Characterisation of Growth and Ultrastructural Effects of the Xanthoria elegans Photobiont After 1.5 Years of Space Exposure on the International Space Station.

Archiv Fur Dermatologie Und Syphilis Pub Date : 2016-06-01 Epub Date: 2015-11-02 DOI:10.1007/s11084-015-9470-1
Annette Brandt, Eva Posthoff, Jean-Pierre de Vera, Silvano Onofri, Sieglinde Ott
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引用次数: 12

Abstract

The lichen Xanthoria elegans has been exposed to space and simulated Mars-analogue environment in the Lichen and Fungi Experiment (LIFE) on the EXPOSE-E facility at the International Space Station (ISS). This long-term exposure of 559 days tested the ability of various organisms to cope with either low earth orbit (LEO) or Mars-analogue conditions, such as vacuum, Mars-analogue atmosphere, rapid temperature cycling, cosmic radiation of up to 215 ± 16 mGy, and insolation of accumulated doses up to 4.87 GJm(-2), including up to 0.314 GJm(-2) of UV irradiation. In a previous study, X. elegans demonstrated considerable resistance towards these conditions by means of photosynthetic activity as well as by post-exposure metabolic activity of 50-80% in the algal and 60-90% in the fungal symbiont (Brandt et al. Int J Astrobiol 14(3):411-425, 2015). The two objectives of the present study were complementary: First, to verify the high post-exposure viability by using a qualitative cultivation assay. Second, to characterise the cellular damages by transmission electron microscopy (TEM) which were caused by the space and Mars-analogue exposure conditions of LIFE. Since the algal symbiont of lichens is considered as the more susceptible partner (de Vera and Ott 2010), the analyses focused on the photobiont. The study demonstrated growth and proliferation of the isolated photobiont after all exposure conditions of LIFE. The ultrastructural analysis of the algal cells provided an insight to cellular damages caused by long-term exposure and highlighted that desiccation-induced breakdown of cellular integrity is more pronounced under the more severe space vacuum than under Mars-analogue atmospheric conditions. In conclusion, desiccation-induced damages were identified as a major threat to the photobiont of X. elegans. Nonetheless, a fraction of the photobiont cells remained cultivable after all exposure conditions tested in LIFE.

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经过国际空间站 1.5 年的太空暴露后,黄龙菌光生体的生长和超微结构效应的特征。
在国际空间站(ISS)EXPOSE-E设施的 "地衣和真菌实验"(LIFE)中,Xanthoria elegans地衣暴露在太空和模拟火星环境中。559天的长期暴露测试了各种生物应对低地球轨道(LEO)或火星模拟环境的能力,如真空、火星模拟大气、快速温度循环、高达215 ± 16 mGy的宇宙辐射和累积剂量高达4.87 GJm(-2)的日照,包括高达0.314 GJm(-2)的紫外线辐照。在之前的一项研究中,X. elegans 通过光合作用活性以及暴露后藻类和真菌共生体的新陈代谢活性分别达到 50%-80% 和 60%-90% (Brandt 等,Int J Astrobiol 14(3):411-425,2015 年),证明其对这些条件具有相当强的抵抗力。本研究的两个目标是相辅相成的:首先,通过定性培养试验验证暴露后的高存活率。其次,通过透射电子显微镜(TEM)分析《生命之光》的太空和火星模拟暴露条件对细胞造成的损害。由于地衣的藻类共生体被认为是更易受影响的伙伴(de Vera 和 Ott,2010 年),因此分析重点放在了光生共生体上。研究表明,在 LIFE 的所有暴露条件下,分离出的光生菌体都在生长和增殖。对藻类细胞进行的超微结构分析有助于深入了解长期暴露对细胞造成的损害,并突出表明,与火星类似的大气条件相比,在更为严酷的太空真空条件下,干燥引起的细胞完整性破坏更为明显。总之,干燥引起的损伤被认为是对秀丽隐杆线虫光生体的主要威胁。尽管如此,在 LIFE 中测试的所有暴露条件下,仍有一部分光生菌体细胞可以继续培养。
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