) drop-like perturbations as well as during hole negotiation. The soleus force–length and force–velocity relationships were also determined to assess the force–length–velocity potential. CoM energy decreased substantially after touchdown in the hole during both perturbations and hole negotiation, indicating energy absorption by the musculoskeletal system. During the unpredictable perturbation, a rapidly increased EMG activity after drop initiation and an almost isometric fascicle behavior close to optimal length throughout the CoM energy absorption phase was found, despite MTU lengthening. In the adapted perturbation, an initial isometric contraction accompanied by high EMG activity was observed, followed by active fascicle lengthening at decreasing EMG activity. Clear fascicle lengthening in combination with low EMG activity was found during hole negotiation. These novel findings suggest a regulation of muscle stiffness by scaled activation that tunes the contribution of muscle and tendon to the MTU length changes (i.e., tendon decoupling), to facilitate high fascicle force–length–velocity potentials and tendon energy buffering mechanisms in response to drop-like perturbations and hole negotiation gait.

Bibliographic Information

JournalAnnals of Biomedical Engineering
PublisherSpringer
Publication Date2026-03-01
Publication Year2026
Volume54
Issue3
Pages750-766
Document TypeJournal Article
Print ISSN0090-6964
eISSN1573-9686
DOI10.1007/s10439-025-03928-3

Access Information

NARA Access Coverage1972-01-01~Current
Journal Homepagehttps://www.springer.com/journal/10439
Publisher PageOpen Publisher Page
Full-text access depends on NARA's subscribed coverage and institutional access.