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首页> 外文期刊>Molecular biology reports >Expression analysis of nine small heat shock protein genes from Tamarix hispida in response to different abiotic stresses and abscisic acid treatment
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Expression analysis of nine small heat shock protein genes from Tamarix hispida in response to different abiotic stresses and abscisic acid treatment

机译:Tamarix hispida的9种小热休克蛋白基因响应不同生物胁迫和脱落酸的表达分析。

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摘要

Heat shock proteins (HSPs) play important roles in protecting plants against environmental stresses. Furthermore, small heat shock proteins (sHSPs) are the most ubiquitous HSP subgroup with molecular weights ranging from 15 to 42 kDa. In this study, nine sHSP genes (designated as ThsHSP1-9) were cloned from Tamarix hispida. Their expression patterns in response to cold, heat shock, NaCl, PEG and abscisic acid (ABA) treatments were investigated in the roots and leaves of T. hispida by real-time RT-PCR analysis. The results showed that most of the nine ThsHSP genes were expressed at higher levels in roots than in leaves under normal growth condition. All of ThsHSP genes were highly induced under conditions of cold (4 A degrees C) and different heat shocks (36, 40, 44, 48 and 52 A degrees C). Under NaCl stress, all nine ThsHSPs genes were up-regulated at least one stress time-point in both roots and leaves. Under PEG and ABA treatments, the nine ThsHSPs showed various expression patterns, indicating a complex regulation pathway among these genes. This study represents an important basis for the elucidation of ThsHSP gene function and provides essential information that can be used for stress tolerance genetic engineering in future studies.
机译:热激蛋白(HSP)在保护植物免受环境压力方面起着重要作用。此外,小的热激蛋白(sHSPs)是分子量最高的HSP亚组,分子量范围为15至42 kDa。在这项研究中,从Ta柳(Tamarix hispida)克隆了9个sHSP基因(命名为ThsHSP1-9)。通过实时逆转录-聚合酶链反应(RT-PCR)分析研究了它们在棉铃虫根和叶中对冷,热休克,NaCl,PEG和脱落酸(ABA)处理的表达模式。结果表明,在正常生长条件下,九个ThsHSP基因中的大多数在根中的表达均高于在叶中的表达。在寒冷(4 A摄氏度)和不同的热冲击(36、40、44、48和52 A摄氏度)条件下,所有ThsHSP基因均被高度诱导。在NaCl胁迫下,所有9个ThsHSPs基因在根和叶中都至少上调了一个胁迫时间点。在PEG和ABA处理下,九种ThsHSPs表现出多种表达模式,表明这些基因之间存在复杂的调控途径。这项研究为阐明ThsHSP基因功能奠定了重要基础,并提供了可用于未来研究中的胁迫耐受性基因工程的重要信息。

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