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基于双光子聚合方法的导电生物聚合物神经接口的形成

Formation of Neurointerfaces Based on Electrically Conductive Biopolymers by Two-Photon Polymerization Method.

作者信息

Savelyev Mikhail S, Kuksin Artem V, Murashko Denis T, Otsupko Ekaterina P, Suchkova Victoria V, Popovich Kristina D, Vasilevsky Pavel N, Vasilevskaya Yulia O, Kurilova Ulyana E, Eganova Elena M, Edelbekova Polina A, Selishchev Sergey V, Pavlov Alexander A, Gerasimenko Alexander Yu

机构信息

Institute of Biomedical Systems, National Research University of Electronic Technology, 124498 Zelenograd, Russia.

Institute for Bionic Technologies and Engineering, I. M. Sechenov First Moscow State Medical University, 119991 Moscow, Russia.

出版信息

Polymers (Basel). 2025 May 9;17(10):1300. doi: 10.3390/polym17101300.

Abstract

Preventing false signals of phantom pain after limb amputation is crucial. The development of neurointerfaces capable of bidirectional information exchange between the brain and external devices, along with long-term use, is a key research priority. The main problem with existing devices lies in the potential formation of scar tissue and the death of adjacent neurons. To address this issue, a polymer composite based on new composition: chitosan, bovine serum albumin, single-walled carbon nanotubes, and Eosin Y, which was created for the fabrication of a neurointerface. A polymer composite of the required shape was formed by two-photon polymerization. In studying its nonlinear optical properties, the new effect of phase self-modulation was discovered, which is observed after exposure to laser radiation prior to the formation of the composite. The time of appearance of diffraction rings was measured. This allowed optimization of laser parameters-scanner speed and intensity. The resulting homogeneous composite exhibited a specific conductivity of 20 mS × cm, sufficient for electrophysiological signal transmission.

摘要

预防肢体截肢后幻肢痛的假信号至关重要。能够在大脑与外部设备之间进行双向信息交换的神经接口的开发以及长期使用,是关键的研究重点。现有设备的主要问题在于可能形成瘢痕组织以及相邻神经元的死亡。为解决这一问题,一种基于新成分的聚合物复合材料应运而生:壳聚糖、牛血清白蛋白、单壁碳纳米管和曙红Y,它是为制造神经接口而制备的。所需形状的聚合物复合材料通过双光子聚合形成。在研究其非线性光学特性时,发现了相位自调制的新效应,该效应在复合材料形成之前受到激光辐射后即可观察到。测量了衍射环出现的时间。这使得能够优化激光参数——扫描仪速度和强度。所得的均匀复合材料表现出20 mS×cm的比电导率,足以进行电生理信号传输。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b083/12114728/02f962ed1cdf/polymers-17-01300-sch001.jpg

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