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Modelled microgravity cultivation modulates N-acylhomoserine lactone production in Rhodospirillum rubrum S1H independently of cell density

机译:模拟的微重力培养可独立于细胞密度来调节红螺螺旋藻S1H中N-酰基高丝氨酸内酯的产生

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The photosynthetic alphaproteobacterium Rhodospirillum rubrum S1H is part of the Micro-Ecological Life Support System Alternative (MELiSSA) project that is aiming to develop a closed life support system for oxygen, water and food production to support human life in space in forthcoming long-term space exploration missions. In the present study, R. rubrum S1H was cultured in a rotating wall vessel (RWV), simulating partial microgravity conditions on Earth. The bacterium showed a significant response to cultivation in simulated microgravity at the transcriptomic, proteomic and metabolic levels. In simulated microgravity conditions three N-acyl-l-homoserine lactones (C10-HSL, C12-HSL and 3-OH-C14-HSL) were detected in concentrations that were twice those detected under normal gravity, while no differences in cell density was detected. In addition, R. rubrum cultivated in modelled microgravity showed higher pigmentation than the normal gravity control, without change in culture oxygenation. When compared to randomized microgravity cultivation using a random positioning machine, significant overlap for the top differentially expressed genes and proteins was observed. Cultivation in this new artificial environment of simulated microgravity showed new properties of this well-known bacterium, including its first, to our knowledge, complete quorum-sensing-related N-acylhomoserine lactone profile.
机译:光合作用的红球藻螺旋藻S1H是微生态生命支持系统替代计划(MELiSSA)项目的一部分,该计划旨在开发用于氧气,水和食物生产的封闭生命支持系统,以支持即将到来的长期空间中的人类生命探索任务。在本研究中,在旋转壁容器(RWV)中培养了R. rubrum S1H,以模拟地球上的部分微重力条件。该细菌在转录,蛋白质组和代谢水平上对模拟微重力下的培养表现出显着的反应。在模拟微重力条件下,检测到三种N-酰基-1-高丝氨酸内酯(C10-HSL,C12-HSL和3-OH-C14-HSL),其浓度是正常重力下的两倍,而细胞密度没有差异。检测到。此外,在模型微重力下培养的红景天显示出比正常重力对照更高的色素沉着,而培养物中的氧合没有变化。当与使用随机定位机进行的随机微重力培养相比时,观察到顶部差异表达基因和蛋白质的显着重叠。在这种新的模拟微重力人工环境中的耕种显示了这种知名细菌的新特性,据我们所知,它的第一个特性是完整的群体感应相关的N-酰基高丝氨酸内酯谱。

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