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The mechanisms by which weedy rice (Oryza sativa f. spontanea) has adapted to endure low‐temperature stress in northern latitudes remain unresolved. In this study, we assessed cold tolerance of 100 rice varieties and 100 co‐occurring weedy rice populations, which were sampled across a broad range of climates in China. A parallel pattern of latitude‐dependent variation in cold tolerance was detected in cultivated rice and weedy rice. At the molecular level, differential cold tolerance was strongly correlated with relative expression levels of CBF cold response pathway genes and with methylation levels in the promoter region of OsICE1, a regulator of this pathway. Among all methylated cytosine sites of the OsICE1 promoter, levels of CHG and CHH methylation were found to be significantly correlated with cold tolerance among accessions. Furthermore, within many of the collection locales, weedy rice shared identical or near‐identical OsICE1 methylation patterns with co‐occurring cultivated rice. These findings provide new insights on the possible roles that methylation variation in the OsICE1 promoter may play in cold tolerance, and they suggest that weedy rice can rapidly acquire cold tolerance via methylation patterns that are shared with co‐occurring rice cultivars.  相似文献   

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Crofton weed is an invasive weed in southwestern China. The activities of several antioxidative enzymes involved in plant protection against oxidative stress were assayed to determine physiological aspects of the crofton weed that might render the plant vulnerable to environmental stress. Stresses imposed on crofton weed were heat (progressively increasing temperatures: 25 ℃, 30 ℃, 35 ℃, 38℃ and 42 ℃ at 24 h intervals), cold (progressively decreasing temperatures: 25 ℃, 20 ℃, 15℃, 10 ℃ and 5℃ at 24h intervals), and drought (without watering up to 4days). The three stresses induced oxidative damage as evidenced by an increase in lipid peroxidation. The effect varied with the stress imposed and the length of exposure. The activity of superoxide dismutase (SOD) increased in response to all stresses but was not significantly different from the controls (P 〈 0.05) when exposed to cold stress. Catalase (CAT) activity decreased in response to heat and drought stress but increased when exposed to cold conditions. Guaiacol peroxidase (POD) and glutathione reductase (GR) activities increased in response to cold and drought but decreased in response to heat stress. The activity of ascorbata peroxidase (APX) responded differently to all three stresses. Monodehydroascorbate reductase (MDHAR) activity decreased in response to heat and drought, and slightly increased in response to the cold stress but was not significantly different from the controls (P 〈 0.05). The activity of dehydroascorbata reductase (DHAR) increased in response to all three stresses. Taken together, the co-ordinate increase of the oxygen-detoxifying enzymes might be more effective to protect crofton weed from the accumulation of oxygen radicals at low temperatures rather than at high temperatures.  相似文献   

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陈涛  张华  安黎哲 《西北植物学报》2019,39(8):1513-1520
低温作为重要的环境因子影响着植物的地理分布和物种多样性,并且对农业可持续发展造成了严重的威胁。ICE1(INDUCER OF CBF EXPRESSION1) CBF(C REPEAT BINDING FACTOR)信号通路不仅在植物抵御低温胁迫的过程中发挥着关键作用,也在植物调控生长发育的过程中也扮演着重要角色,对ICE1 CBF调控机理的了解有助于深入认识植物如何在逆境条件下平衡生长与生存之间的关系。该文对近年来国内外有关ICE1 CBF通路在低温信号转导中的精细调控过程的研究进展进行了综述,并重点对ICE1 CBF在调控植物发育中的作用进行了讨论。  相似文献   

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Cold stress is a major environmental factor that negatively affects plant growth and survival. OST1 has been identified as a key protein kinase in plant response to cold stress; however, little is known about the underlying molecular mechanism. In this study, we identified BTF3 and BTF3L (BTF3‐like), β‐subunits of a nascent polypeptide‐associated complex (NAC), as OST1 substrates that positively regulate freezing tolerance. OST1 phosphorylates BTF3 and BTF3L in vitro and in vivo, and facilitates their interaction with C‐repeat‐binding factors (CBFs) to promote CBF stability under cold stress. The phosphorylation of BTF3L at the Ser50 residue by OST1 is required for its function in regulating freezing tolerance. In addition, BTF3 and BTF3L proteins positively regulate the expression of CBF genes. These findings unravel a molecular mechanism by which OST1‐BTF3‐CBF module regulates plant response to cold stress.  相似文献   

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