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Murai, R.

Publications and source records attributed to Murai, R..

4 recordsLinked to original sources

Movement Directions Aligned in Joint Space Are Not Aligned in Muscle Space

Learned movements are thought to be represented in both extrinsic and intrinsic coordinate systems. Intrinsic representations have traditionally been characterized using joint-based coordinates, although the relationship between joint movements and muscle activation depends strongly on limb configuration. Consequently, movement directions aligned in joint space may not be aligned in muscle space, but the implications of this mismatch for motor learning have remained largely unexplored. We addressed this question by combining electromyographic (EMG) analysis with a visuomotor adaptation experiment. In Experiment 1, participants performed planar reaching movements in two workspaces separated by a 45{degrees} shoulder rotation while EMG activity was recorded from nine upper-limb muscles. Muscle-pattern similarity analysis revealed that movement directions aligned in joint space were not always aligned in muscle space and that the degree of misalignment varied systematically across movement directions. Based on these results, we predicted that visuomotor adaptation to clockwise (CW) and counterclockwise (CCW) rotations would produce different patterns of motor generalization, contrary to the prediction of conventional joint-space accounts. Experiment 2 confirmed this prediction, revealing a systematic shift between the CW and CCW generalization patterns that was consistent with the muscle-space prediction. These findings suggest that intrinsic representations of learned movements are not fully captured by joint-based coordinates alone and that muscle-based coordinates contribute to motor learning and its generalization. Together, these findings highlight the importance of considering underlying biomechanics when interpreting motor representations using generalization paradigms.

neuroscience↗

Sensorimotor adaptation to altered postural dynamics implemented via closed-loop neuromuscular electrical stimulation

Studying sensorimotor adaptation in whole-body motor tasks such as locomotion and postural control remains challenging because well-controlled mechanical perturbations typically require large, specialized apparatus that constrains natural movement. Here, we introduced a novel perturbation system that alters musculoskeletal dynamics using closed-loop neuromuscular electrical stimulation (NMES) and examined how the human postural control system adapts to these altered dynamics during quiet standing. By applying NMES to the tibialis anterior as a function of anterior-posterior body sway, we imposed artificial postural dynamics. Analyses of postural sway revealed robust, systematic adaptation, with distinct patterns across perturbation types. These findings demonstrate that closed-loop NMES can impose controllable, movement-specific dynamics without mechanical constraints, while also revealing the adaptability of human postural control to externally imposed sway dynamics.

neuroscience↗

Adaptation to transient and local electrical muscle stimulation elicits persistent and global changes in walking kinematics

It is generally assumed that motor commands altered by adaptation to a novel environment revert to their original state once the environment returns to baseline. However, this assumption--based mainly on simple movements such as reaching--may not hold for complex actions. In redundant systems, de-adaptation can cause motor commands and resulting kinematics to settle into states distinct from the original. Here, we examined adaptation and de-adaptation in treadmill walking while modulating lower-limb dynamics using closed-loop neuromuscular electrical stimulation (NMES) applied bilaterally to the tibialis anterior. Adaptation to a localized ankle perturbation induced global kinematic changes across the ankle, knee, and hip joints. After perturbation removal, joint kinematics did not fully return to baseline; instead, features of the adapted gait persisted for eight minutes. These findings highlight the distinctive nature of motor adaptation in redundant systems and demonstrate the potential of NMES-based perturbations for inducing implicit modifications in movement patterns.

neuroscience↗

A hemoperfusion column selectively adsorbs LAP+ lymphocytes to improve anti-tumor immunity and survival of tumor-bearing rats

A decrease of immune suppressive cells in blood is thought to be one of the means to activate anti-tumor immunity that works as a treatment for cancers. We have developed an adsorbent that selectively adsorbs lymphocytes expressing latency-associated peptide (LAP), which include regulatory T cells (Tregs). The adsorbent, diethylenetriamine-conjugated polysulfone coated on polyethylene terephthalate fibers, was packed in a column for direct hemoperfusion (DHP). The therapeutic efficacy of DHP with the column was examined in rats carrying KDH-V liver cancer cells, in which LAP+ cells were increased in blood. After DHP, LAP+ T cells were decreased in peripheral blood, and a cytotoxic T-lymphocyte response against KDH-V cells was increased in tumor-bearing rats that had been immunized with X ray-irradiated KDH-V cells. Furthermore, the survival time of the rats was longer than that of rats without DHP. Thus, the removal of LAP+ T cells can potentially be applied to the treatment of cancer regardless of the origin since an increase in the number of LAP+ cells has been observed in the peripheral blood of various cancer patients.

immunology↗