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Biology subjects

Leonard, T. R.

Publications and source records attributed to Leonard, T. R..

2 recordsLinked to original sources

Sarcomere length, fascicle length, and serial sarcomere number are preserved in paretic hindlimb muscles following chronic stroke in rats despite persistent motor impairment

Stroke causes motor impairments that are commonly attributed to altered neural control, but chronic changes in neural activation and muscle use may also influence skeletal muscle structure. This study examined whether chronic stroke alters sarcomere length and dispersion, fascicle length, or serial sarcomere number in adult skeletal muscle. Twenty-four female Sprague-Dawley rats underwent photothrombotic stroke or sham surgery. Limb-specific motor impairment was assessed longitudinally using a beam traversal task. At 4.5 months post-surgery, the lateral gastrocnemius and extensor digitorum longus muscles were harvested from paretic and non-paretic limbs. We measured fascicle length directly from isolated fascicle bundles and quantified sarcomere length and dispersion using laser diffraction. Stroke animals exhibited persistent impairment of the paretic limb during beam traversal with elevated misstep rates. Despite this persistent motor impairment, sarcomere length and dispersion did not differ between stroke and sham animals or between limbs. Fascicle length and serial sarcomere number were greater in stroke than sham animals, but these differences were not limb-specific and were therefore unlikely to reflect stroke-related changes. Fascicle length, sarcomere length and dispersion, and serial sarcomere number differed between the lateral gastrocnemius and extensor digitorum longus, consistent with differences in architecture or relative length at the selected joint angles. These findings indicate that persistent neural impairment following adult-onset stroke does not necessarily result in substantial changes in sarcomere length or sarcomeres in series. Instead, sarcomere changes may depend on additional factors, including the timing of neural injury relative to growth and the mechanical environment experienced by the muscle.

physiology↗

Force sharing between plantarflexor muscles in sheep during treadmill gait

Muscle force sharing during locomotion is influenced by the mechanical demands of movement and the contractile properties of synergistic muscles. In cats, plantarflexor muscles exhibit distinct functional specialization, with the slow-fibred soleus maintaining relatively constant force across conditions while faster muscles such as the plantaris and gastrocnemius increase force production with increasing locomotor demand. However, it remains unclear whether similar force-sharing patterns occur in larger animals with different musculoskeletal designs. Therefore, the purpose of this study was to examine force sharing between the superficial digital flexor (SDF) and medial gastrocnemius (MG) muscles during treadmill locomotion in sheep. Tendon buckle force transducers were surgically implanted on the SDF and MG tendons of seven sheep, and in vivo muscle forces were recorded during walking and trotting across different speeds and inclines. Both muscles increased force with increasing speed and incline; however, speed had a substantially greater effect than incline. The SDF consistently produced greater absolute force than the MG across all conditions, whereas the MG exhibited slightly larger relative increases in force with increasing speed. Time to peak force decreased with increasing speed in both muscles, although the SDF reached peak force later in stance than the MG across conditions. In contrast to the distinct specialization observed in cats, neither muscle displayed a relatively condition-independent, soleus-like force contribution. These findings suggest that force sharing in sheep is more distributed across synergistic muscles and may reflect the influence of musculoskeletal design, tendon compliance, and mixed fibre-type composition on muscle function in larger species.

bioengineering↗