Integrated comparative physiological and transcriptomic analyses of Elymus sibiricus L. reveal the similarities and differences in the molecular mechanisms in response to drought and cold stress.

IF 6.1 2区 生物学 Q1 PLANT SCIENCES Plant Physiology and Biochemistry Pub Date : 2024-12-26 DOI:10.1016/j.plaphy.2024.109459
Xinrui Li, Lili Chen, Daxu Li, Minghong You, Yingzhu Li, Lijun Yan, Jiajun Yan, Wenlong Gou, Dan Chang, Xiao Ma, Shiqie Bai, Yan Peng
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Abstract

Drought and cold crucially affect plant growth and distribution. Plants have evolved complex molecular mechanisms to adapt to such adverse environmental conditions. This study examines two Elymus sibiricus (Es) germplasms differing in resilience to these stresses. Analyzing physiological responses and gene expression changes under drought and cold, it reveals the similarities and differences in their molecular mechanisms that underlie these responses. The results indicate that both drought stress and cold stress severely damage the integrity of the cell membrane in Es. Notably, under cold stress, the accumulation of osmotic regulation substances in Es is more significant, which may be related to the regulation of carbohydrate metabolism (CM)-related genes in cold environments. Furthermore, the response to oxidative stress triggered by cold stress in Es is partially inhibited. The enrichment analysis showed that the DEGs responsive to drought stress in Es were mainly related to the pathway of photosynthesis, whereas the DEGs responsive to cold stress were more associated with the protein processing in endoplasmic reticulum (PPER), highlighting distinct molecular responses. In addition, we discovered that the abscisic acid (ABA) signaling transduction plays a dominant role in mediating the drought resistance mechanism of Es. We have identified 86 key candidate genes related to photosynthesis, Phst, CM, and PPER, including 5 genes that can respond to both drought and cold stress. This study provides a foundation for the molecular mechanisms underlying cold and drought resistance in Es, with insight into its future genetic improvement for stress resistance.

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综合比较生理和转录组学分析,揭示了羊草对干旱和寒冷胁迫响应分子机制的异同。
干旱和寒冷对植物的生长和分布有重要影响。植物已经进化出复杂的分子机制来适应这种不利的环境条件。本研究考察了两种不同的羊草种质对这些胁迫的适应能力。分析干旱和寒冷条件下植物的生理反应和基因表达变化,揭示其分子机制的异同。结果表明,干旱胁迫和冷胁迫都严重破坏了大豆细胞膜的完整性。值得注意的是,在冷胁迫下,Es中渗透调节物质的积累更为显著,这可能与寒冷环境下碳水化合物代谢(CM)相关基因的调节有关。此外,Es对冷胁迫引发的氧化应激反应部分受到抑制。富集分析表明,Es对干旱胁迫响应的DEGs主要与光合作用途径有关,而对冷胁迫响应的DEGs则更多地与内质网(PPER)蛋白加工相关,显示出不同的分子响应。此外,我们发现脱落酸(ABA)信号转导在Es的抗旱机制中起主导作用。共鉴定出86个与光合作用、Phst、CM和PPER相关的关键候选基因,其中5个基因对干旱和寒冷胁迫均有响应。本研究为Es抗旱性和抗寒性的分子机制奠定了基础,并为其未来抗逆性的遗传改良提供了参考。
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来源期刊
Plant Physiology and Biochemistry
Plant Physiology and Biochemistry 生物-植物科学
CiteScore
11.10
自引率
3.10%
发文量
410
审稿时长
33 days
期刊介绍: Plant Physiology and Biochemistry publishes original theoretical, experimental and technical contributions in the various fields of plant physiology (biochemistry, physiology, structure, genetics, plant-microbe interactions, etc.) at diverse levels of integration (molecular, subcellular, cellular, organ, whole plant, environmental). Opinions expressed in the journal are the sole responsibility of the authors and publication does not imply the editors'' agreement. Manuscripts describing molecular-genetic and/or gene expression data that are not integrated with biochemical analysis and/or actual measurements of plant physiological processes are not suitable for PPB. Also "Omics" studies (transcriptomics, proteomics, metabolomics, etc.) reporting descriptive analysis without an element of functional validation assays, will not be considered. Similarly, applied agronomic or phytochemical studies that generate no new, fundamental insights in plant physiological and/or biochemical processes are not suitable for publication in PPB. Plant Physiology and Biochemistry publishes several types of articles: Reviews, Papers and Short Papers. Articles for Reviews are either invited by the editor or proposed by the authors for the editor''s prior agreement. Reviews should not exceed 40 typewritten pages and Short Papers no more than approximately 8 typewritten pages. The fundamental character of Plant Physiology and Biochemistry remains that of a journal for original results.
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