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A Global Approach to Asses Stress Response of the Bioregenerative Life Support System Organism Rhodospirillum Rubrum Under Space-Flight-Related Environmental Conditions

机译:在空间 - 飞行与环境条件下判断生物加工寿命支持系统生物体rhodospirillum rubrum的全局方法

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In view of long haul space exploration missions, the development of regenerative life support systems is a condition sine qua non to increase the crew autonomy and decrease the cost associated to the mass embarked. Therefore, in the late 80's, the European Space Agency initiated the MELiSSA project (Micro-Ecological Life Support System Alternative). MELISSA has been conceived as a micro-organisms and higher plant process enabling high recycling efficiency. Nevertheless, the organisms inhabiting the MELISSA system need to perform their tasks as optimally as possible. A number of stresses such as temperature variation, water deprivation, oxidative stress, UV and ionizing radiations, light variation, supernatant of the previous compartment, genomic evolution during long-time culturing and gene transfer can indeed affect the capabilities of the micro-organisms as well as the efficiency of the whole bioregenerative loop. Thus, the detection of functional and genetic instability due to stress in all bioreactors of the MELiSSA loop is considered to be of primordial importance. In this paper a global approach is put forward to analyze the stress response of R. rubrum ATCC25903, using whole cell flow cytometry analysis, mass spectrometry analysis and microarray gene expression profiling.
机译:鉴于长途空间勘探任务,再生生活支持系统的发展是一个条件正弦,增加了机组自主权并降低了与群众相关的成本。因此,在80年代末,欧洲航天局启动了梅丽莎项目(微生物生命支持系统替代品)。 Melissa被认为是一种微生物和更高的植物过程,从而实现了高回收效率。然而,居住素质系统的生物需要尽可能地实现它们的任务。诸如温度变化,水剥夺,氧化应激,UV和电离辐射,光学变异,长期培养和基因转移期间的基因组演化的辐射,光学变异,基因转移的应力确实影响了微生物的能力以及整个生物根系的效率。因此,由于丝沙环的所有生物反应器中的应力导致的功能和遗传不稳定性被认为是原始重要性的。本文通过全细胞流式细胞术分析,质谱分析和微阵列基因表达分析,提出了一种全局方法来分析R.Rubrum ATCC25903的应力响应。

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