Time course of cellular and molecular regulation in the immune system in altered gravity: Progressive damage or adaptation ?

Q1 Physics and Astronomy
REACH Pub Date : 2017-03-01 DOI:10.1016/j.reach.2017.03.003
Cora S. Thiel , Beatrice A. Lauber , Jennifer Polzer , Oliver Ullrich
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引用次数: 21

Abstract

We summarized the current knowledge about adaptation processes of isolated immune cells, animal models and the human body to altered gravity conditions. Many studies indicate an adaptation reaction of the immune system to the new microgravity environment, at least for the T cell system. Animal and human studies indicated adaptation processes starting after two weeks and continuing until 6 month or longer, which was reflected by cytokine concentrations in blood plasma or in stimulation assays. Adaptive reactions regarding IFN-γ, TNF-α and IL-2 concentrations were detected after 12 days spaceflight in animal studies and after 2–4 months in human studies, whereas adaptive reactions regarding IL-4, IL-6, IL-8 and IL-10 were found after 6 months spaceflight. Cellular studies were performed mainly as short-term studies, and only a few studies addressed alterations longer than 3 days. However, cross validation between studies is often not possible or indicated conflicting results. Many in vitro studies, mostly done with T lymphocytes, demonstrated extensive cellular and molecular alterations. In contrast, long-term studies with animals and humans are completely lacking this dramatic picture of short-term cellular effects, which indicates a very efficient adaptation process, partially evidenced by new steady state of adaptive response in the human immune system after weeks until months. Therefore, we assume that the human body and its cells are equipped with a robust and efficient adaptation potential when challenged with low gravitational environments.

重力改变下免疫系统细胞和分子调控的时间进程:进行性损伤还是适应性?
我们总结了目前关于分离免疫细胞、动物模型和人体对改变重力条件的适应过程的知识。许多研究表明免疫系统对新的微重力环境的适应性反应,至少对T细胞系统是如此。动物和人体研究表明,适应过程从两周后开始,持续到6个月或更长时间,这可以通过血浆或刺激试验中的细胞因子浓度来反映。在动物实验中,IFN-γ、TNF-α和IL-2的浓度在飞行12天后和2-4个月后检测到适应性反应,而IL-4、IL-6、IL-8和IL-10的浓度在飞行6个月后检测到适应性反应。细胞研究主要作为短期研究进行,只有少数研究涉及超过3天的变化。然而,研究之间的交叉验证往往是不可能的或表明相互矛盾的结果。许多体外研究,主要是用T淋巴细胞进行的,显示了广泛的细胞和分子改变。相比之下,对动物和人类的长期研究完全缺乏这种短期细胞效应的戏剧性画面,这表明一个非常有效的适应过程,部分证据是人类免疫系统在几周到几个月后的适应性反应的新稳定状态。因此,我们假设人体及其细胞在低重力环境下具有强大而有效的适应潜力。
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来源期刊
REACH
REACH Engineering-Aerospace Engineering
CiteScore
2.00
自引率
0.00%
发文量
4
期刊介绍: The Official Human Space Exploration Review Journal of the International Academy of Astronautics (IAA) and the International Astronautical Federation (IAF) REACH – Reviews in Human Space Exploration is an international review journal that covers the entire field of human space exploration, including: -Human Space Exploration Mission Scenarios -Robotic Space Exploration Missions (Preparing or Supporting Human Missions) -Commercial Human Spaceflight -Space Habitation and Environmental Health -Space Physiology, Psychology, Medicine and Environmental Health -Space Radiation and Radiation Biology -Exo- and Astrobiology -Search for Extraterrestrial Intelligence (SETI) -Spin-off Applications from Human Spaceflight -Benefits from Space-Based Research for Health on Earth -Earth Observation for Agriculture, Climate Monitoring, Disaster Mitigation -Terrestrial Applications of Space Life Sciences Developments -Extreme Environments REACH aims to meet the needs of readers from academia, industry, and government by publishing comprehensive overviews of the science of human and robotic space exploration, life sciences research in space, and beneficial terrestrial applications that are derived from spaceflight. Special emphasis will be put on summarizing the most important recent developments and challenges in each of the covered fields, and on making published articles legible for a non-specialist audience. Authors can also submit non-solicited review articles. Please note that original research articles are not published in REACH. The Journal plans to publish four issues per year containing six to eight review articles each.
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