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气道平滑肌细胞在凹凸管状表面的紧急差异组织

Emergent Differential Organization of Airway Smooth Muscle Cells on Concave and Convex Tubular Surface.

作者信息

Jin Yang, Liu Lei, Yu Peili, Lin Feng, Shi Xiaohao, Guo Jia, Che Bo, Duan Yiyuan, Li Jingjing, Pan Yan, Luo Mingzhi, Deng Linhong

机构信息

Key Laboratory for Biorheological Science and Technology of Ministry of Education, Bioengineering College, Chongqing University, Chongqing, China.

Institute of Biomedical Engineering and Health Sciences, Changzhou University, Changzhou, China.

出版信息

Front Mol Biosci. 2021 Sep 28;8:717771. doi: 10.3389/fmolb.2021.717771. eCollection 2021.

Abstract

Airway smooth muscle cells (ASMCs) exist in a form of helical winding bundles within the bronchial airway wall. Such tubular tissue provides cells with considerable curvature as a physical constraint, which is widely thought as an important determinant of cell behaviors. However, this process is difficult to mimic in the conventional planar cell culture system. Here, we report a method to develop chips with cell-scale tubular (concave and convex) surfaces from fused deposition modeling 3D printing to explore how ASMCs adapt to the cylindrical curvature for morphogenesis and function. Results showed that ASMCs self-organized into two distinctively different patterns of orientation on the concave and convex surfaces, eventually aligning either invariably perpendicular to the cylinder axis on the concave surface or curvature-dependently angled on the convex surface. Such oriented alignments of the ASMCs were maintained even when the cells were in dynamic movement during migration and spreading along the tubular surfaces. Furthermore, the ASMCs underwent a phenotype transition on the tubular (both concave and convex) surfaces, significantly reducing contractility as compared to ASMCs cultured on a flat surface, which was reflected in the changes of proliferation, migration and gene expression of contractile biomarkers. Taken together, our study revealed a curvature-induced pattern formation and functional modulation of ASMCs , which is not only important to better understanding airway smooth muscle pathophysiology, but may also be useful in the development of new techniques for airway disease diagnosis and therapy such as engineering airway tissues or organoids.

摘要

气道平滑肌细胞(ASMCs)以螺旋缠绕束的形式存在于支气管气道壁内。这种管状组织为细胞提供了相当大的曲率作为物理约束,人们普遍认为这是细胞行为的一个重要决定因素。然而,在传统的平面细胞培养系统中很难模拟这个过程。在这里,我们报告一种方法,通过熔融沉积建模3D打印来开发具有细胞尺度管状(凹凸)表面的芯片,以探索ASMCs如何适应圆柱曲率进行形态发生和功能调节。结果表明,ASMCs在凹面和凸面上自组织成两种明显不同的取向模式,最终在凹面上始终垂直于圆柱轴排列,而在凸面上则根据曲率呈一定角度排列。即使细胞在沿管状表面迁移和铺展过程中处于动态运动状态,ASMCs的这种定向排列也能保持。此外,ASMCs在管状(凹面和凸面)表面上发生了表型转变,与在平面上培养的ASMCs相比,收缩性显著降低,这反映在增殖、迁移和收缩生物标志物基因表达的变化上。综上所述,我们的研究揭示了ASMCs的曲率诱导模式形成和功能调节,这不仅对于更好地理解气道平滑肌病理生理学很重要,而且可能在气道疾病诊断和治疗新技术的开发中有用,如工程化气道组织或类器官。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/10e2/8505749/9e06d4fc7736/fmolb-08-717771-g001.jpg

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