首页> 美国卫生研究院文献>other >Proteomic Response of Hordeum vulgare cv. Tadmor and Hordeum marinum to Salinity Stress: Similarities and Differences between a Glycophyte and a Halophyte
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Proteomic Response of Hordeum vulgare cv. Tadmor and Hordeum marinum to Salinity Stress: Similarities and Differences between a Glycophyte and a Halophyte

机译:大麦蛋白质组学的蛋白质组学反应。塔德莫和大麦海藻盐分胁迫:藻类植物和盐生植物之间的异同。

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摘要

Response to a high salinity treatment of 300 mM NaCl was studied in a cultivated barley Hordeum vulgare Syrian cultivar Tadmor and in a halophytic wild barley H. marinum. Differential salinity tolerance of H. marinum and H. vulgare is underlied by qualitative and quantitative differences in proteins involved in a variety of biological processes. The major aim was to identify proteins underlying differential salinity tolerance between the two barley species. Analyses of plant water content, osmotic potential and accumulation of proline and dehydrin proteins under high salinity revealed a relatively higher water saturation deficit in H. marinum than in H. vulgare while H. vulgare had lower osmotic potential corresponding with high levels of proline and dehydrins. Analysis of proteins soluble upon boiling isolated from control and salt-treated crown tissues revealed similarities as well as differences between H. marinum and H. vulgare. The similar salinity responses of both barley species lie in enhanced levels of stress-protective proteins such as defense-related proteins from late-embryogenesis abundant family, several chaperones from heat shock protein family, and others such as GrpE. However, there have also been found significant differences between H. marinum and H. vulgare salinity response indicating an active stress acclimation in H. marinum while stress damage in H. vulgare. An active acclimation to high salinity in H. marinum is underlined by enhanced levels of several stress-responsive transcription factors from basic leucine zipper and nascent polypeptide-associated complex families. In salt-treated H. marinum, enhanced levels of proteins involved in energy metabolism such as glycolysis, ATP metabolism, and photosynthesis-related proteins indicate an active acclimation to enhanced energy requirements during an establishment of novel plant homeostasis. In contrast, changes at proteome level in salt-treated H. vulgare indicate plant tissue damage as revealed by enhanced levels of proteins involved in proteasome-dependent protein degradation and proteins related to apoptosis. The results of proteomic analysis clearly indicate differential responses to high salinity and provide more profound insight into biological mechanisms underlying salinity response between two barley species with contrasting salinity tolerance.
机译:在栽培的大麦大麦叙利亚栽培品种Tadmor和盐生野生大麦H.marinum中研究了对300 mM NaCl高盐处理的响应。各种生物过程中涉及的蛋白质的定性和定量差异是对H. marinum和H. vulgare的不同盐度耐受性的基础。主要目的是鉴定两种大麦物种之间不同盐度耐受性的蛋白质。高盐度下植物水分含量,渗透势以及脯氨酸和脱水蛋白的积累分析表明,与普通大豆相比,海马的水饱和度亏缺相对较高,而普通大豆的渗透势较低,因此脯氨酸和脱水蛋白含量较高。从对照和盐处理过的冠状组织中分离出的煮沸后可溶的蛋白质的分析显示,H.marinum和H.vulgare之间具有相似性和差异。两种大麦物种的相似盐度响应都在于胁迫保护蛋白水平的提高,例如后期胚发生丰富家族的防御相关蛋白,热休克蛋白家族的一些伴侣蛋白和其他GrpE。然而,还已经发现了H.marinum和H. vulgare盐度响应之间的显着差异,表明H. marinum具有主动的压力适应能力,而H. vulgare却具有压力损害。来自碱性亮氨酸拉链和新生多肽相关复合物家族的几种胁迫响应转录因子的水平提高,突显了对海藻高盐度的主动适应。在盐处理过的H. marinum中,参与能量代谢(例如糖酵解,ATP代谢和光合作用相关蛋白)的蛋白质水平提高,表明在建立新的植物体内平衡过程中,人们主动适应提高的能量需求。相比之下,盐处理过的普通小麦蛋白质组水平的变化表明植物组织受到损害,这是由蛋白酶体依赖性蛋白质降解中涉及的蛋白质水平升高以及与凋亡相关的蛋白质水平升高所揭示的。蛋白质组学分析的结果清楚地表明了对高盐度的不同反应,并提供了对两个大麦物种之间具有不同盐度耐受性的盐度反应的生物学机制的更深刻的了解。

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