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基于明胶和聚(3,4-乙撑二氧噻吩):聚苯乙烯磺酸盐的导电可注射水凝胶用于神经组织再生的微创方法

Electroconductive and injectable hydrogels based on gelatin and PEDOT:PSS for a minimally invasive approach in nervous tissue regeneration.

作者信息

Furlani Franco, Montanari Margherita, Sangiorgi Nicola, Saracino Emanuela, Campodoni Elisabetta, Sanson Alessandra, Benfenati Valentina, Tampieri Anna, Panseri Silvia, Sandri Monica

机构信息

National Research Council of Italy - Institute of Science and Technology for Ceramics, (ISTEC-CNR), Via Granarolo 64, I - 48018, Faenza, RA, Italy.

National Research Council of Italy - Institute of Organic Synthesis and Photoreactivity (ISOF-CNR), via Gobetti, 101, I - 40129, Bologna, Italy.

出版信息

Biomater Sci. 2022 Apr 12;10(8):2040-2053. doi: 10.1039/d2bm00116k.

Abstract

This work describes the development of electroconductive hydrogels as injectable matrices for neural tissue regeneration by exploiting a biocompatible conductive polymer - poly(3,4-ethylenedioxythiophene)-poly(styrenesulfonate) (PEDOT:PSS) - combined with a biomimetic polymer network made of gelatin. Our approach involved also genipin - a natural cross-linking agent - to promote gelation of gelatin networks embedding PEDOT:PSS. The achieved results suggest that physical-chemical properties of the resulting hydrogels, like impedance, gelation time, mechanical properties, swelling and degradation in physiological conditions, can be finely tuned by the amount of PEDOT:PSS and genipin used in the formulation. Furthermore, the presence of PEDOT:PSS (i) enhances the electrical conductivity, (ii) improves the shear modulus of the resulting hydrogels though (iii) partially impairing their resistance to shear deformation, (iv) reduces gelation time and (v) reduces their swelling ability in physiological medium. Additionally, the resulting electroconductive hydrogels demonstrate enhanced adhesion and growth of primary rat cortical astrocytes. Given the permissive interaction of hydrogels with primary astrocytes, the presented biomimetic, electroconductive and injectable hydrogels display potential applications as minimally invasive systems for neurological therapies and damaged brain tissue repair.

摘要

这项工作描述了通过利用生物相容性导电聚合物——聚(3,4-乙撑二氧噻吩)-聚(苯乙烯磺酸盐)(PEDOT:PSS)与由明胶制成的仿生聚合物网络相结合,开发用于神经组织再生的可注射导电水凝胶。我们的方法还涉及京尼平——一种天然交联剂——以促进嵌入PEDOT:PSS的明胶网络的凝胶化。所取得的结果表明,通过配方中使用的PEDOT:PSS和京尼平的量,可以精细调节所得水凝胶的物理化学性质,如阻抗、凝胶化时间、机械性能、在生理条件下的溶胀和降解。此外,PEDOT:PSS的存在(i)提高了电导率,(ii)提高了所得水凝胶的剪切模量,尽管(iii)部分损害了它们对剪切变形的抵抗力,(iv)缩短了凝胶化时间,(v)降低了它们在生理介质中的溶胀能力。此外,所得的导电水凝胶显示出原代大鼠皮质星形胶质细胞的粘附和生长增强。鉴于水凝胶与原代星形胶质细胞的允许相互作用,所呈现的仿生、导电和可注射水凝胶作为神经治疗和受损脑组织修复的微创系统显示出潜在的应用。

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