肌发生
骨骼肌
再生(生物学)
微流控
生物医学工程
材料科学
粘弹性
计算机科学
纳米技术
生化工程
生物系统
生物物理学
细胞生物学
解剖
生物
复合材料
工程类
作者
Chen Xie,Tao Sun,Shingo Shimoda,Huaping Wang,Qiang Huang,Toshio Fukuda,Qing Shi
出处
期刊:Advanced Science
[Wiley]
日期:2024-09-12
卷期号:11 (44): e2403622-e2403622
被引量:2
标识
DOI:10.1002/advs.202403622
摘要
Abstract Hydrogel‐based 3D cell cultures are extensively utilized to create biomimetic cellular microstructures. However, there is still lack of effective method for both evaluation of the complex interaction of cells with hydrogel and the functionality of the resulting micro‐structures. This limitation impedes the further application of these microstructures as microphysiological models (microPMs) for the screening of potential culture condition combinations to enhance the skeletal muscle regeneration. This paper introduces a two‐probe micromanipulation method for the large‐scale assessment of viscoelasticity and contractile force (CF) of skeletal muscle microPMs, which are produced in high‐throughput via microfluidic spinning and 96‐well culture. The collected data demonstrate that viscoelasticity parameters ( E * and tanδ ) and CF both measured in a solution environment are indicative of the formation of cellular structures without hydrogel residue and the subsequent generation of myotubes, respectively. This study have developed screening criterias that integrate E * , tanδ , and CF to examine the effects of multifactorial interactions on muscle fiber repair under hypoxic conditions and within bioprinted bipennate muscle structures. This approach has improved the quality of hypoxic threshold evaluation and aligned cell growth in 3D. The proposed method is useful in exploring the role of different factors in muscle tissue regeneration with limited resources.
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