探索神经细胞外基质在新一代再生疗法中的特性和潜力。

J Alberto Ortega, Gisele P Soares de Aguiar, Palash Chandravanshi, Natacha Levy, Elisabeth Engel, Zaida Álvarez
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引用次数: 0

摘要

细胞外基质(ECM)是一个由蛋白质和分子组成的动态复杂网络,它围绕着神经系统中的细胞和组织,并协调着无数的生物功能。本综述仔细研究了细胞与 ECM 之间的各种相互作用,以及 ECM 在神经发育、衰老和疾病过程中发生的化学和物理变化。这些变化在塑造组织形态发生和神经活动方面起着关键作用,从而影响中枢神经系统(CNS)的功能。在我们的综合综述中,我们描述了中枢神经系统 ECM 在不同生理和病理情况下的各种行为,并探讨了使基于 ECM 的中枢神经系统修复和再生策略具有吸引力的独特特性。针对可扩展性、可变性以及与宿主组织的整合等挑战,我们回顾了先进的天然、合成和组合基质方法如何增强生物相容性、机械性能和功能恢复。总之,这篇综述强调了脱细胞 ECM 作为中枢神经系统建模和再生用途的强大工具的潜力,并为这一激动人心的领域的未来研究奠定了基础。本文归类于可植入材料和外科技术 > 纳米技术在组织修复和替代中的应用 治疗方法和药物发现 > 纳米医学治疗神经疾病 可植入材料和外科技术 > 纳米材料和植入物。
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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Exploring the properties and potential of the neural extracellular matrix for next-generation regenerative therapies.

The extracellular matrix (ECM) is a dynamic and complex network of proteins and molecules that surrounds cells and tissues in the nervous system and orchestrates a myriad of biological functions. This review carefully examines the diverse interactions between cells and the ECM, as well as the transformative chemical and physical changes that the ECM undergoes during neural development, aging, and disease. These transformations play a pivotal role in shaping tissue morphogenesis and neural activity, thereby influencing the functionality of the central nervous system (CNS). In our comprehensive review, we describe the diverse behaviors of the CNS ECM in different physiological and pathological scenarios and explore the unique properties that make ECM-based strategies attractive for CNS repair and regeneration. Addressing the challenges of scalability, variability, and integration with host tissues, we review how advanced natural, synthetic, and combinatorial matrix approaches enhance biocompatibility, mechanical properties, and functional recovery. Overall, this review highlights the potential of decellularized ECM as a powerful tool for CNS modeling and regenerative purposes and sets the stage for future research in this exciting field. This article is categorized under: Implantable Materials and Surgical Technologies > Nanotechnology in Tissue Repair and Replacement Therapeutic Approaches and Drug Discovery > Nanomedicine for Neurological Disease Implantable Materials and Surgical Technologies > Nanomaterials and Implants.

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