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转录组学和代谢组学研究揭示了有助于水稻在干旱条件下维持良好光合作用及随后耐旱性的关键代谢途径。

Transcriptomic and Metabolomic Studies Disclose Key Metabolism Pathways Contributing to Well-maintained Photosynthesis under the Drought and the Consequent Drought-Tolerance in Rice.

作者信息

Ma Xiaosong, Xia Hui, Liu Yunhua, Wei Haibin, Zheng Xiaoguo, Song Congzhi, Chen Liang, Liu Hongyan, Luo Lijun

机构信息

Shanghai Agrobiological Gene CenterShanghai, China; College of Plant Sciences and Technology, Huazhong Agricultural UniversityWuhan, China.

Shanghai Agrobiological Gene Center Shanghai, China.

出版信息

Front Plant Sci. 2016 Dec 21;7:1886. doi: 10.3389/fpls.2016.01886. eCollection 2016.

Abstract

In contrast to wild species, drought-tolerance in crops requires a fully functional metabolism during drought (particularly photosynthetic processes). However, the link between drought-tolerance, photosynthetic regulation during drought, and the associated transcript and metabolic foundation, remains largely unknown. For this study, we used two rice cultivars with contrasting drought-tolerance (the drought-intolerant cultivar IRAT109 and the drought-tolerant cultivar IAC1246) to explore transcript and metabolic responses to long-term drought. The drought-tolerant cultivar represented higher osmotic adjustment and antioxidant capacity, as well as higher relative photosynthesis rate under a progressive drought stress occurred in a modified field with shallow soil-layers. A total of 4059 and 2677 differentially expressed genes (DEGs) were identified in IRAT109 and IAC1246 between the drought and well-watered conditions, respectively. A total of 69 and 47 differential metabolites (DMs) were identified between the two treatments in IRAT109 and IAC1246, respectively. Compared to IRAT109, the DEGs of IAC1246 displayed enhanced regulatory amplitude during drought. We found significant correlations between DEGs and the osmolality and total antioxidant capacity (AOC) of both cultivars. During the early stages of drought, we detected up-regulation of DEGs in IAC1246 related to photosynthesis, in accordance with its higher relative photosynthesis rate. The contents of six differential metabolites were correlated with the osmotic potential and AOC. Moreover, they were differently regulated between the two cultivars. Particularly, up-regulations of 4-hydroxycinnamic acid and ferulic acid were consistent with the performance of photosynthesis-related DEGs at the early stages of drought in IAC1246. Therefore, 4-hydroxycinnamic acid and ferulic acid were considered as key metabolites for rice drought-tolerance. DEGs involved in pathways of these metabolites are expected to be good candidate genes to improve drought-tolerance. In conclusion, well-maintained photosynthesis under drought should contribute to improved drought-tolerance in rice. Metabolites play vital roles in protecting photosynthesis under dehydration osmotic adjustments and/or antioxidant mechanisms. A metabolite-based method was thus an effective way to explore drought candidate genes. Metabolic accompanied by transcript responses to drought stress should be further studied to find more useful metabolites, pathways, and genes.

摘要

与野生物种不同,作物的耐旱性要求在干旱期间(尤其是光合作用过程)具有完全正常的新陈代谢。然而,耐旱性、干旱期间的光合调节以及相关的转录和代谢基础之间的联系在很大程度上仍然未知。在本研究中,我们使用了两个耐旱性相反的水稻品种(不耐旱品种IRAT109和耐旱品种IAC1246)来探究对长期干旱的转录和代谢响应。在改良的浅层土壤田间发生渐进性干旱胁迫时,耐旱品种表现出更高的渗透调节和抗氧化能力,以及更高的相对光合速率。在干旱和水分充足条件下,IRAT109和IAC1246中分别鉴定出4059个和2677个差异表达基因(DEG)。在IRAT109和IAC1246的两种处理之间,分别鉴定出69种和47种差异代谢物(DM)。与IRAT109相比,IAC1246的DEG在干旱期间表现出增强的调节幅度。我们发现两个品种的DEG与渗透压和总抗氧化能力(AOC)之间存在显著相关性。在干旱早期,我们检测到IAC1246中与光合作用相关的DEG上调,这与其较高的相对光合速率一致。六种差异代谢物的含量与渗透势和AOC相关。此外,它们在两个品种之间受到不同的调节。特别是,4-羟基肉桂酸和阿魏酸的上调与IAC1246干旱早期与光合作用相关的DEG的表现一致。因此,4-羟基肉桂酸和阿魏酸被认为是水稻耐旱性的关键代谢物。参与这些代谢物途径的DEG有望成为提高耐旱性的良好候选基因。总之,干旱条件下维持良好的光合作用应有助于提高水稻的耐旱性。代谢物在脱水渗透调节和/或抗氧化机制下保护光合作用中起着至关重要的作用。因此,基于代谢物的方法是探索耐旱候选基因的有效途径。应进一步研究干旱胁迫下代谢物与转录响应的伴随关系,以找到更多有用的代谢物、途径和基因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d812/5174129/2ff1d14e8dec/fpls-07-01886-g0001.jpg

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