Light-responsible ECM-mimetic scaffolds for neural differentiation. Intracellular versus extracellular photothermal stimulation

Q1 Engineering
Оlga Y. Аntonova, Olga Y. Kochetkova, Maxim Tailakov, Igor L. Kanev
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Abstract

The development of approaches and materials that combine several types of stimulatory effects on nerve tissue growth is a promising task for biotechnology. The aim of this work was a comparative study of the influence of intracellularly and extracellularly localized polydopamine-containing materials on the heat-mediated facilitation of neuronal differentiation. Scaffolds made from aligned nylon nanofibers, mimicking the structure of the extracellular matrix, were used as a matrix for immobilizing photothermal nanoparticles. The composite material combines an ultrastructure capable of accelerating and directing the growth of nerve extensions and the ability for controlled thermal remote influence on cell activity under NIR irradiation within the biological transparency range. The materials demonstrated high photostability and biocompatibility without the drawbacks associated with intracellular nanoparticle delivery, such as cytotoxicity and gradual elimination from the body. The immobilization of thermoplasmonic elements on the fibers surface allows for more controlled and manageable heating compared to intracellular introduction of PDA nanoparticles. The fibrous material's ultrastructure directs neurite growth and enhances elongation. Photothermal stimulation further enhances this process by increasing the proportion of cells with longer neurites, thus enhancing neuronal differentiation. Composite nanomaterials can be used for neuromodulation, managing the functional activity of cells, particularly where directed growth is needed, such as in the regeneration of peripheral nerve tissue. This work brings us closer to the creation of smart materials that are biocompatible and easy to manufacture for developing scalable thermal stimulation techniques in regenerative medicine.

Abstract Image

用于神经分化的光负责型ecm模拟支架。细胞内与细胞外光热刺激
结合几种刺激神经组织生长的方法和材料的发展是生物技术的一个有前途的任务。本研究的目的是比较研究细胞内和细胞外定位的含有多多巴胺的物质对热介导的神经元分化促进的影响。由排列的尼龙纳米纤维制成的支架,模拟细胞外基质的结构,被用作固定光热纳米颗粒的基质。该复合材料结合了一种能够加速和指导神经延伸生长的超微结构,以及在生物透明范围内近红外辐射下对细胞活性的可控热远程影响的能力。该材料具有较高的光稳定性和生物相容性,没有细胞内纳米颗粒递送的缺陷,如细胞毒性和从体内逐渐消除。与细胞内引入PDA纳米颗粒相比,热等离子体元件在纤维表面的固定允许更多的控制和管理加热。纤维材料的超微结构指导神经突生长并提高伸长。光热刺激通过增加长神经突细胞的比例进一步增强这一过程,从而增强神经元分化。复合纳米材料可用于神经调节,控制细胞的功能活动,特别是在需要定向生长的地方,例如周围神经组织的再生。这项工作使我们更接近于创造具有生物相容性和易于制造的智能材料,用于开发再生医学中可扩展的热刺激技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Smart Materials in Medicine
Smart Materials in Medicine Engineering-Biomedical Engineering
CiteScore
14.00
自引率
0.00%
发文量
41
审稿时长
48 days
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