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用于软组织工程与再生的电纺纳米纤维支架及其水凝胶复合材料

Electrospun Nanofiber Scaffolds and Their Hydrogel Composites for the Engineering and Regeneration of Soft Tissues.

作者信息

Manoukian Ohan S, Matta Rita, Letendre Justin, Collins Paige, Mazzocca Augustus D, Kumbar Sangamesh G

机构信息

Department of Orthopaedic Surgery, University of Connecticut Health, Farmington, CT, USA.

Department of Biomedical Engineering, University of Connecticut, Storrs, CT, USA.

出版信息

Methods Mol Biol. 2017;1570:261-278. doi: 10.1007/978-1-4939-6840-4_18.

Abstract

Electrospinning has emerged as a simple, elegant, and scalable technique that can be used to fabricate polymeric nanofibers. Pure polymers as well as blends and composites of both natural and synthetic ones have been successfully electrospun into nanofiber matrices for many biomedical applications. Tissue-engineered medical implants, such as polymeric nanofiber scaffolds, are potential alternatives to autografts and allografts, which are short in supply and carry risks of disease transmission. These scaffolds have been used to engineer various soft tissues, including connective tissues, such as skin, ligament, and tendon, as well as nonconnective ones, such as vascular, muscle, and neural tissue. Electrospun nanofiber matrices show morphological similarities to the natural extracellular matrix (ECM), characterized by ultrafine continuous fibers, high surface-to-volume ratios, high porosities, and variable pore-size distributions. The physiochemical properties of nanofiber matrices can be controlled by manipulating electrospinning parameters so that they meet the requirements of a specific application.Nanostructured implants show improved biological performance over bulk materials in aspects of cellular infiltration and in vivo integration, taking advantage of unique quantum, physical, and atomic properties. Furthermore, the topographies of such scaffolds has been shown to dictate cellular attachment, migration, proliferation, and differentiation, which are critical in engineering complex functional tissues with improved biocompatibility and functional performance. This chapter discusses the use of the electrospinning technique in the fabrication of polymer nanofiber scaffolds utilized for the regeneration of soft tissues. Selected scaffolds will be seeded with human mesenchymal stem cells (hMSCs), imaged using scanning electron and confocal microscopy, and then evaluated for their mechanical properties as well as their abilities to promote cell adhesion, proliferation , migration, and differentiation.

摘要

静电纺丝已成为一种简单、精巧且可扩展的技术,可用于制造聚合物纳米纤维。纯聚合物以及天然和合成聚合物的共混物与复合材料已成功通过静电纺丝制成纳米纤维基质,用于多种生物医学应用。组织工程化医疗植入物,如聚合物纳米纤维支架,是自体移植和异体移植的潜在替代品,自体移植和异体移植供应短缺且存在疾病传播风险。这些支架已用于构建各种软组织,包括结缔组织,如皮肤、韧带和肌腱,以及非结缔组织,如血管、肌肉和神经组织。静电纺丝纳米纤维基质在形态上与天然细胞外基质(ECM)相似,其特征在于超细连续纤维、高比表面积、高孔隙率和可变的孔径分布。纳米纤维基质的物理化学性质可通过控制静电纺丝参数来调节,以满足特定应用的要求。纳米结构植入物利用独特的量子、物理和原子特性,在细胞浸润和体内整合方面比块状材料具有更好的生物学性能。此外,已证明此类支架的拓扑结构决定细胞的附着、迁移、增殖和分化,这对于构建具有改善的生物相容性和功能性能的复杂功能组织至关重要。本章讨论了静电纺丝技术在制造用于软组织再生的聚合物纳米纤维支架中的应用。选择的支架将接种人间充质干细胞(hMSCs),使用扫描电子显微镜和共聚焦显微镜成像,然后评估其力学性能以及促进细胞粘附、增殖、迁移和分化的能力。

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