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Genome-wide analysis of heat shock proteins in C4 model foxtail millet identifies potential candidates for crop improvement under abiotic stress

机译:全基因组分析C4模型中的热休克蛋白狐尾谷子确定了非生物胁迫下作物改良的潜在候选人

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摘要

Heat shock proteins (HSPs) perform significant roles in conferring abiotic stress tolerance to crop plants. In view of this, HSPs and their encoding genes were extensively characterized in several plant species; however, understanding their structure, organization, evolution and expression profiling in a naturally stress tolerant crop is necessary to delineate their precise roles in stress-responsive molecular machinery. In this context, the present study has been performed in C4 panicoid model, foxtail millet, which resulted in identification of 20, 9, 27, 20 and 37 genes belonging to SiHSP100, SiHSP90, SiHSP70, SiHSP60 and SisHSP families, respectively. Comprehensive in silico characterization of these genes followed by their expression profiling in response to dehydration, heat, salinity and cold stresses in foxtail millet cultivars contrastingly differing in stress tolerance revealed significant upregulation of several genes in tolerant cultivar. SisHSP-27 showed substantial higher expression in response to heat stress in tolerant cultivar, and its over-expression in yeast system conferred tolerance to several abiotic stresses. Methylation analysis of SiHSP genes suggested that, in susceptible cultivar, higher levels of methylation might be the reason for reduced expression of these genes during stress. Altogether, the study provides novel clues on the role of HSPs in conferring stress tolerance.
机译:热休克蛋白(HSP)在赋予农作物非生物胁迫耐受性中发挥重要作用。有鉴于此,HSP及其编码基因在几种植物中得到了广泛的表征。然而,了解它们在自然胁迫耐受性作物中的结构,组织,进化和表达谱对描述其在胁迫响应性分子机制中的确切作用是必要的。在这种情况下,本研究已在C4拟南芥模型狐尾谷子中进行,该研究分别鉴定了分别属于SiHSP100,SiHSP90,SiHSP70,SiHSP60和SisHSP家族的20、9、27、20和37个基因。这些基因在计算机上进行了全面的计算机表征,随后对响应于干旱耐性的谷子小米品种的脱水,热,盐分和冷胁迫进行了表达谱分析,结果表明耐性品种中的几个基因显着上调。 SisHSP-27在耐热品种中表现出明显较高的表达,以响应热胁迫,并且其在酵母系统中的过表达赋予了对几种非生物胁迫的耐受性。 SiHSP基因的甲基化分析表明,在易感品种中,较高的甲基化水平可能是胁迫期间这些基因表达降低的原因。总而言之,这项研究为HSP在赋予压力耐受性方面的作用提供了新的线索。

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