Molecular and Cellular Biology Program, Ohio University, Athens, OH 45701, USA.
Department of Environmental and Plant Biology, Ohio University, Athens, OH 45701, USA.
Int J Mol Sci. 2023 Sep 22;24(19):14425. doi: 10.3390/ijms241914425.
The human quest for sustainable habitation of extraterrestrial environments necessitates a robust understanding of life's adaptability to the unique conditions of spaceflight. This study provides a comprehensive proteomic dissection of the Arabidopsis plant's responses to the spaceflight environment through a meta-analysis of proteomics data from four separate spaceflight experiments conducted on the International Space Station (ISS) in different hardware configurations. Raw proteomics LC/MS spectra were analyzed for differential expression in MaxQuant and Perseus software. The analysis of dissimilarities among the datasets reveals the multidimensional nature of plant proteomic responses to spaceflight, impacted by variables such as spaceflight hardware, seedling age, lighting conditions, and proteomic quantification techniques. By contrasting datasets that varied in light exposure, we elucidated proteins involved in photomorphogenesis and skotomorphogenesis in plant spaceflight responses. Additionally, with data from an onboard 1 control experiment, we isolated proteins that specifically respond to the microgravity environment and those that respond to other spaceflight conditions. This study identified proteins and associated metabolic pathways that are consistently impacted across the datasets. Notably, these shared proteins were associated with critical metabolic functions, including carbon metabolism, glycolysis, gluconeogenesis, and amino acid biosynthesis, underscoring their potential significance in Arabidopsis' spaceflight adaptation mechanisms and informing strategies for successful space farming.
人类对外太空环境可持续居住的探索需要对生命适应航天环境的独特条件有深入的了解。本研究通过对国际空间站(ISS)上进行的四项不同硬件配置的航天飞行实验的蛋白质组学数据进行荟萃分析,全面解析了拟南芥植物对航天环境的反应。使用 MaxQuant 和 Perseus 软件对原始蛋白质组学 LC/MS 谱进行差异表达分析。对数据集之间差异的分析揭示了植物蛋白质组对航天飞行的多维反应,受航天硬件、幼苗年龄、光照条件和蛋白质组定量技术等变量的影响。通过对比光照暴露不同的数据集,我们阐明了植物航天反应中涉及光形态发生和暗形态发生的蛋白质。此外,通过来自船上 1 个对照实验的数据,我们分离出了专门对微重力环境和其他航天条件做出反应的蛋白质。本研究确定了跨数据集一致受影响的蛋白质和相关代谢途径。值得注意的是,这些共同的蛋白质与关键代谢功能有关,包括碳代谢、糖酵解、糖异生和氨基酸生物合成,这强调了它们在拟南芥航天适应机制中的潜在重要性,并为成功的太空农业提供了策略。