6533b856fe1ef96bd12b1cc4
RESEARCH PRODUCT
An Intracortical Implantable Brain-Computer Interface for Telemetric Real-Time Recording and Manipulation of Neuronal Circuits for Closed-Loop Intervention
Hamed ZaerHamed ZaerAshlesha DeshmukhAshlesha DeshmukhDariusz OrlowskiDariusz OrlowskiWei FanPierre-hugues ProuvotAndreas Nørgaard GludAndreas Nørgaard GludMorten Bjørn JensenMorten Bjørn JensenEsben Schjødt WormEsben Schjødt WormSlávka LukacovaSlávka LukacovaTrine Werenberg MikkelsenTrine Werenberg MikkelsenLise Moberg FittingLise Moberg FittingJohn R. AdlerJohn R. AdlerM. Bret SchneiderM. Bret SchneiderM. Bret SchneiderMartin Snejbjerg JensenMartin Snejbjerg JensenQuanhai FuVinson GoJames MorizioJens Christian Hedemann SørensenJens Christian Hedemann SørensenAlbrecht StrohAlbrecht Strohsubject
Computer sciencestereotactic radiosurgeryLocal field potentialElectroencephalographylcsh:RC321-57103 medical and health sciencesBehavioral Neuroscience0302 clinical medicineTelemetrymedicinePremovement neuronal activityGöttingen minipigEEGlcsh:Neurosciences. Biological psychiatry. NeuropsychiatryBiological Psychiatry030304 developmental biologyBrain–computer interfaceOriginal Research0303 health sciencesclosed-loopmedicine.diagnostic_testbusiness.industryanimal modelbrain-machine (computer) interfaceMultielectrode arrayelectrophysiologyElectrophysiologyPsychiatry and Mental healthVisual cortexmedicine.anatomical_structureNeuropsychology and Physiological PsychologyNeurologyneuromodulationelectrophysiology ; Göttingen minipig ; neuromodulation ; brain-machine (computer) interface ; animal model ; EEG ; stereotactic radiosurgery ; closed-loopbusiness030217 neurology & neurosurgeryComputer hardwareNeurosciencedescription
Recording and manipulating neuronal ensemble activity is a key requirement in advanced neuromodulatory and behavior studies. Devices capable of both recording and manipulating neuronal activity brain-computer interfaces (BCIs) should ideally operate un-tethered and allow chronic longitudinal manipulations in the freely moving animal. In this study, we designed a new intracortical BCI feasible of telemetric recording and stimulating local gray and white matter of visual neural circuit after irradiation exposure. To increase the translational reliance, we put forward a Göttingen minipig model. The animal was stereotactically irradiated at the level of the visual cortex upon defining the target by a fused cerebral MRI and CT scan. A fully implantable neural telemetry system consisting of a 64 channel intracortical multielectrode array, a telemetry capsule, and an inductive rechargeable battery was then implanted into the visual cortex to record and manipulate local field potentials, and multi-unit activity. We achieved a 3-month stability of the functionality of the un-tethered BCI in terms of telemetric radio-communication, inductive battery charging, and device biocompatibility for 3 months. Finally, we could reliably record the local signature of sub- and suprathreshold neuronal activity in the visual cortex with high bandwidth without complications. The ability to wireless induction charging combined with the entirely implantable design, the rather high recording bandwidth, and the ability to record and stimulate simultaneously put forward a wireless BCI capable of long-term un-tethered real-time communication for causal preclinical circuit-based closed-loop interventions.
year | journal | country | edition | language |
---|---|---|---|---|
2021-02-03 | Frontiers in Human Neuroscience |