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具有改善的细胞黏附与增殖行为的亚微米-微米级混合支架的电流体动力学打印

Electrohydrodynamic printing of submicron-microscale hybrid scaffolds with improved cellular adhesion and proliferation behaviors.

作者信息

Zhang Bing, Li Shikang, He Jiankang, Lei Qi, Wu Chuang, Song Aiping, Zhang Chao

机构信息

College of Mechanical Engineering, Yangzhou University, Yangzhou 225127, People's Republic of China.

State Key Laboratory for Manufacturing Systems Engineering, Xi'an Jiaotong University, Xi'an 710049, People's Republic of China.

出版信息

Nanotechnology. 2022 Dec 23;34(10). doi: 10.1088/1361-6528/aca97f.

Abstract

Electrohydrodynamic (EHD) printing has been considered as a mature strategy to mimic the hierarchical microarchitectures in native extracellular matrix (ECM). Most of the EHD-printed scaffolds possess single-dimensional fibrous structures, which cannot mimic the multi-dimensional architectures for enhanced cellular behaviors. Here we developed a two-nozzle EHD printing system to fabricate hybrid scaffolds involving submicron and microscale features. The polyethylene oxide- polycaprolactone (PEO-PCL) submicron fibers were fabricated via solution-based EHD printing with a width of 527 ± 56 nm. The PCL microscale fibers were fabricated via melt-based EHD printing with a width of 11.2 ± 2.3m. The hybrid scaffolds were fabricated by printing the submicron and microscale fibers in a layer-by-layer manner. The microscale scaffolds were utilized as a control group. Rat myocardial cells (H9C2 cells) were cultured on the two kinds of scaffolds for the culturing period of 1, 3 and 5 d. Biological results indicated that H9C2 cells showed enhanced adhesion and proliferation behaviors on the hybrid scaffold than those on the pure microscale scaffold. This work offers a facile and scalable strategy to fabricate multiscale synthetic scaffolds, which might be further explored to regulate cellular behaviors in the fields of tissue regeneration and biomedical engineering.

摘要

电流体动力学(EHD)打印被认为是一种成熟的策略,用于模拟天然细胞外基质(ECM)中的分级微结构。大多数EHD打印的支架具有一维纤维结构,无法模拟用于增强细胞行为的多维结构。在此,我们开发了一种双喷嘴EHD打印系统,以制造具有亚微米和微米级特征的混合支架。聚环氧乙烷-聚己内酯(PEO-PCL)亚微米纤维通过基于溶液的EHD打印制备,宽度为527±56nm。PCL微米级纤维通过基于熔体的EHD打印制备,宽度为11.2±2.3μm。混合支架通过逐层打印亚微米和微米级纤维制成。微米级支架用作对照组。大鼠心肌细胞(H9C2细胞)在两种支架上培养1、3和5天。生物学结果表明,与纯微米级支架相比,H9C2细胞在混合支架上表现出更强的粘附和增殖行为。这项工作提供了一种简便且可扩展的策略来制造多尺度合成支架,这可能在组织再生和生物医学工程领域中进一步探索用于调节细胞行为。

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