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Biological effects of space environmental factors: A possible interaction between space radiation and microgravity

机译:空间环境因素的生物效应:空间辐射与微重力之间的可能相互作用

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摘要

In the mid-1980s, space experiments began to examine if microgravity could alter the biological effects of space radiation. In the late 1990s, repair of DNA strand breaks was reported to not be influenced by microgravity using the pre-irradiated cells, because the exposure doses of space radiation were few due to the short spaceflight. There were, however, conflicting reports depending on the biological endpoints used in various systems. While almost no attempts were made to assess the possibility that the microgravity effects could be altered by space radiation. This was probably due to the general understanding that microgravity plays a major role in space and works independently from space radiation. Recent ground-based simulation studies focusing on DNA oxidative damage and signal transduction suggested that combined effects of microgravity and space radiation might exist. These studies also implicated the importance of research focusing not only on chromosomal DNA but also on cytoplasm, especially mitochondria. Therefore, we propose a new model which accounts for the combined-effects through the window of cellular responses. In this model, the interactions between microgravity and space radiation might occur during the following cellular-responses; (A) damaging and signaling by ROS, (B) damage responses on DNA (repair, replication, transcription, etc.), and (C) expression of gene and protein (regulation by chromatin, epigenetic control, etc.).
机译:在1980年代中期,太空实验开始研究微重力是否可以改变太空辐射的生物学效应。在1990年代后期,据报道,使用预辐照的细胞对DNA链断裂的修复不受微重力的影响,因为由于短途飞行,空间辐射的暴露剂量很少。但是,根据各种系统中使用的生物学终点,有相互矛盾的报道。尽管几乎没有尝试评估空间辐射会改变微重力效应的可能性。这可能是由于人们普遍认为微重力在空间中起着主要作用,并且独立于空间辐射而起作用。最近针对DNA氧化损伤和信号转导的地面模拟研究表明,可能存在微重力和空间辐射的综合影响。这些研究还暗示了研究不仅要关注染色体DNA,而且要关注细胞质,尤其是线粒体的重要性。因此,我们提出了一种新的模型,该模型通过细胞反应窗口说明了组合效应。在这个模型中,微重力和空间辐射之间的相互作用可能在随后的细胞反应过程中发生。 (A)ROS的破坏和信号传导,(B)对DNA的损伤反应(修复,复制,转录等),以及(C)基因和蛋白质的表达(通过染色质调节,表观遗传控制等)。

著录项

  • 来源
    《Life Sciences in Space Research》 |2019年第2期|113-123|共11页
  • 作者单位

    Japan Aerosp Explorat Agcy, Inst Astronaut Res, Chuo Ku, 3-1-1 Yoshinodai, Sagamihara, Kanagawa 2520022, Japan|Inst Phys & Chem Res, Ctr Sustainable Resource Sci, 2-1 Hirosawa, Wako, Saitama 3510198, Japan;

    Japan Aerosp Explorat Agcy, Inst Astronaut Res, Chuo Ku, 3-1-1 Yoshinodai, Sagamihara, Kanagawa 2520022, Japan|Natl Inst Hlth Sci, Div Genet & Mutagenesis, Kawasaki Ku, 3-25-26 Tonomachi, Kawasaki, Kanagawa 2109501, Japan;

    Inst Phys & Chem Res, Ctr Sustainable Resource Sci, 2-1 Hirosawa, Wako, Saitama 3510198, Japan;

    Japan Aerosp Explorat Agcy, Inst Astronaut Res, Chuo Ku, 3-1-1 Yoshinodai, Sagamihara, Kanagawa 2520022, Japan|Grad Univ Adv Studies, Dept Space & Astronaut Sci, Chuo Ku, 3-1-1 Yoshinodai, Sagamihara, Kanagawa 2520022, Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Space radiation; Microgravity; Combined effects; DNA oxidative damage; Signal transduction;

    机译:空间辐射;微重力;综合效应;DNA氧化损伤;信号转导;

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