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新型机械强度高和可生物降解的多通道平台设计,用于治疗周围神经损伤。

Design of Novel Mechanically Resistant and Biodegradable Multichannel Platforms for the Treatment of Peripheral Nerve Injuries.

机构信息

Department of Drug Sciences, University of Pavia, Viale Taramelli, 12, 27100 Pavia, Italy.

Department of Public Health, Experimental, and Forensic Medicine, University of Pavia, Via Forlanini 2, 27100 Pavia, Italy.

出版信息

Biomacromolecules. 2023 Apr 10;24(4):1731-1743. doi: 10.1021/acs.biomac.2c01498. Epub 2023 Mar 15.

Abstract

Peripheral nerve injury is one of the most debilitating pathologies that severely impair patients' life. Although many efforts have been made to advance in the treatment of such a complex disorder, successful strategies to ensure full recovery are still scarce. The aim of the present work was to develop flexible and mechanically resistant platforms intended to act as a support and guide for neural cells during the regeneration process of peripheral nerve injury. For this purpose, poly(lactic--glycolic acid) (PLGA)/poly(d,l-lactic acid) (PDLLA)/poly(ethylene glycol) 400 (PEG)-multichannel-based scaffolds (MCs) were prepared through a multistep process involving electrospun microfibers coated with a polymer blend solution and used as a sacrificial mold. In particular, scaffolds characterized by random (MCR) and aligned (MCA) multichannel were obtained. A design of experiments approach (DoE) was employed to identify a scaffold-optimized composition. MCs were characterized for morphological and mechanical properties, suturability, degradability, cell colonization, and in vivo safety. A new biodegradable, biocompatible, and safe microscale multichannel scaffold was developed as the result of an easy multistep procedure.

摘要

周围神经损伤是一种最具致残性的疾病,严重影响患者的生活。尽管在治疗这种复杂疾病方面已经做出了许多努力,但确保完全康复的成功策略仍然很少。本工作的目的是开发灵活且机械强度高的平台,旨在在外周神经损伤的再生过程中充当神经细胞的支撑和引导。为此,通过涉及涂覆有聚合物共混物溶液的电纺微纤维的多步过程制备了聚(乳酸-乙醇酸)(PLGA)/聚(D,L-乳酸)(PDLLA)/聚乙二醇 400(PEG)-多通道支架(MCs),并用作牺牲模具。特别地,获得了具有随机(MCR)和对齐(MCA)多通道的支架。采用实验设计方法(DoE)来确定支架的优化组成。对 MCs 的形态和机械性能、可缝合性、可降解性、细胞定植和体内安全性进行了表征。作为一种简单的多步过程的结果,开发了一种新的可生物降解、生物相容和安全的微尺度多通道支架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/76a7/10091422/301d1d44c32f/bm2c01498_0002.jpg

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