Jemison Mae, Olabisi Ronke
100 Year Starship, Houston TX, USA; The Jemison Group, Houston, TX, USA.
100 Year Starship, Houston TX, USA; Department of Biomedical Engineering, The Henry Samueli School of Engineering, University of California-Irvine, Irvine, CA, USA.
Acta Biomater. 2021 Jul 1;128:77-99. doi: 10.1016/j.actbio.2021.04.033. Epub 2021 May 4.
As biomaterial advances make headway into lightweight radiation protection, wound healing dressings, and microbe resistant surfaces, a relevance to human space exploration manifests itself. To address the needs of the human in space, a knowledge of the space environment becomes necessary. Both an understanding of the environment itself and an understanding of the physiological adaptations to that environment must inform design parameters. The space environment permits the fabrication of novel biomaterials that cannot be produced on Earth, but benefit Earth. Similarly, designing a biomaterial to address a space-based challenge may lead to novel biomaterials that will ultimately benefit Earth. This review describes several persistent challenges to human space exploration, a variety of biomaterials that might mitigate those challenges, and considers a special category of space biomaterial. STATEMENT OF SIGNIFICANCE: This work is a review of the major human and environmental challenges facing human spaceflight, and where biomaterials may mitigate some of those challenges. The work is significant because a broad range of biomaterials are applicable to the human space program, but the overlap is not widely known amongst biomaterials researchers who are unfamiliar with the challenges to human spaceflight. Additionaly, there are adaptations to microgravity that mimic the pathology of certain disease states ("terrestrial analogs") where treatments that help the overwhelmingly healthy astronauts can be applied to help those with the desease. Advances in space technology have furthered the technology in that field on Earth. By outlining ways that biomaterials can promote human space exploration, space-driven advances in biomaterials will further biomaterials technology.
随着生物材料的发展在轻质辐射防护、伤口愈合敷料和抗微生物表面等领域取得进展,其与人类太空探索的相关性也日益显现。为满足人类在太空的需求,了解太空环境变得十分必要。对环境本身的理解以及对人体对该环境生理适应的理解都必须为设计参数提供依据。太空环境使得一些在地球上无法制造的新型生物材料得以制备,而这些材料对地球有益。同样,设计用于应对太空挑战的生物材料可能会催生最终造福地球的新型生物材料。本综述描述了人类太空探索面临的几个持续挑战、可能缓解这些挑战的各种生物材料,并探讨了一类特殊的太空生物材料。重要性声明:这项工作回顾了人类太空飞行面临的主要人类和环境挑战,以及生物材料在缓解其中一些挑战方面的作用。这项工作具有重要意义,因为广泛的生物材料适用于人类太空计划,但对于不熟悉人类太空飞行挑战的生物材料研究人员来说,这种重叠并不广为人知。此外,微重力环境下的一些适应情况与某些疾病状态的病理情况相似(“地面类似物”),有助于绝大多数健康宇航员的治疗方法可应用于帮助患有这些疾病的患者。太空技术的进步推动了该领域在地球上的技术发展。通过概述生物材料促进人类太空探索的方式,太空驱动的生物材料进步将推动生物材料技术的发展。