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Soft and stretchable organic bioelectronics for continuous intraoperative neurophysiological monitoring during microsurgery.

Wenjianlong ZhouYuanwen JiangQin XuLiangpeng ChenHui QiaoYi-Xuan WangJian-Cheng LaiDonglai ZhongYuan ZhangWeining LiYanru DuXuecheng WangJiaxin LeiGehong DongXiudong GuanShunchang MaPeng KangLinhao YuanMilin ZhangJeffrey B-H TokDeling LiZhenan BaoWang Jia
Published in: Nature biomedical engineering (2023)
In microneurosurgery, it is crucial to maintain the structural and functional integrity of the nerve through continuous intraoperative identification of neural anatomy. To this end, here we report the development of a translatable system leveraging soft and stretchable organic-electronic materials for continuous intraoperative neurophysiological monitoring. The system uses conducting polymer electrodes with low impedance and low modulus to record near-field action potentials continuously during microsurgeries, offers higher signal-to-noise ratios and reduced invasiveness when compared with handheld clinical probes for intraoperative neurophysiological monitoring and can be multiplexed, allowing for the precise localization of the target nerve in the absence of anatomical landmarks. Compared with commercial metal electrodes, the neurophysiological monitoring system allowed for enhanced post-operative prognoses after tumour-resection surgeries in rats. Continuous recording of near-field action potentials during microsurgeries may allow for the precise identification of neural anatomy through the entire procedure.
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