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Bowden, M. G.

Publications and source records attributed to Bowden, M. G..

2 recordsLinked to original sources

Intermuscular coherences of plantarflexors during walking suggest distinct neural origin and function for alpha and beta/low-gamma bands after stroke

Plantarflexors provide propulsion during walking (late stance) and receive input from both corticospinal tract (CST) and corticoreticulospinal tract (CReST). Both descending motor tracts exhibit some frequency-specificity, which allows potential differentiation of neural drive from each tract using intermuscular coherence (IMC). Stroke may differentially affect each tract, thus impair the function of plantarflexors. However, the evidence concerning this frequency-specificity and its relation to plantarflexors neuromechanics post-stroke remains very limited. Here, we investigated the intermuscular coherences of alpha, beta, and low-gamma bands between the Soleus (SOL), Lateral Gastrocnemius (LG), and Medial Gastrocnemius (MG) muscles and their relationships with walking-specific measures (propulsive impulse; speed). Fourteen individuals with chronic stroke walked on a treadmill at self-selected and fast walking speed (SSWS and FWS, respectively). Inter-limb IMC comparisons revealed that beta LG-MG (SSWS) and low-gamma SOL-LG (FWS) IMCs were degraded on the paretic side. At the same time, within each limb, the IMCs, which were significantly different to a surrogate dataset denoting random coherence, were in the alpha band (both speeds). Further, alpha LG-MG IMC was positively correlated with propulsive impulse in the paretic limb (SSWS). Findings suggest differential functional role of alpha and beta/low-gamma, which may be related to the frequency-specificity of the underlying descending drives. The persistence of alpha in plantarflexors and its strong positive relationship with propulsive impulse suggests relative preservation and/or upregulation of CReST. Future research should address whether entraining motor system at alpha frequencies via neuromodulation can improve the neuromechanical function of paretic plantarflexors and subsequently promote post-stroke walking recovery. Key Points SummaryO_LICortical and subcortical motor drives may be frequency-specific, have a role in walking, and be degraded after stroke. C_LIO_LIWhether this frequency-specificity exists and how it is related to neuromechanical function of ankle plantarflexors post-stroke remains to be determined. C_LIO_LIHere, we investigated bilaterally the intermuscular coherences of alpha, beta, and low-gamma bands for the Soleus (SOL), Lateral Gastrocnemius (LG), and Medial Gastrocnemius (MG) muscles and their relationships with walking-specific measures (propulsive impulse; self-selected and fast speed) during treadmill walking in individuals post-stroke. C_LIO_LIThe beta LG-MG (self-selected speed) and low-gamma SOL-LG (fast speed) were degraded on the paretic side. C_LIO_LIAlpha coherence was significantly present across plantarflexors mainly on the non-paretic side (both speeds). C_LIO_LIParetic alpha LG-MG was positively correlated with paretic propulsive impulse (self-selected speed). C_LIO_LIGiven that paretic propulsive impulse is impaired post-stroke, entraining the motor system at alpha frequency via neuromodulation may improve propulsive impulse and subsequently promote post-stroke walking recovery. C_LI

neuroscience↗

A novel biomechanical indicator for impaired ankle dorsiflexion function during walking in individuals with chronic stroke

Ankle dorsiflexion function during swing phase of the gait cycle contributes to foot clearance and plays an important role in walking ability post-stroke. Commonly used biomechanical measures such as foot clearance and ankle joint excursion have limited ability to accurately evaluate dorsiflexor function in stroke gait. We retrospectively evaluated ankle angular velocity and ankle angular acceleration as direct measures for swing phase dorsiflexor function in post-stroke gait of 61 chronic stroke survivors. Our linear regression models revealed that peak ankle angular velocity (AAVP), peak ankle angular acceleration (AAAP), peak dorsiflexion angle (DFAP) and peak foot clearance (FCLP) during swing had a significant relationship (p < 0.05) with impaired dorsiflexion function. AAAP and DFAP accounted for the most variance of dorsiflexion function. Additionally, AAVP, AAAP, FCLP during swing, correlated significantly with all clinical outcome measures of walking ability. DFAP during swing had a positive correlation only with FMA-LE. Post-hoc Williams t-tests, used to compare the magnitude of difference between two non-independent correlations, revealed that the correlation between all clinical measures and DFAP were significantly weaker than with AAVP and AAAP. We also found that correlation between FMA-LE and FCLP was weaker than with AAVP and AAAP. We found an excellent test-retest reliability for both AAVP (ICC = 0.968) and AAAP (ICC = 0.947). These results suggest that DFAP may only be associated with non-task specific isolated dorsiflexion movement, but not during walking. FCLP is associated with dorsiflexion function and walking ability measures but not as strongly as AAVP and AAAP possibly because FCLP is influenced by contribution from hip and knee joint movements during walking. Therefore, we believe that AAVP and AAAP both can be used as reliable measures of impaired dorsiflexion function in post-stroke gait.

bioengineering↗