打印毫米级曲率通道并破译其对M-22细胞增殖、形态、取向和迁移的影响。

IF 6 3区 医学 Q1 ENGINEERING, BIOMEDICAL
Huinan Lai, Yuye Huang, Jun Yin, Jin Qian
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引用次数: 0

摘要

复杂的组织弯曲结构已经被认为可以影响细胞的行为和功能。细胞感知的组织曲率大约在毫米尺度上。然而,以往的研究主要集中在微纳米尺度空间弯曲结构的影响上,低估了毫米尺度曲率的重要性。在这里,我们采用熔融沉积建模(FDM),两级温度控制,超细锥形针,稳定的气压,以及精确的运动平台,以定制生产均匀,精密,弯曲的纤维;系统地研究了M-22细胞对fdm打印的半径为1.5 ~ 3mm的弯曲通道的响应。细胞与这些弯曲的通道排列,并在不同曲率的通道中表现出不同的纵横比。细胞的增殖、单个细胞的迁移速度和集体细胞的前端速度受到这些弯曲结构的严格调控。此外,提出了基于力平衡的计算模型,探讨了曲率影响胞体行为的基本因素和机理。我们的模拟结果表明,在细胞迁移过程中,通道的曲率和宽度以及细胞的相对大小会显著影响细胞边界相互作用力和细胞产生的有效伪足的数量。这些结果提供了对毫米尺度曲率对细胞的影响的全面理解,并为支架的设计提供了基础,这些支架可以很容易地通过复杂的微纳米尺度弯曲特征来调节组织工程中的细胞行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Printing channels with millimeter-scale curvature and deciphering their effect on the proliferation, morphology, orientation, and migration of M-22 cells.

Printing channels with millimeter-scale curvature and deciphering their effect on the proliferation, morphology, orientation, and migration of M-22 cells.

Printing channels with millimeter-scale curvature and deciphering their effect on the proliferation, morphology, orientation, and migration of M-22 cells.

Printing channels with millimeter-scale curvature and deciphering their effect on the proliferation, morphology, orientation, and migration of M-22 cells.

Complex curved structures of tissues have been recognized to influence the behavior and function of cells. Tissue curvatures sensed by cells are approximately on the millimeter scale. However, previous research mainly focused on the effect of micro- and nano-scale spatial curved structures, underestimating the significance of milli-scale curvature. Here, we employed fused deposition modeling (FDM) with two-stage temperature control, superfine cone-shaped needle, stable air pressure, and precise motion platform for the customized production of homogeneous, precise, and curved fibers; the responses of M-22 cells to FDM-printed curved channels with radii of 1.5 to 3 mm were systematically investigated. The cells aligned with these curved channels and exhibited various aspect ratios in the channels with different curvatures. Cell proliferation, migration speed of single cells, and front-end speed of collective cells were tightly regulated by these curved structures. Also, a computational model based on force equilibrium was proposed to explore the essential factors and mechanisms of curvature affecting cell behavior. Our simulation results demonstrated that the curvature and width of channels, along with the relative size of cells, can significantly impact the cell-boundary interaction force and the number of valid pseudopodia generated by cells in the process of cell migration. These results provide a comprehensive understanding of the effect of milli-scale curvature on the cells and underpin the design of scaffolds that can be produced easily with sophisticated micro- and nano-scale curved features to regulate cell behavior in tissue engineering.

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来源期刊
CiteScore
6.90
自引率
4.80%
发文量
81
期刊介绍: The International Journal of Bioprinting is a globally recognized publication that focuses on the advancements, scientific discoveries, and practical implementations of Bioprinting. Bioprinting, in simple terms, involves the utilization of 3D printing technology and materials that contain living cells or biological components to fabricate tissues or other biotechnological products. Our journal encompasses interdisciplinary research that spans across technology, science, and clinical applications within the expansive realm of Bioprinting.
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