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静电纺丝定向 SF/磁性纳米粒子共混纳米纤维支架诱导成肌细胞定向和分化。

Electrospinning Aligned SF/Magnetic Nanoparticles-Blend Nanofiber Scaffolds for Inducing Skeletal Myoblast Alignment and Differentiation.

机构信息

Key Laboratory of Silkworm and Bee Resource Utilization and Innovation of Zhejiang Province, Institute of Applied Bioresource Research, College of Animal Science, Zhejiang University, Hangzhou, Zhejiang 310058, P. R. China.

Department of Plastic Surgery, Zhejiang Hospital, 12 Lingyin Road, Xihu District, Hangzhou 310013, P. R. China.

出版信息

ACS Appl Bio Mater. 2024 Nov 18;7(11):7710-7718. doi: 10.1021/acsabm.4c01198. Epub 2024 Oct 24.

Abstract

In the realm of skeletal muscle tissue engineering, anisotropic materials that emulate natural tissues show substantial promise. Electrospun scaffolds, mimicking the fibrillar structure of the extracellular matrix, are commonly employed but often fall short in achieving optimal alignment and mechanical strength. Silk fibroin has emerged as a versatile material in tissue engineering, valued for its biocompatibility, mechanical robustness, and biodegradability. However, conventional electrospinning methods of SF result in randomly oriented fibers, limiting their efficacy. In this work, we developed a straightforward method to fabricate directional tissue scaffolds using silk fibroin. By integrating a magnetic field collecting device and incorporating FeO nanoparticles into the spinning solution, we successfully produced well-aligned silk nanofiber scaffolds. These aligned fibers not only improved scaffold orientation and mechanical properties but also exhibited magnetic responsiveness. The aligned SF scaffolds effectively guided the adhesion, proliferation, and differentiation of mesenchymal stem cells along the fiber direction. Cultured on these scaffolds, myoblast C2C12 cells demonstrated oriented growth, highlighting the potential of aligned SF fibers in advancing skeletal muscle engineering for biomedical applications.

摘要

在骨骼肌组织工程领域,各向异性材料模拟天然组织显示出巨大的潜力。电纺支架模仿细胞外基质的纤维状结构,被广泛应用,但往往难以实现最佳的取向和机械强度。丝素蛋白作为组织工程中的一种多功能材料,因其生物相容性、机械强度和可生物降解性而备受重视。然而,SF 的常规电纺方法得到的是随机取向的纤维,限制了其效果。在这项工作中,我们开发了一种简单的方法,使用丝素蛋白制造定向组织支架。通过集成磁场收集装置并将 FeO 纳米颗粒纳入纺丝溶液中,我们成功地生产出具有良好取向的丝纳米纤维支架。这些取向纤维不仅改善了支架的取向和机械性能,还表现出了磁响应性。定向 SF 支架有效地引导间充质干细胞沿着纤维方向的黏附、增殖和分化。在这些支架上培养的 C2C12 成肌细胞表现出定向生长,突出了定向 SF 纤维在推进生物医学应用的骨骼肌工程中的潜力。

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