磁悬浮模拟微重力环境对巨噬细胞Arp2/3复合物通路的影响分析

IF 1.8 4区 生物学 Q3 BIOPHYSICS Journal of Biological Physics Pub Date : 2021-09-17 DOI:10.1007/s10867-021-09581-w
Sufang Wang, Nu Zhang, Jianglei Di, Wenjuan Zhao, Guolin Shi, Ruiheng Xie, Bohan Hu, Hui Yang
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引用次数: 2

摘要

随着地球上的自然资源日益减少,今世后代将需要探索新的行星,这些行星将需要在没有重力或变化重力的条件下旅行。因此,长期空间任务和预期对人类生物学的影响,如免疫功能的变化,日益引起人们的研究兴趣。在这里,我们报道了关于微重力免疫反应机制的新发现,重点是巨噬细胞作为细胞模型。我们利用超导磁体产生模拟微重力环境,并在8、24和48 h三个时间框架内评估模拟微重力对RAW 264.7小鼠巨噬细胞系的影响。作为研究终点,我们测量了细胞活力、吞噬能力,并利用下一代测序技术探索其变化机制。在微重力作用下,巨噬细胞活力和吞噬能力均明显下降。通过两种方法鉴定差异表达基因(DEG):(1)重力依赖性DEG,比较每个时间点的1 g样品和1 g样品;(2)时变DEG,比较同一引力场内时间点样本。通过转录组分析和分子生物学验证,我们的发现首次提示微重力可能通过靶向Arp2/3复合物参与细胞骨架合成,引起巨噬细胞免疫功能障碍,从而影响巨噬细胞吞噬。我们的研究结果为研究太空旅行的生物效应的学术研究做出了贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Analysis of the effects of magnetic levitation to simulate microgravity environment on the Arp2/3 complex pathway in macrophage

With dwindling natural resources on earth, current and future generations will need to explore space to new planets that will require travel under no or varying gravity conditions. Hence, long-term space missions and anticipated impacts on human biology such as changes in immune function are of growing research interest. Here, we reported new findings on mechanisms of immune response to microgravity with a focus on macrophage as a cellular model. We employed a superconducting magnet to generate a simulated microgravity environment and evaluated the effects of simulated microgravity on RAW 264.7 mouse macrophage cell line in three time frames: 8, 24, and 48 h. As study endpoints, we measured cell viability, phagocytosis, and used next-generation sequencing to explore its changing mechanism. Macrophage cell viability and phagocytosis both showed a marked decrease under microgravity. The differentially expressed genes (DEG) were identified in two ways: (1) gravity-dependent DEG, compared μg samples and 1 g samples at each time point; (2) time-dependent DEG, compared time-point samples within the same gravitational field. Through transcriptome analysis and confirmed by molecular biological verification, our findings firstly suggest that microgravity might affect macrophage phagocytosis by targeting Arp2/3 complex involved cytoskeleton synthesis and causing macrophage immune dysfunction. Our findings contribute to an emerging body of scholarship on biological effects of space travel.

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来源期刊
Journal of Biological Physics
Journal of Biological Physics 生物-生物物理
CiteScore
3.00
自引率
5.60%
发文量
20
审稿时长
>12 weeks
期刊介绍: Many physicists are turning their attention to domains that were not traditionally part of physics and are applying the sophisticated tools of theoretical, computational and experimental physics to investigate biological processes, systems and materials. The Journal of Biological Physics provides a medium where this growing community of scientists can publish its results and discuss its aims and methods. It welcomes papers which use the tools of physics in an innovative way to study biological problems, as well as research aimed at providing a better understanding of the physical principles underlying biological processes.
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