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生物反馈电刺激用于仿生和持久的神经调节。

Biofeedback electrostimulation for bionic and long-lasting neural modulation.

机构信息

School of Chemistry and Chemical Engineering, Nanjing University of Science and Technology, Nanjing, 210094, P. R. China.

Department of Orthopedic, Nanjing Jinling Hospital, Nanjing, 210002, P. R. China.

出版信息

Nat Commun. 2022 Sep 9;13(1):5302. doi: 10.1038/s41467-022-33089-z.

Abstract

Invasive electrical stimulation (iES) is prone to cause neural stimulus-inertia owing to its excessive accumulation of exogenous charges, thereby resulting in many side effects and even failure of nerve regeneration and functional recovery. Here, a wearable neural iES system is well designed and built for bionic and long-lasting neural modulation. It can automatically yield biomimetic pulsed electrical signals under the driven of respiratory motion. These electrical signals are full of unique physiological synchronization can give biofeedback to respiratory behaviors, self-adjusting with different physiological states of the living body, and thus realizing a dynamic and biological self-matched modulation of voltage-gated calcium channels on the cell membrane. Abundant cellular and animal experimental evidence confirm an effective elimination of neural stimulus-inertia by these bioelectrical signals. An unprecedented nerve regeneration and motor functional reconstruction are achieved in long-segmental peripheral nerve defects, which is equal to the gold standard of nerve repair -- autograft. The wearable neural iES system provides an advanced platform to overcome the common neural stimulus-inertia and gives a broad avenue for personalized iES therapy of nerve injury and neurodegenerative diseases.

摘要

侵入性电刺激(iES)由于其外源电荷的过度积累,容易引起神经刺激惯性,从而导致许多副作用,甚至导致神经再生和功能恢复失败。在这里,我们设计并构建了一种可穿戴的神经 iES 系统,用于仿生和持久的神经调节。它可以在呼吸运动的驱动下自动产生仿生脉冲电信号。这些电信号充满了独特的生理同步性,可以对呼吸行为进行生物反馈,根据生物体的不同生理状态进行自我调整,从而实现细胞膜上电压门控钙通道的动态和生物匹配调节。丰富的细胞和动物实验证据证实,这些生物电信号可以有效地消除神经刺激惯性。在长节段周围神经缺损中,实现了前所未有的神经再生和运动功能重建,与神经修复的金标准——自体移植物相当。可穿戴神经 iES 系统为克服常见的神经刺激惯性提供了一个先进的平台,并为神经损伤和神经退行性疾病的个性化 iES 治疗开辟了广阔的道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5ecc/9463164/801c470ff30c/41467_2022_33089_Fig1_HTML.jpg

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