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Photochemistry on the Space Station-Antibody Resistance to Space Conditions after Exposure Outside the International Space Station

机译:空间站上的光化学-暴露于国际空间站外的抗体对空间条件的抵抗力

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Antibody-based analytical instruments are under development to detect signatures of life on planetary bodies. Antibodies are molecular recognition reagents able to detect their target at sub-nanomolar concentrations, with high affinity and specificity. Studying antibody binding performances under space conditions is mandatory to convince space agencies of the adequacy of this promising tool for planetary exploration. To complement previous ground-based experiments on antibody resistance to simulated irradiation, we evaluate in this paper the effects of antibody exposure to real space conditions during the EXPOSE-R2 mission outside the International Space Station. The absorbed dose of ionizing radiation recorded during the 588 days of this mission (220 mGy) corresponded to the absorbed dose expected during a mission to Mars. Moreover, samples faced, at the same time as irradiation, thermal cycles, launch constraints, and long-term storage. A model biochip was used in this study with antibodies in freeze-dried form and under two formats: free or covalently grafted to a solid surface. We found that antibody-binding performances were not significantly affected by cosmic radiation, and more than 40% of the exposed antibody, independent of its format, was still functional during all this experiment. We conclude that antibody-based instruments are well suited for in situ analysis on planetary bodies.
机译:基于抗体的分析仪器正在开发中,以检测行星上生命的特征。抗体是分子识别试剂,能够以亚纳摩尔浓度检测其靶标,并具有很高的亲和力和特异性。必须在太空条件下研究抗体结合性能,才能使太空机构确信这种有前途的行星探测工具是否足够。为了补充以前对抗体对模拟辐射的抵抗力的地面实验,我们在本文中评估了在国际空间站外进行EXPOSE-R2任务期间,抗体暴露于实际空间条件下的影响。在此任务的588天期间记录的电离辐射的吸收剂量(220 mGy)与在对火星的任务中预期的吸收剂量相对应。此外,样品在辐射,热循环,发射限制和长期保存的同时面临着挑战。在这项研究中,使用了一种模型生物芯片,该抗体具有冻干形式和两种形式的抗体:游离或共价移植到固体表面。我们发现宇宙射线对抗体的结合性能没有显着影响,并且在所有实验中,超过40%的暴露抗体(无论其形式如何)仍然可以发挥作用。我们得出结论,基于抗体的仪器非常适合在行星体上进行原位分析。

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