Wan Teng, Wang Yi-Lin, Zhang Feng-Shi, Zhang Xiao-Meng, Zhang Yi-Chong, Jiang Hao-Ran, Zhang Meng, Zhang Pei-Xun
Department of OrthopedSics and Trauma, Peking University People's Hospital, Beijing 100044, China.
Key Laboratory of Trauma and Neural Regeneration, Peking University, Beijing 100044, China.
Int J Mol Sci. 2023 Sep 15;24(18):14132. doi: 10.3390/ijms241814132.
Porous structure is an important three-dimensional morphological feature of the peripheral nerve guidance conduit (NGC), which permits the infiltration of cells, nutrients, and molecular signals and the discharge of metabolic waste. Porous structures with precisely customized pore sizes, porosities, and connectivities are being used to construct fully permeable, semi-permeable, and asymmetric peripheral NGCs for the replacement of traditional nerve autografts in the treatment of long-segment peripheral nerve injury. In this review, the features of porous structures and the classification of NGCs based on these characteristics are discussed. Common methods for constructing 3D porous NGCs in current research are described, as well as the pore characteristics and the parameters used to tune the pores. The effects of the porous structure on the physical properties of NGCs, including biodegradation, mechanical performance, and permeability, were analyzed. Pore structure affects the biological behavior of Schwann cells, macrophages, fibroblasts, and vascular endothelial cells during peripheral nerve regeneration. The construction of ideal porous structures is a significant advancement in the regeneration of peripheral nerve tissue engineering materials. The purpose of this review is to generalize, summarize, and analyze methods for the preparation of porous NGCs and their biological functions in promoting peripheral nerve regeneration to guide the development of medical nerve repair materials.
多孔结构是周围神经引导导管(NGC)重要的三维形态特征,它允许细胞、营养物质和分子信号的浸润以及代谢废物的排出。具有精确定制孔径、孔隙率和连通性的多孔结构正被用于构建完全可渗透、半渗透和不对称的周围NGC,以替代传统神经自体移植用于治疗长段周围神经损伤。在本综述中,讨论了多孔结构的特征以及基于这些特征的NGC分类。描述了当前研究中构建三维多孔NGC的常用方法,以及孔隙特征和用于调节孔隙的参数。分析了多孔结构对NGC物理性质的影响,包括生物降解、力学性能和渗透性。孔隙结构影响周围神经再生过程中雪旺细胞、巨噬细胞、成纤维细胞和血管内皮细胞的生物学行为。理想多孔结构的构建是周围神经组织工程材料再生的一项重大进展。本综述的目的是归纳、总结和分析多孔NGC的制备方法及其在促进周围神经再生中的生物学功能,以指导医用神经修复材料的发展。