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Novel Moon and Mars partial gravity simulation paradigms and their effects on the balance between cell growth and cell proliferation during early plant development

机译:新颖月球和火星的部分重力模拟范例及其对植物早期发育过程中细胞生长与细胞增殖之间平衡的影响

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摘要

Clinostats and Random Positioning Machine (RPM) are used to simulate microgravity, but, for space exploration, we need to know the response of living systems to fractional levels of gravity (partial gravity) as they exist on Moon and Mars. We have developed and compared two different paradigms to simulate partial gravity using the RPM, one by implementing a centrifuge on the RPM (RPMHW), the other by applying specific software protocols to driving the RPM motors (RPMSW). The effects of the simulated partial gravity were tested in plant root meristematic cells, a system with known response to real and simulated microgravity. Seeds of Arabidopsis thaliana were germinated under simulated Moon (0.17 g) and Mars (0.38 g) gravity. In parallel, seeds germinated under simulated microgravity (RPM), or at 1 g control conditions. Fixed root meristematic cells from 4-day grown seedlings were analyzed for cell proliferation rate and rate of ribosome biogenesis using morphometrical methods and molecular markers of the regulation of cell cycle and nucleolar activity. Cell proliferation appeared increased and cell growth was depleted under Moon gravity, compared with the 1 g control. The effects were even higher at the Moon level than at simulated microgravity, indicating that meristematic competence (balance between cell growth and proliferation) is also affected at this gravity level. However, the results at the simulated Mars level were close to the 1 g static control. This suggests that the threshold for sensing and responding to gravity alteration in the root would be at a level intermediate between Moon and Mars gravity. Both partial g simulation strategies seem valid and show similar results at Moon g-levels, but further research is needed, in spaceflight and simulation facilities, especially around and beyond Mars g levels to better understand more precisely the differences and constrains in the use of these facilities for the space biology community.
机译:倾斜仪和随机定位机(RPM)用于模拟微重力,但是,对于太空探索,我们需要了解生命系统对月球和火星上存在的分数重力(部分重力)的响应。我们已经开发并比较了两种不同的使用RPM模拟部分重力的范例,一种是在RPM上实施离心机(RPM HW ),另一种是通过将特定的软件协议应用于驱动RPM电机(RPM) SW )。在植物根分生组织细胞中测试了模拟的部分重力的影响,该系统具有对真实和模拟的微重力的已知响应。拟南芥种子在模拟月球(0.17微克)和火星(0.38微克)重力下发芽。同时,种子在模拟微重力(RPM)或1微克控制条件下发芽。使用形态计量学方法和调节细胞周期和核仁活性的分子标记,分析了生长4天的幼苗的固定根分生细胞的细胞增殖速率和核糖体生物发生速率。与1μg对照相比,在月球重力作用下,细胞增殖似乎增加并且细胞生长被耗尽。在月球水平上的影响甚至比在模拟微重力下更高。这表明,在此重力水平下,分生能力(细胞生长与增殖之间的平衡)也受到影响。然而,在模拟的火星水平上的结果接近于1微克静态控制。这表明,感知和响应根中重力变化的阈值将处于月球和火星重力之间的中间水平。两种部分g模拟策略似乎都是有效的,并且在月球g级上显示出相似的结果,但是需要在航天和模拟设施中,尤其是在火星g级周围和以外进行进一步的研究,以更好地更准确地理解这些方法的使用差异和约束。空间生物学社区的设施。

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