Plant-centered biosystems in space environments: technological concepts for developing a plant genetic assessment and control system.

Terri L Lomax, Kirk A Findlay, T J White, William E Winner
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Abstract

Plants will play an essential role in providing life support for any long-term space exploration or habitation. We are evaluating the feasibility of an adaptable system for measuring the response of plants to any unique space condition and optimizing plant performance under those conditions. The proposed system is based on a unique combination of systems including the rapid advances in the field of plant genomics, microarray technology for measuring gene expression, bioinformatics, gene pathways and networks, physiological measurements in controlled environments, and advances in automation and robotics. The resulting flexible module for monitoring and optimizing plant responses will be able to be inserted as a cassette into a variety of platforms and missions for either experimental or life support purposes. The results from future plant functional genomics projects have great potential to be applied to those plant species most likely to be used in space environments. Eventually, it will be possible to use the plant genetic assessment and control system to optimize the performance of any plant in any space environment. In addition to allowing the effective control of environmental parameters for enhanced plant productivity and other life support functions, the proposed module will also allow the selection or engineering of plants to thrive in specific space environments. The proposed project will advance human exploration of space in the near- and mid-term future on the International Space Station and free-flying satellites and in the far-term for longer duration missions and eventual space habitation.

空间环境中以植物为中心的生物系统:开发植物遗传评估和控制系统的技术概念。
植物将在为任何长期太空探索或居住提供生命支持方面发挥重要作用。我们正在评估一种适应性系统的可行性,该系统用于测量植物对任何独特空间条件的响应,并在这些条件下优化植物的性能。该系统是基于一个独特的系统组合,包括植物基因组学领域的快速发展,用于测量基因表达的微阵列技术,生物信息学,基因通路和网络,受控环境中的生理测量,以及自动化和机器人技术的进步。由此产生的用于监测和优化植物反应的灵活模块将能够作为盒式装置插入各种平台和任务中,用于实验或生命维持目的。未来植物功能基因组学项目的研究成果将有很大的潜力应用于那些最有可能在空间环境中使用的植物物种。最终,利用植物遗传评估与控制系统优化任何植物在任何空间环境中的性能将成为可能。除了允许有效控制环境参数以提高植物生产力和其他生命支持功能外,拟议的模块还将允许选择或工程植物在特定的空间环境中茁壮成长。拟议的项目将推动人类在近期和中期在国际空间站和自由飞行卫星上探索空间,并在长期内进行更长时间的任务和最终的空间居住。
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