将分层二维毡转化为具有定制梯度特征的多相三维纳米纤维支架,用于组织再生

BMEMat Pub Date : 2023-12-26 DOI:10.1002/bmm2.12065
S. M. Shatil Shahriar, Navatha Shree Polavoram, Syed Muntazir Andrabi, Yajuan Su, Donghee Lee, Huy Quang Tran, Samantha J. Schindler, Jingwei Xie
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引用次数: 0

摘要

具有定制梯度特征的多相支架在组织再生应用中大有可为。在此,这项研究报告了利用受 "固体旋转 "启发的气体发泡膨胀技术将二维(2D)分层纤维毡转化为三维(3D)多相支架的过程。这些支架具有精确控制纤维排列、孔隙大小和区域结构的特点。通过操纵纳米纤维垫层和 Pluronic F127 浓度,可以进一步定制不同支架区域内的孔隙大小和纤维排列。细胞对多相支架的反应表明,在支架上迁移和增殖的细胞数量主要取决于孔隙大小而不是纤维排列。多相支架在大鼠体内皮下植入后,发现支架内有大量细胞浸润、新组织形成、胶原沉积和新血管形成,大大超过了传统纳米纤维垫的能力。组织学检查表明,优化孔隙大小和纤维排列对促进细胞浸润和组织再生非常重要。总之,这些支架在组织建模、组织-组织相互作用研究、界面组织工程以及优化组织再生的高通量筛选方面具有潜在的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Transforming layered 2D mats into multiphasic 3D nanofiber scaffolds with tailored gradient features for tissue regeneration

Transforming layered 2D mats into multiphasic 3D nanofiber scaffolds with tailored gradient features for tissue regeneration

Multiphasic scaffolds with tailored gradient features hold significant promise for tissue regeneration applications. Herein, this work reports the transformation of two-dimensional (2D) layered fiber mats into three-dimensional (3D) multiphasic scaffolds using a ‘solids-of-revolution’ inspired gas-foaming expansion technology. These scaffolds feature precise control over fiber alignment, pore size, and regional structure. Manipulating nanofiber mat layers and Pluronic F127 concentrations allows further customization of pore size and fiber alignment within different scaffold regions. The cellular response to multiphasic scaffolds demonstrates that the number of cells migrated and proliferated onto the scaffolds is mainly dependent on the pore size rather than fiber alignment. In vivo subcutaneous implantation of multiphasic scaffolds to rats reveals substantial cell infiltration, neo tissue formation, collagen deposition, and new vessel formation within scaffolds, greatly surpassing the capabilities of traditional nanofiber mats. Histological examination indicates the importance of optimizing pore size and fiber alignment for the promotion of cell infiltration and tissue regeneration. Overall, these scaffolds have potential applications in tissue modeling, studying tissue-tissue interactions, interface tissue engineering, and high-throughput screening for optimized tissue regeneration.

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