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自组装水凝胶结构用于神经组织修复。

Self-Assembling Hydrogel Structures for Neural Tissue Repair.

机构信息

Department of Bioengineering and §Centre for Neurotechnology, Imperial College London, London SW72AS, United Kingdom.

出版信息

ACS Biomater Sci Eng. 2021 Sep 13;7(9):4136-4163. doi: 10.1021/acsbiomaterials.1c00030. Epub 2021 Mar 29.

Abstract

Hydrogel materials have been employed as biological scaffolds for tissue regeneration across a wide range of applications. Their versatility and biomimetic properties make them an optimal choice for treating the complex and delicate milieu of neural tissue damage. Aside from finely tailored hydrogel properties, which aim to mimic healthy physiological tissue, a minimally invasive delivery method is essential to prevent off-target and surgery-related complications. The specific class of injectable hydrogels termed self-assembling peptides (SAPs), provide an ideal combination of in situ polymerization combined with versatility for biofunctionlization, tunable physicochemical properties, and high cytocompatibility. This review identifies design criteria for neural scaffolds based upon key cellular interactions with the neural extracellular matrix (ECM), with emphasis on aspects that are reproducible in a biomaterial environment. Examples of the most recent SAPs and modification methods are presented, with a focus on biological, mechanical, and topographical cues. Furthermore, SAP electrical properties and methods to provide appropriate electrical and electrochemical cues are widely discussed, in light of the endogenous electrical activity of neural tissue as well as the clinical effectiveness of stimulation treatments. Recent applications of SAP materials in neural repair and electrical stimulation therapies are highlighted, identifying research gaps in the field of hydrogels for neural regeneration.

摘要

水凝胶材料已被用作组织再生的生物支架,应用范围广泛。它们的多功能性和仿生特性使它们成为治疗神经组织损伤这种复杂和精细环境的最佳选择。除了精细调整的水凝胶特性旨在模拟健康的生理组织外,微创输送方法对于防止靶向和手术相关并发症至关重要。一类特殊的可注射水凝胶称为自组装肽(SAPs),它们将原位聚合与多功能生物功能化、可调理化性质和高细胞相容性结合在一起,提供了理想的组合。本综述根据细胞与神经细胞外基质(ECM)的关键相互作用,确定了神经支架的设计标准,重点介绍了在生物材料环境中可重复的方面。介绍了最新的 SAP 及其修饰方法的示例,重点是生物学、机械和地形线索。此外,鉴于神经组织的内源性电活动以及刺激治疗的临床效果,广泛讨论了 SAP 的电性能和提供适当电和电化学线索的方法。强调了 SAP 材料在神经修复和电刺激治疗中的最新应用,确定了神经再生水凝胶领域的研究空白。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/82e6/8441975/ed26b0c9bc25/ab1c00030_0001.jpg

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