Wu Guangfu, Heck Ian, Zhang Nannan, Phaup Glenn, Zhang Xincheng, Wu Yixin, Stalla David E, Weng Zhengyan, Sun He, Li Huijie, Zhang Zhe, Ding Shinghua, Li De-Pei, Zhang Yi
Department of Biomedical Engineering and the Institute of Materials Science, University of Connecticut, Storrs, CT 06269, USA.
Department of Biomedical, Biological, and Chemical Engineering, University of Missouri, Columbia, MO 65211, USA.
Sci Adv. 2022 Feb 25;8(8):eabn2277. doi: 10.1126/sciadv.abn2277. Epub 2022 Feb 23.
Extensive studies in both animals and humans have demonstrated that high molecular weight neurochemicals, such as neuropeptides and other polypeptide neurochemicals, play critical roles in various neurological disorders. Despite many attempts, existing methods are constrained by detecting neuropeptide release in small animal models during behavior tasks, which leaves the molecular mechanisms underlying many neurological and psychological disorders unresolved. Here, we report a wireless, programmable push-pull microsystem for membrane-free neurochemical sampling with cellular spatial resolution in freely moving animals. In vitro studies demonstrate the sampling of various neurochemicals with high recovery (>80%). Open-field tests reveal that the device implantation does not affect the natural behavior of mice. The probe successfully captures the pharmacologically evoked release of neuropeptide Y in freely moving mice. This wireless push-pull microsystem creates opportunities for neuroscientists to understand where, when, and how the release of neuropeptides modulates diverse behavioral outputs of the brain.
在动物和人类身上进行的广泛研究表明,高分子量神经化学物质,如神经肽和其他多肽神经化学物质,在各种神经系统疾病中起关键作用。尽管进行了许多尝试,但现有方法在检测行为任务期间小动物模型中的神经肽释放方面受到限制,这使得许多神经和心理疾病背后的分子机制仍未得到解决。在此,我们报告了一种无线、可编程的推挽式微系统,用于在自由活动的动物中以细胞空间分辨率进行无膜神经化学采样。体外研究表明,该系统对各种神经化学物质的采样回收率很高(>80%)。旷场试验表明,植入该设备不会影响小鼠的自然行为。该探针成功捕获了自由活动小鼠中药物诱发的神经肽Y释放。这种无线推挽式微系统为神经科学家提供了机会,以了解神经肽的释放地点、时间以及如何调节大脑的各种行为输出。