Aegis Aerospace Inc., Houston, TX.
NASA Johnson Space Center, Houston, TX.
Life Sci Space Res (Amst). 2022 Nov;35:4-8. doi: 10.1016/j.lssr.2022.06.003. Epub 2022 Jun 14.
NASA's currently planned long-duration, deep space exploration missions outside of low Earth orbit (LEO) will result in the exposure of astronauts to relatively high lifetime doses of ionizing radiation (IR), exceeding what humans have previously encountered in space. Of concern to this exposure are the long-term health consequences of radiation carcinogenesis, cardiovascular and degenerative disease, and central nervous system decrements. Existing engineering solutions are insufficient to decrease the lifetime accumulated IR exposure to levels currently allowable by agency standards, therefore appropriate countermeasure and mitigation strategies must be developed to enable long duration missions. Emerging discoveries in the fields of radiation oncology and the mitigation of Acute Radiation Syndrome (ARS) have demonstrated the potential for compound-based/biological radiomodifiers to drastically improve clinical outcomes and represent a promising strategy for space radiation countermeasure development. This review outlines the unique challenges posed by the space radiation environment, defines the limits of terrestrial radiation protection strategies in space, describes a brief overview of current space radiation countermeasure development strategies, highlights potential new approaches for countermeasure identification and development, and speculates on the potential benefits beyond space exploration.
美国国家航空航天局(NASA)目前计划在地球低轨道(LEO)以外进行长时间、深空探索任务,这将使宇航员暴露在相对较高的终身剂量电离辐射(IR)下,超过人类以前在太空中所经历的剂量。令人关注的是,辐射致癌、心血管和退行性疾病以及中枢神经系统衰退等长期健康后果。现有的工程解决方案不足以将终身累积的 IR 暴露降低到机构标准目前允许的水平,因此必须制定适当的对策和缓解策略,以实现长期任务。辐射肿瘤学和急性辐射综合征(ARS)缓解领域的新发现表明,基于化合物/生物的放射调节剂有可能极大地改善临床结果,这是开发空间辐射对策的一种有前途的策略。本文概述了空间辐射环境带来的独特挑战,定义了地球辐射防护策略在空间中的局限性,简要概述了当前空间辐射对策的发展策略,强调了对策识别和开发的潜在新方法,并推测了超越空间探索的潜在好处。