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本文引用的文献

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Molecular basis of plant cold acclimation: insights gained from studying the CBF cold response pathway.植物冷驯化的分子基础:通过研究CBF冷响应途径获得的见解
Plant Physiol. 2010 Oct;154(2):571-7. doi: 10.1104/pp.110.161794.
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Flavonoids and isoflavonoids: from plant biology to agriculture and neuroscience.类黄酮和异黄酮:从植物生物学到农业与神经科学
Plant Physiol. 2010 Oct;154(2):453-7. doi: 10.1104/pp.110.161430.
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Roles for stress-inducible lambda glutathione transferases in flavonoid metabolism in plants as identified by ligand fishing.应激诱导型λ谷胱甘肽转移酶在植物类黄酮代谢中的作用,通过配体钓取法鉴定。
J Biol Chem. 2010 Nov 19;285(47):36322-9. doi: 10.1074/jbc.M110.164806. Epub 2010 Sep 14.
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Phenylpropanoid biosynthesis.苯丙素类生物合成。
Mol Plant. 2010 Jan;3(1):2-20. doi: 10.1093/mp/ssp106. Epub 2009 Dec 24.
5
Proteomic analysis of cold stress-responsive proteins in Thellungiella rosette leaves.冷胁迫响应蛋白的蛋白质组学分析在拟南芥莲座叶中。
Planta. 2009 Oct;230(5):1033-46. doi: 10.1007/s00425-009-1003-6. Epub 2009 Aug 25.
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Identification of leaf proteins differentially accumulated during cold acclimation between Festuca pratensis plants with distinct levels of frost tolerance.鉴定在具有不同耐寒水平的草地羊茅植物冷驯化期间差异积累的叶片蛋白质。
J Exp Bot. 2009;60(12):3595-609. doi: 10.1093/jxb/erp205. Epub 2009 Jun 24.
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Metabolic pathways involved in cold acclimation identified by integrated analysis of metabolites and transcripts regulated by DREB1A and DREB2A.通过对由DREB1A和DREB2A调控的代谢物和转录本进行综合分析确定的参与冷驯化的代谢途径。
Plant Physiol. 2009 Aug;150(4):1972-80. doi: 10.1104/pp.109.135327. Epub 2009 Jun 5.
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The role of annexin 1 in drought stress in Arabidopsis.膜联蛋白1在拟南芥干旱胁迫中的作用。
Plant Physiol. 2009 Jul;150(3):1394-410. doi: 10.1104/pp.109.135228. Epub 2009 May 29.
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Amplification efficiency: linking baseline and bias in the analysis of quantitative PCR data.扩增效率:定量PCR数据分析中基线与偏差的关联
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10
RcDhn5, a cold acclimation-responsive dehydrin from Rhododendron catawbiense rescues enzyme activity from dehydration effects in vitro and enhances freezing tolerance in RcDhn5-overexpressing Arabidopsis plants.RcDhn5是一种来自卡托巴杜鹃的冷驯化响应脱水素,它能在体外挽救脱水对酶活性的影响,并提高过表达RcDhn5的拟南芥植株的抗冻性。
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草莓品种(Fragaria x ananassa)耐冷性差异的低温响应的蛋白质组学研究。

Proteomic study of low-temperature responses in strawberry cultivars (Fragaria x ananassa) that differ in cold tolerance.

机构信息

Department of Biology, Indiana University-Purdue University, Indianapolis, Indiana 46202, USA.

出版信息

Plant Physiol. 2012 Aug;159(4):1787-805. doi: 10.1104/pp.112.198267. Epub 2012 Jun 11.

DOI:10.1104/pp.112.198267
PMID:22689892
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3425213/
Abstract

To gain insight into the molecular basis contributing to overwintering hardiness, a comprehensive proteomic analysis comparing crowns of octoploid strawberry (Fragaria × ananassa) cultivars that differ in freezing tolerance was conducted. Four cultivars were examined for freeze tolerance and the most cold-tolerant cultivar ('Jonsok') and least-tolerant cultivar ('Frida') were compared with a goal to reveal how freezing tolerance is achieved in this distinctive overwintering structure and to identify potential cold-tolerance-associated biomarkers. Supported by univariate and multivariate analysis, a total of 63 spots from two-dimensional electrophoresis analysis and 135 proteins from label-free quantitative proteomics were identified as significantly differentially expressed in crown tissue from the two strawberry cultivars exposed to 0-, 2-, and 42-d cold treatment. Proteins identified as cold-tolerance-associated included molecular chaperones, antioxidants/detoxifying enzymes, metabolic enzymes, pathogenesis-related proteins, and flavonoid pathway proteins. A number of proteins were newly identified as associated with cold tolerance. Distinctive mechanisms for cold tolerance were characterized for two cultivars. In particular, the 'Frida' cold response emphasized proteins specific to flavonoid biosynthesis, while the more freezing-tolerant 'Jonsok' had a more comprehensive suite of known stress-responsive proteins including those involved in antioxidation, detoxification, and disease resistance. The molecular basis for 'Jonsok'-enhanced cold tolerance can be explained by the constitutive level of a number of proteins that provide a physiological stress-tolerant poise.

摘要

为了深入了解有助于越冬耐寒性的分子基础,对冠层的八倍体草莓( Fragaria × ananassa )品种进行了综合蛋白质组分析,这些品种在耐寒性方面存在差异。对四个品种的耐寒性进行了检查,比较了最耐寒的品种(“Jonsok”)和最不耐寒的品种(“Frida”),目的是揭示在这种独特的越冬结构中如何实现耐寒性,并确定潜在的耐寒相关生物标志物。通过单变量和多变量分析,从二维电泳分析中鉴定出 63 个斑点,从无标记定量蛋白质组学中鉴定出 135 个蛋白质,这些蛋白质在暴露于 0 、 2 和 42 天冷处理的两个草莓品种的冠组织中差异表达显著。鉴定出的与耐寒性相关的蛋白质包括分子伴侣、抗氧化剂/解毒酶、代谢酶、病程相关蛋白和类黄酮途径蛋白。一些蛋白质被新鉴定为与耐寒性相关。两个品种的耐寒性有不同的特征。特别是,“Frida”的冷响应强调了与类黄酮生物合成特异性相关的蛋白质,而更耐寒的“Jonsok”则具有更全面的已知应激响应蛋白,包括参与抗氧化、解毒和抗病性的蛋白。“Jonsok”增强耐寒性的分子基础可以用许多提供生理应激耐受平衡的蛋白质的组成水平来解释。