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去细胞化技术及其在神经系统修复和再生中的应用。

Decellularization techniques and their applications for the repair and regeneration of the nervous system.

机构信息

Department of Bioengineering, University of Pittsburgh, 450 Technology Drive, Pittsburgh, PA 15219, United States.

Department of Bioengineering, University of Pittsburgh, 450 Technology Drive, Pittsburgh, PA 15219, United States; McGowan Institute for Regenerative Medicine, University of Pittsburgh, 450 Technology Drive, Pittsburgh, PA 15219, United States; Department of Obstetrics, Gynecology and Reproductive Sciences, Magee-Womens Research Institute, University of Pittsburgh, 450 Technology Drive, Pittsburgh, PA 15219, United States.

出版信息

Methods. 2020 Jan 15;171:41-61. doi: 10.1016/j.ymeth.2019.07.023. Epub 2019 Aug 6.

Abstract

A variety of surgical and non-surgical approaches have been used to address the impacts of nervous system injuries, which can lead to either impairment or a complete loss of function for affected patients. The inherent ability of nervous tissues to repair and/or regenerate is dampened due to irreversible changes that occur within the tissue remodeling microenvironment following injury. Specifically, dysregulation of the extracellular matrix (i.e., scarring) has been suggested as one of the major factors that can directly impair normal cell function and could significantly alter the regenerative potential of these tissues. A number of tissue engineering and regenerative medicine-based approaches have been suggested to intervene in the process of remodeling which occurs following injury. Decellularization has become an increasingly popular technique used to obtain acellular scaffolds, and their derivatives (hydrogels, etc.), which retain tissue-specific components, including critical structural and functional proteins. These advantageous characteristics make this approach an intriguing option for creating materials capable of stimulating the sensitive repair mechanisms associated with nervous system injuries. Over the past decade, several diverse decellularization methods have been implemented specifically for nervous system applications in an attempt to carefully remove cellular content while preserving tissue morphology and composition. Each application-based decellularized ECM product requires carefully designed treatments that preserve the unique biochemical signatures associated within each tissue type to stimulate the repair of brain, spinal cord, and peripheral nerve tissues. Herein, we review the decellularization techniques that have been applied to create biomaterials with the potential to promote the repair and regeneration of tissues within the central and peripheral nervous system.

摘要

已经采用了多种手术和非手术方法来解决神经系统损伤的影响,这些损伤可能导致受影响患者的功能受损或完全丧失。由于损伤后组织重塑微环境中发生的不可逆转变化,神经组织自我修复和/或再生的固有能力受到抑制。具体而言,细胞外基质(即瘢痕形成)的失调已被认为是可以直接损害正常细胞功能的主要因素之一,并可能显著改变这些组织的再生潜力。已经提出了许多基于组织工程和再生医学的方法来干预损伤后发生的重塑过程。脱细胞技术已成为一种越来越受欢迎的技术,用于获得无细胞支架及其衍生物(水凝胶等),这些支架及其衍生物保留了组织特异性成分,包括关键的结构和功能蛋白。这些有利的特性使得这种方法成为一种很有吸引力的选择,可以创造出能够刺激与神经系统损伤相关的敏感修复机制的材料。在过去的十年中,已经针对神经系统应用实施了几种不同的脱细胞方法,试图在保留组织形态和组成的同时,仔细去除细胞内容物。每种基于应用的脱细胞 ECM 产品都需要精心设计的处理方法,以保留每种组织类型特有的生化特征,从而刺激大脑、脊髓和周围神经组织的修复。在此,我们综述了已应用于创建具有促进中枢和周围神经系统组织修复和再生潜力的生物材料的脱细胞技术。

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