Development of Electrospinning Setup for Vascular Tissue-Engineering Application with Thick-Hierarchical Fiber Alignment.

IF 4.4 4区 医学 Q2 CELL & TISSUE ENGINEERING
Shen Chen, Chao Xie, Xiaoxi Long, Xianwei Wang, Xudong Li, Peng Liu, Jiabin Liu, Zuyong Wang
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Abstract

Background: Tissue engineering holds promise for vascular repair and regeneration by mimicking the extracellular matrix of blood vessels. However, achieving a functional and thick vascular wall with aligned fiber architecture by electrospinning remains a significant challenge.

Methods: A novel electrospinning setup was developed that utilizes an auxiliary electrode and a spring. The impact of process parameters on fiber size and morphology was investigated. The structure and functions of the scaffolds were evaluated through material characterization and assessments of cellular biocompatibility.

Results: The new setup enabled controlled deposition of fibers in different designed orientations. The fabricated small-diameter vascular scaffolds consisted of an inner layer of longitudinally oriented fibers and an outer layer of circumferentially oriented fibers (L + C vascular scaffold). Key parameters, including rotational speed, the utilization of the auxiliary electrode, and top-to-collector distance (TCD) significantly influenced fiber orientation. Additionally, voltage, TCD, feed rate, needle size, auxiliary electrode and collector-auxiliary electrode distance affected fiber diameter and distribution. Mechanical advantages and improved surface wettability of L + C vascular scaffold were confirmed through tensile testing and water contact angle. Cellular experiments indicated that L + C vascular scaffold facilitated cell adhesion and proliferation, with human umbilical vein endothelial cells and smooth muscle cells attaching and elongating along the fiber direction of the inner and outer layer, respectively.

Conclusion: This study demonstrated the feasibility of fabricating fiber-aligned, thick-walled vascular scaffolds using a modified electrospinning setup. The findings provided insights into how the auxiliary electrode, specific collector influenced fiber deposition, potentially advancing biomimetic vascular scaffold engineering.

血管组织工程用厚层纤维定向静电纺丝装置的研制。
背景:组织工程通过模拟血管的细胞外基质,为血管修复和再生提供了希望。然而,通过静电纺丝实现具有排列纤维结构的功能和厚血管壁仍然是一个重大挑战。方法:研制了一种利用辅助电极和弹簧的新型静电纺丝装置。研究了工艺参数对纤维尺寸和形貌的影响。通过材料表征和细胞生物相容性评估对支架的结构和功能进行评价。结果:新装置可以控制纤维在不同设计方向的沉积。制备的小直径血管支架由内层纵向取向纤维和外层周向取向纤维组成(L + C血管支架)。关键参数,包括转速,辅助电极的利用率和顶部到集电极的距离(TCD)显著影响光纤取向。此外,电压、TCD、进给速度、针径、辅助电极和集电极-辅助电极距离也会影响纤维直径和分布。通过拉伸试验和水接触角证实了L + C血管支架的力学优势和表面润湿性的改善。细胞实验表明,L + C血管支架促进细胞粘附和增殖,人脐静脉内皮细胞和平滑肌细胞分别沿内层和外层纤维方向附着和伸长。结论:本研究证明了利用改进的静电纺丝装置制造纤维排列的厚壁血管支架的可行性。这些发现为辅助电极、特定集电极如何影响纤维沉积提供了见解,有可能推进仿生血管支架工程。
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来源期刊
Tissue engineering and regenerative medicine
Tissue engineering and regenerative medicine CELL & TISSUE ENGINEERING-ENGINEERING, BIOMEDICAL
CiteScore
6.80
自引率
5.60%
发文量
83
审稿时长
6-12 weeks
期刊介绍: Tissue Engineering and Regenerative Medicine (Tissue Eng Regen Med, TERM), the official journal of the Korean Tissue Engineering and Regenerative Medicine Society, is a publication dedicated to providing research- based solutions to issues related to human diseases. This journal publishes articles that report substantial information and original findings on tissue engineering, medical biomaterials, cells therapy, stem cell biology and regenerative medicine.
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Paraformaldehyde solution (PFA, 4%)
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Phosphate-buffered saline (PBS)
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