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Mirkiani, S.

Publications and source records attributed to Mirkiani, S..

2 recordsLinked to original sources

Flexible thin-film Implant with Depth Selectivity for Intraspinal Microstimulation

Restoration of motor function after spinal cord injury remains a major challenge, as existing neuromodulation strategies such as epidural stimulation suffer from limited selectivity. Intraspinal microstimulation (ISMS) offers higher spatial precision but has been constrained by manually fabricated microwire arrays that lack reproducibility, depth control, and mechanical compatibility with neural tissue. Here, we present flex-ISMS, a thin-film, polyimide-based ISMS array integrating 42 stimulation sites distributed across 14 flexible arms. Acute in vivo implantation into the lumbosacral enlargement of domestic pigs demonstrated depth-specificity, site-selectivity and near normal recruitment of motor units resulting in graded contractions in muscles controlling the hip, knee, and ankle joints, with ranges of motion and isometric force generation approaching levels seen during natural locomotion (e.g., 40{degrees} and 30 N for knee extension). Importantly, electrodes separated by 500 {micro}m evoked distinct responses, underscoring submillimetre-scale selectivity. The high flexibility allows the device to conform to the spinal cord while displacing tissue by only 40x8 {micro}m per arm. Histological analyses showed that the 125 {micro}m diameter tungsten insertion aid of the flex-ISMS arms produced minimal acute damage, indistinguishable from that produced by conventional 50 {micro}m diameter microwires. These acute outcomes establish the surgical feasibility and functional capability of flex-ISMS, and provide the foundation for forthcoming chronic studies in spinal-cord-injured models.

bioengineering↗

Overground Gait Kinematics and Muscle Activation Patterns in the Yucatan Mini Pig

A growing number of spinal cord injury, neuromodulation, and cell therapy studies on porcine models, especially the Yucatan minipigs (YMPs), have been recently reported. This is due to the large similarities between human and porcine neuroanatomy and biomechanics. To assess treatment modalities and locomotor recovery in this model, there is an obvious need for detailed characterization of normative overground gait in neurologically intact YMPs. The objective of this study was to assess gait biomechanics and the effect of overground walking speed on gait parameters, kinematics, and electromyographic (EMG) activity in the hindlimb muscles of YMPs. Nine neurologically-intact adult YMPs were trained to walk overground in a straight line. Whole-body kinematics and EMG activity of hindlimb muscles were recorded and analyzed at 6 different speed ranges (0.4-0.59, 0.6-0.79, 0.8-0.99, 1.0-1.19, 1.2-1.39, and 1.4-1.6 m/s). A MATLAB program was developed to detect strides and gait events automatically from motion-captured data. Significant decreases in stride duration, stance and swing times and an increase in stride length were observed with increasing speed. A transition in gait pattern occurred at the 1.0m/s walking speed. Significant increases in the range of motion of the knee and ankle joints were observed at higher speeds. Also, the points of minimum and maximum knee and ankle joint angles occurred earlier in the gait cycle at higher speeds. The onset of EMG activity in the biceps femoris muscle occurred significantly earlier in the gait cycle with increasing speed. A comprehensive characterization of overground walking in neurologically-intact YMPs is provided. These normative measures set the basis against which the effects of future interventions on locomotor capacity in YMPs can be compared.

neuroscience↗