Plants, plant pathogens, and microgravity--a deadly trio.

J E Leach, M Ryba-White, Q Sun, C J Wu, E Hilaire, C Gartner, O Nedukha, E Kordyum, M Keck, H Leung, J A Guikema
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Abstract

Plants grown in spaceflight conditions are more susceptible to colonization by plant pathogens. The underlying causes for this enhanced susceptibility are not known. Possibly the formation of structural barriers and the activation of plant defense response components are impaired in spaceflight conditions. Either condition would result from altered gene expression of the plant. Because of the tools available, past studies focused on a few physiological responses or biochemical pathways. With recent advances in genomics research, new tools, including microarray technologies, are available to examine the global impact of growth in the spacecraft on the plant's gene expression profile. In ground-based studies, we have developed cDNA subtraction libraries of rice that are enriched for genes induced during pathogen infection and the defense response. Arrays of these genes are being used to dissect plant defense response pathways in a model system involving wild-type rice plants and lesion mimic mutants. The lesion mimic mutants are ideal experimental tools because they erratically develop defense response-like lesions in the absence of pathogens. The gene expression profiles from these ground-based studies will provide the molecular basis for understanding the biochemical and physiological impacts of spaceflight on plant growth, development and disease defense responses. This, in turn, will allow the development of strategies to manage plant disease for life in the space environment.

植物、植物病原体和微重力--致命的三重奏。
在太空飞行条件下生长的植物更容易受到植物病原体的侵染。这种易感性增强的根本原因尚不清楚。在太空飞行条件下,结构屏障的形成和植物防御反应成分的激活可能会受到影响。这两种情况都会导致植物基因表达的改变。由于工具有限,过去的研究主要集中在一些生理反应或生化途径上。随着基因组学研究的最新进展,包括微阵列技术在内的新工具可用来研究航天器中的生长对植物基因表达谱的整体影响。在地面研究中,我们开发了水稻 cDNA 减缩文库,其中富含病原体感染和防御反应过程中诱导的基因。这些基因的阵列正被用于在一个涉及野生型水稻植株和病变模拟突变体的模型系统中剖析植物防御反应途径。病变模拟突变体是理想的实验工具,因为它们在没有病原体的情况下会不规则地出现类似防御反应的病变。这些地面研究的基因表达谱将为了解太空飞行对植物生长、发育和病害防御反应的生化和生理影响提供分子基础。反过来,这将有助于制定太空环境下植物病害管理策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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