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Sundiang, M.

Publications and source records attributed to Sundiang, M..

2 recordsLinked to original sources

Dynamic Structure Of Motor Cortical Neuron Co-Activity Carries Behaviorally Relevant Information

Skillful, voluntary movements are underpinned by computations performed by networks of interconnected neurons in the primary motor cortex (M1). Computations are reflected by patterns of co-activity between neurons. Using spike time correlations, co-activity can be represented as functional networks (FNs). Here, we show that the structure of FNs constructed from instructed-delay reach trials in non-human primates are behaviorally specific: low dimensional embedding and graph alignment scores show that FNs constructed from closer target reach distances are also closer in network space. We next constructed temporal FNs using short intervals across a trial. We find that temporal FNs traverse a low-dimensional subspace in a reach-specific trajectory. Alignment scores show that FNs become separable and correspondingly, decodable shortly after the instruction cue. Finally, we observe that reciprocal connections in FNs transiently decrease following the instruction cue, suggesting the network momentarily switches from a recurrent system to one that is more feedforward.

neuroscience↗

Chronic wireless neural population recordings with common marmosets

Marmosets are an increasingly important model system for neuroscience in part due to genetic tractability and enhanced cortical accessibility, due to a lissencephalic neocortex. However, many of the techniques generally employed to record neural activity in primates inhibit the expression of natural behaviors in marmosets precluding neurophysiological insights. To address this challenge, we developed methods for recording neural population activity in unrestrained marmosets across multiple ethological behaviors, multiple brain states, and over multiple years. Notably, our flexible methodological design allows for replacing electrode arrays and removal of implants providing alternative experimental endpoints. We validate the method by recording sensorimotor cortical population activity in freely moving marmosets across their natural behavioral repertoire and during sleep. HIGHLIGHTS- Simultaneous and chronic wireless neural population recordings in multiple freely moving marmosets - Neural recording approach enables studies of natural repertoire of behaviors and sleep - Methyl-methacrylate free surgical approach designed to promote biocompatibility and longitudinal success of the implant - Modular headstage configuration requires minimal daily animal handling for daily neural recordings - Alternative experimental endpoints: implant removal, healing, and electrode array replacement

neuroscience↗