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水凝胶辅助静电纺丝制备 3D 复杂定制纳米纤维宏观结构。

Hydrogel-Assisted Electrospinning for Fabrication of a 3D Complex Tailored Nanofiber Macrostructure.

机构信息

Department of Mechanical Engineering, Pohang University of Science and Technology (POSTECH), 77 Cheongam-ro, Nam-gu, Pohang, Gyeongbuk 37673, South Korea.

Department of Public Health Science, Graduate School, Korea University, 145 Anam-ro, Seongbuk-gu, Seoul 02841, South Korea.

出版信息

ACS Appl Mater Interfaces. 2020 Nov 18;12(46):51212-51224. doi: 10.1021/acsami.0c14438. Epub 2020 Nov 5.

Abstract

Electrospinning has shown great potential in tissue engineering and regenerative medicine due to a high surface-area-to-volume ratio and an extracellular matrix-mimicking structure of electrospun nanofibers, but the fabrication of a complex three-dimensional (3D) macroscopic configuration with electrospun nanofibers remains challenging. In the present study, we developed a novel hydrogel-assisted electrospinning process (GelES) to fabricate a 3D nanofiber macrostructure with a 3D complex but tailored configuration by utilizing a 3D hydrogel structure as a grounded collector instead of a metal collector in conventional electrospinning. The 3D hydrogel collector was discovered to effectively concentrate the electric field toward itself similar to the metal collector, thereby depositing electrospun nanofibers directly on its exterior surface. Synergistic advantages of the hydrogel (e.g., biocompatibility and thermally reversible sol-gel transition) and the 3D nanofiber macrostructure (e.g., mechanical robustness and high permeability) provided by the GelES process were demonstrated in a highly permeable tubular tissue graft and a robust drug- or cell-encapsulation construct. GelES is expected to broaden potential applications of electrospinning to not only provide drug/cell delivery and tissue regeneration but also an drug testing platform by increasing the degree of freedom in the configuration of the 3D nanofiber macrostructure.

摘要

静电纺丝由于其高的比表面积与体积比和类似细胞外基质的结构,在组织工程和再生医学方面显示出巨大的潜力,但是用静电纺丝纤维制造复杂的三维(3D)宏观结构仍然具有挑战性。在本研究中,我们开发了一种新颖的水凝胶辅助静电纺丝工艺(GelES),通过利用 3D 水凝胶结构作为接地收集器而不是传统静电纺丝中的金属收集器,来制造具有 3D 复杂但定制结构的 3D 纳米纤维宏观结构。发现 3D 水凝胶收集器可以有效地将电场集中在自身上,类似于金属收集器,从而将静电纺丝纳米纤维直接沉积在其外表面上。GelES 工艺提供的水凝胶(例如生物相容性和热可逆溶胶-凝胶转变)和 3D 纳米纤维宏观结构(例如机械强度和高渗透性)的协同优势在高度渗透的管状组织移植物和坚固的药物/细胞封装结构中得到了证明。GelES 有望扩大静电纺丝的潜在应用范围,不仅可以提供药物/细胞输送和组织再生,而且还可以通过增加 3D 纳米纤维宏观结构的配置自由度,提供药物测试平台。

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