通过减薄电纺支架增厚组织,用于骨骼肌组织工程

BMEMat Pub Date : 2024-05-15 DOI:10.1002/bmm2.12084
Shuo Wang, Xinhuan Wang, Minxuan Jia, Wenli Liu, Qi Gu
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引用次数: 0

摘要

纤维取向一致的电纺支架因其引导细胞形态和诱导细胞功能的能力,被广泛应用于肌肉、心脏、神经、肌腱和软骨等组织工程中。然而,支架的致密纤维结构阻碍了细胞的浸润,从而对高细胞性厚三维组织工程造成了严重障碍。虽然已开发出许多技术来增加电纺支架的孔径并改善细胞浸润/迁移,但这往往会导致细胞与细胞之间的直接接触减少,从而影响细胞分化和组织成熟。本研究提出了一种替代方法,即把支架的厚度减小到细胞尺度,然后把细胞-支架复合体堆叠或滚动成三维结构。我们设计了一系列新型工具来制造、表征和操作超薄电纺支架,这些支架具有很高的可重复性、分辨率和细胞性。我们的研究为肌肉组织工程中的细胞浸润问题提供了一种解决方案,而且具有很强的通用性,可应用于需要具有高分辨率梯度分层模式或复杂空间分布滚动模式结构的各个领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thickening tissue by thinning electrospun scaffolds for skeletal muscle tissue engineering
Electrospun scaffolds with aligned fiber orientation are widely used in tissue engineering, such as muscle, heart, nerve, tendon, and cartilage, due to their ability to guide cell morphology and induce cellular functions. However, the dense fibrous structure of the scaffolds poses a critical obstacle to engineering highly cellular and thick 3D tissues, as it prevents cell infiltration. While many techniques have been developed to increase the pore size of electrospun scaffolds and improve cell infiltration/migration, it often leads to a decrease in direct cell‐cell contact, compromising cell differentiation and tissue maturation. This study presents an alternative approach by reducing the thickness of scaffolds to the cellular scale and stacking or rolling the cell‐scaffold complex into 3D constructs. We devise a series of novel tools to fabricate, characterize, and manipulate ultra‐thin electrospun scaffolds, which demonstrate high reproducibility, resolution, and cellularity. Our study provides a solution to the cell infiltration issue in muscle tissue engineering and is highly versatile, and can be applied to various fields that require structures with high‐resolution gradients in a layered pattern or complex spatial distribution in a rolled pattern.
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