Lunar and Martian gravity alter immune cell interactions with endothelia in parabolic flight.

IF 4.4 1区 物理与天体物理 Q1 MULTIDISCIPLINARY SCIENCES
Yu Du, Bing Han, Katharina Biere, Nathalie Abdelmalek, Xinyu Shu, Chaoyang Song, Guangyao Chen, Ning Li, Marina Tuschen, Huan Wu, Shujin Sun, Alexander Choukér, Mian Long, Dominique Moser
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Abstract

Returning to the moon and traveling to Mars represent the main targets of human space exploration missions within the upcoming decades. Comparable to microgravity, partial gravity in these destinations is assumed to dysregulate immune functions, thereby threatening astronauts´ health. To investigate the impact of partial gravity on immune cell attachment to vessel endothelia, THP-1 cells and HUVEC cell layers were monitored in a flow chamber system during parabolic flight in lunar (0.16 g) or Martian (0.38 g) gravity. Focus was set on floating speed, cell adhesion, surface molecule expression and cytoskeletal reorganization under basal and TNF-induced inflammatory environment. Floating speed of THP-1 cells was increased in partial gravity, which was accompanied by a successively lower adhesion to the endothelial HUVEC cells. Expression levels of the adhesion markers Mac-1 on THP-1 cells as well as ICAM-1 on HUVECs were found elevated in lunar and Martian gravity, which was aggravated by TNF. Analysis of cytoskeletal organization in HUVECs revealed reduced intracellular F-actin microfilament networks and a stronger cell directionality with stress fiber alignment at cell borders in partial gravity, which was intensified by TNF. In summary, altered immune cell - endothelium interactions as quantified in partial gravity conditions show similarities to cellular behavior in microgravity. However, the different magnitudes of effects in dependence of gravitational level still need to be assessed in further investigations.

月球和火星重力改变免疫细胞与内皮细胞在抛物线飞行中的相互作用。
重返月球和前往火星是未来几十年人类太空探索任务的主要目标。与微重力相比,这些目的地的部分重力被认为会使免疫功能失调,从而威胁宇航员的健康。为了研究部分重力对免疫细胞粘附血管内皮的影响,在月球重力(0.16 g)或火星重力(0.38 g)抛物线飞行时,在流室系统中监测THP-1细胞和HUVEC细胞层。在基础和tnf诱导的炎症环境下,重点研究漂浮速度、细胞粘附、表面分子表达和细胞骨架重组。部分重力作用下,THP-1细胞的漂浮速度增加,与HUVEC内皮细胞的黏附逐渐降低。在月球和火星重力下,THP-1细胞上的粘附标志物Mac-1和huvec上的ICAM-1的表达水平升高,TNF加剧了这种情况。对HUVECs细胞骨架组织的分析显示,细胞内f -肌动蛋白微丝网络减少,细胞方向性增强,应力纤维在部分重力下排列在细胞边界,TNF增强了这种方向性。总之,在部分重力条件下,免疫细胞-内皮相互作用的改变与微重力条件下的细胞行为相似。然而,在进一步的研究中,还需要评估不同程度的引力效应。
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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来源期刊
npj Microgravity
npj Microgravity Physics and Astronomy-Physics and Astronomy (miscellaneous)
CiteScore
7.30
自引率
7.80%
发文量
50
审稿时长
9 weeks
期刊介绍: A new open access, online-only, multidisciplinary research journal, npj Microgravity is dedicated to publishing the most important scientific advances in the life sciences, physical sciences, and engineering fields that are facilitated by spaceflight and analogue platforms.
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