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Hakariya, N.

Publications and source records attributed to Hakariya, N..

3 recordsLinked to original sources

Spatiotemporal spinal integration of descending and spinal volleys in spinal motor circuits revealed by compound motor evoked potentials

Descending corticospinal and afferent pathways underlying spinally evoked motor potential both contribute to motor output, yet how their interaction at the spinal and peripheral levels is organized spatially within a muscle remains unclear. This study investigated the spatiotemporal characteristics of descending modulation of spinally evoked motor potentials by combining subthreshold transcranial magnetic stimulation (TMS) with transcutaneous spinal cord stimulation (tSCS). In Experiment 1, spinally evoked motor potentials were recorded from multiple lower-limb muscles at various interstimulus intervals (ISIs) defined relative to central conduction time (CCT). Subthreshold TMS facilitated spinally evoked motor potentials from CCT onward across all recorded muscles, with additional bilateral facilitation observed at longer ISIs. In Experiment 2, high-density surface electromyography (HDsEMG) revealed distinct intramuscular activation patterns in the tibialis anterior. The center of gravity (CoG) of TMS-induced motor evoked potentials was located more proximally than that of spinally evoked motor potentials. Notably, the CoG of facilitation maps was shifted further proximally than that of both single-stimulus responses. These findings suggest that descending and afferent inputs preferentially recruit partially distinct motoneuron pools within the same muscle. The proximal bias of facilitation indicates recruitment of additional motoneurons rather than uniform amplification of existing activity. Together, these results demonstrate that the interaction between descending and afferent inputs is both timing-dependent and spatially non-uniform, providing new insight into sensorimotor integration in the human lower limb.

neuroscience↗

Distinct neural input strategies to motor units in the soleus and medial gastrocnemius during quiet standing

Standing posture control critically depends on the activation of the soleus (SOL) and medial gastrocnemius (MG), which serve distinct functional roles. Identifying underlying neural mechanisms has been challenging, as conventional invasive techniques sample only limited motor units (MUs). Recent advances in high-density surface electromyography (HDsEMG) have enabled analysis of MU activity and estimation of common synaptic inputs to spinal motoneurons. Therefore, we aimed to elucidate the common synaptic inputs underlying the distinct MU behaviors of SOL and MG during standing. We recorded HDsEMG from the SOL and MG, alongside electroencephalography, from 20 male participants during standing and isometric voluntary contractions. EMG signals were decomposed into individual MU activity, with common synaptic inputs estimated through intramuscular and corticomuscular coherence analyses (IMC and CMC). Compared to SOL, the MG exhibited significantly higher delta-, alpha-, and beta-band IMC during standing. In task comparisons, alpha-band IMC increased during standing specifically in the MG. Furthermore, although beta-band CMC decreased in both muscles while standing, IMC was preserved in the MG but markedly reduced in SOL. This dissociation suggests that the common neural drive to the MG during standing is likely derived from subcortical rather than cortical pathways. These results demonstrate that the SOL and MG are governed by distinct neural control strategies, which likely underlie their functional roles. Given the low CMC, the MG relies on strong common synaptic input from subcortical pathways (e.g., vestibulospinal and reticulospinal) to produce rapid corrective torque, whereas the SOL functions with lower neural synchrony to ensure steady ankle stiffness. Key pointsO_LIThe soleus and medial gastrocnemius play distinct roles in standing control, however, due to technical limitations, it has been difficult to identify the underlying neural mechanisms responsible for these differences. C_LIO_LIUsing high-density surface electromyography, we examined motor unit activity and neural inputs to these muscles during standing. C_LIO_LIThe medial gastrocnemius shows greater common synaptic input, potentially facilitating rapid ankle plantarflexion torque generation to correct postural sway. C_LIO_LIThe soleus exhibits lower motor unit synchrony, enabling stable and continuous ankle plantarflexion torque generation for body weight support. C_LIO_LIThis study demonstrates that the soleus and medial gastrocnemius are governed by distinct neural control strategies, which likely underlie their distinct functional roles. C_LI Abstract figure legend O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=131 SRC="FIGDIR/small/698550v1_ufig1.gif" ALT="Figure 1"> View larger version (41K): org.highwire.dtl.DTLVardef@be53aorg.highwire.dtl.DTLVardef@f6793aorg.highwire.dtl.DTLVardef@190e8f9org.highwire.dtl.DTLVardef@af5e4b_HPS_FORMAT_FIGEXP M_FIG C_FIG Motor unit spike trains were decomposed from high-density surface electromyograms recorded from the medial gastrocnemius (MG; left; red) muscle and soleus (SOL; right; blue). To compare the neural input to the spinal motor neurons between them, we quantified the intramuscular coherence (IMC) of motor unit spike trains within the delta, alpha, and beta bands. MG exhibited greater IMC than SOL during standing, indicating stronger common synaptic input, likely mediated by vestibulospinal and reticulospinal pathways. In contrast, SOL showed lower IMC, suggesting a greater contribution of independent synaptic input. As a consequence, high motor-unit synchrony in the MG supports rapid, phasic torque generation for postural sway attenuation, whereas low synchrony in the SOL enables smooth, steady torque production for weight bearing during standing.

physiology↗

Developmental Reorganization of Whole-Body Muscle Synergies During Overarm Throwing in Children

Overarm throwing is a uniquely human skill that requires precise whole-body coordination. Although throwing behavior emerges early in childhood, the neuromuscular mechanisms that support its development remain poorly characterized. Here, we provide novel evidence for the developmental reorganization of whole-body muscle synergies during maximum-effort throwing in preschool-aged (PS) and school-aged (SA) children. Electromyography was recorded from 16 muscles, and non-negative matrix factorization was applied to extract low-dimensional coordination modules (muscle synergies). We compared ball speed, number of synergies, synergy structure, and temporal consistency between groups. Ball speed was significantly higher in SA than PS (33.6 {+/-} 10.2 vs. 21.4 {+/-} 6.2 km/h, p < 0.05), reflecting improved performance. Yet, the number of synergies did not differ (PS: 6.0 {+/-} 1.1; SA: 6.4 {+/-} 1.3, p > 0.05), suggesting that the dimensionality of coordination is largely established by the preschool years. Instead, developmental improvements were driven by structural and temporal reorganization: trunk- and upper-limb synergies merged into a single module in SA, reflecting improved postural integration, while a bilateral soleus-dominant synergy fractionated into lateralized modules, reflecting increased lower-limb specialization. Moreover, the temporal variability of synergy activation was reduced in SA (p < 0.01), indicating that movement sequences became more precise and stable with development. These findings reveal that early gains in throwing arise not from expanding synergy number but from reorganizing their structure and sharpening temporal coordination, offering mechanistic insight into how complex whole-body skills are refined during childhood. Significance StatementThrowing is a hallmark of human motor behavior, requiring precise sequencing of whole-body muscle activity. Yet how children develop this ability has remained unclear. By applying muscle synergy analysis to electromyographic recordings of preschool and school-aged children performing maximum-effort throws, we found that improvements in performance were not due to an increase in synergy number but rather to structural reorganization and greater temporal precision. Specifically, trunk and upper-limb modules merged, lower-limb modules fractionated, and activation timing became more consistent. These results identify merging and fractionation as complementary mechanisms supporting developmental refinement of motor skills. More broadly, they provide a mechanistic framework for understanding how complex whole-body actions are acquired and offer markers for pediatric training and rehabilitation strategies.

neuroscience↗