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    Researchers decoded hand gestures from brain signals in individuals with spinal cord injury. This brain-computer interface (BCI) research shows potential for restoring upper limb control and improving mobility for those with limited movement.

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    Area of Science:

    • Neuroscience
    • Biomedical Engineering
    • Rehabilitation Technology

    Background:

    • Dexterous upper limb motion is controlled by complex cortical activity patterns.
    • Limited mobility affects a broad clinical population, necessitating advanced assistive technologies.
    • Brain-computer interface (BCI) technology offers a potential solution for restoring motor function.

    Purpose of the Study:

    • To investigate cortical activity patterns associated with dexterous hand gestures.
    • To assess the feasibility of using neural signals for controlling upper limb prosthetics or orthotics.
    • To determine the potential of intracortical BCI for generating diverse command signals.

    Main Methods:

    • Recorded neural activity from motor cortical ensembles using microelectrode arrays in two participants with cervical spinal cord injury.
    • Participants attempted to perform 48 distinct hand gestures.
    • Analyzed neural ensemble activity to decode gesture intentions.

    Main Results:

    • Achieved approximately 70% classification accuracy for all 48 gestures and ~90% for sets of 10 gestures.
    • Demonstrated that neural latent spaces were unique to each participant.
    • Showcased the potential for single-hemisphere recordings to generate signals for both hands.

    Conclusions:

    • Single unit ensemble activity in the human precentral gyrus can generate a wide range of gesture-related signals.
    • These findings support the development of intuitive and diverse command signals for intracortical BCI applications.
    • This research holds promise for improving the quality of life for individuals with limited mobility.