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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 °C) and different heat shocks (36, 40, 44, 48 and 52 °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.  相似文献   

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In the present study, a zinc-finger-like cDNA (ThZFL) was cloned from the Tamarix hispida. Northern blot analysis showed that the expression of ThZFL can be induced by salt, osmotic stress and ABA treatment. Overexpression of the ThZFL confers salt and osmotic stress tolerance in both yeast Saccharomyces cerevisiae and tobacco. Furthermore, MDA levels in ThZFL transformed tobacco were significantly decreased compared with control plants under salt and osmotic stress, suggesting ThZFL may confer stress tolerance by decreasing membrane lipid peroxidation. Subcellular localization analysis showed the ThZFL protein is localized in the cell wall. Our results indicated the ThZFL gene is an excellent candidate for genetic engineering to improve salt and osmotic tolerance in agricultural plants.  相似文献   

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刚毛柽柳ThDREB基因在酵母中的表达及抗逆能力分析   总被引:1,自引:0,他引:1  
DREB蛋白能特异地与DRE(dehydration responsive element)顺式作用元件结合,从而调控下游多个与逆境相关基因的表达,在植物对多种逆境胁迫的应答反应中起重要调节作用。为了研究刚毛柽柳ThDREB基因是否具有抗逆功能,将ThDREB基因插入到酵母表达载体pYES2中构建成重组载体,转入酿酒酵母(Saccharomyces cerevisiae)中获得重组型酵母。分别比较转ThDREB基因酵母和转空载体对照酵母在山梨醇、H2O2、CdCl2、NaCl、Na2CO3、MgCl2、-20℃胁迫处理之后的存活能力。结果显示,ThDREB基因能有效提高转基因酵母的抗干旱、盐、碱、氧化、重金属及低温胁迫的能力,表明ThDREB基因可能参与了柽柳多种抗逆调控过程。  相似文献   

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Plant peroxidases (PODs) have been ascribed a variety of biological functions, including hydrogen peroxide detoxification, lignin biosynthesis, hormonal signaling, and stress response. In the present study, ten POD genes, including three ascorbate peroxidases (class I PODs) and seven secretory peroxidases (class III PODs), were cloned from Tamarix hispida. The roles of the ten POD genes were addressed under different abiotic stress conditions, and gene expression profiles in roots, stems, and leaves were evaluated using real-time quantitative reverse-transcribed polymerase chain reaction. Our results showed that the relative abundance of the PODs was markedly different in roots, stems, and leaves, indicating that POD activity differs in these three organs. ThPOD1 and ThPOD8 were the most and least abundant, respectively, in all organs. The expression profiles in response to abiotic stresses were organ specific. All of the genes were highly induced by drought, salt, salt–alkaline, CdCl2, and abscisic acid (ABA) treatments in at least one organ. Five ThPOD genes were induced in roots, stems, and leaves under all of the studied stress conditions, indicating that they are closely associated with abiotic stress. Our results demonstrate that the ten plant peroxidases are all expressed in leaves, stems, and roots, that they are involved in different abiotic stress responses, and that they are controlled by an ABA-dependent stress signaling pathway.  相似文献   

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Heat shock proteins (HSPs) are molecular chaperones that accumulate in response to heat and other abiotic stressors. Small HSPs (sHSPs) belong to the most ubiquitous HSP subgroup with molecular weights ranging from 12 to 42 kDa. We have cloned a new sHSP gene, AsHSP17 from creeping bentgrass (Agrostis stolonifera) and studied its role in plant response to environmental stress. AsHSP17 encodes a protein of 17 kDa. Its expression was strongly induced by heat in both leaf and root tissues, and by salt and abscisic acid (ABA) in roots. Transgenic Arabidopsis plants constitutively expressing AsHSP17 exhibited enhanced sensitivity to heat and salt stress accompanied by reduced leaf chlorophyll content and decreased photosynthesis under both normal and stressed conditions compared to wild type. Overexpression of AsHSP17 also led to hypersensitivity to exogenous ABA and salinity during germination and post‐germinative growth. Gene expression analysis indicated that AsHSP17 modulates expression of photosynthesis‐related genes and regulates ABA biosynthesis, metabolism and ABA signalling as well as ABA‐independent stress signalling. Our results suggest that AsHSP17 may function as a protein chaperone to negatively regulate plant responses to adverse environmental stresses through modulating photosynthesis and ABA‐dependent and independent signalling pathways.  相似文献   

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GRAS转录因子在植物响应逆境中起重要作用。为更好的了解核桃(Juglans regia)在逆境胁迫下的适应机制,本研究从‘香玲’核桃转录组中克隆获得一条GRAS基因(命名为JrGRAS2),对其在不同高温胁迫下的表达进行分析,并将该基因插入酵母表达载体pYES2中构建重组载体pYES2-JrGRAS2,将pYES2-JrGRAS2转入酿酒酵母(Saccharomyces cerevisiae)INVSCI,同时以转化pYES2的重组酵母作为阴性对照,在酵母表达系统中研究该基因的抗热胁迫功能。结果显示,该基因开放读码框(ORF)全长1296bp,拟推导的蛋白分子量为47405.83Da,含有氨基酸数为431,理论等电点为5.66。在热胁迫下,JrGRAS2基因被显著诱导,特别是在36℃胁迫0.5h的茎内,其表达相对于对照被上调了335.5倍。对两种酵母进行热胁迫,发现转JrGRAS2基因酵母表现出较对照更高的生存活性。表明JrGRAS2基因具有响应热胁迫的能力,且能提高酵母的抗性,JrGRAS2基因可作为核桃逆境应答的重要候选基因。  相似文献   

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Abscisic acid stress ripening (ASR1) protein is a small hydrophilic, low molecular weight, and stress-specific plant protein. The gene coding region of ASR1 protein, which is induced under high salinity in rice (Oryza sativa Ilmi), was cloned into a yeast expression vector pVTU260 and transformed into yeast cells. Heterologous expression of ASR1 protein in transgenic yeast cells improved tolerance to abiotic stresses including hydrogen peroxide (H2O2), high salinity (NaCl), heat shock, menadione, copper sulfate, sulfuric acid, lactic acid, salicylic acid, and also high concentration of ethanol. In particular, the expression of metabolic enzymes (Fba1p, Pgk1p, Eno2p, Tpi1p, and Adh1p), antioxidant enzyme (Ahp1p), molecular chaperone (Ssb1p), and pyrimidine biosynthesis-related enzyme (Ura1p) was up-regulated in the transgenic yeast cells under oxidative stress when compared with wild-type cells. All of these enzymes contribute to an alleviated redox state to H2O2-induced oxidative stress. In the in vitro assay, the purified ASR1 protein was able to scavenge ROS by converting H2O2 to H2O. Taken together, these results suggest that the ASR1 protein could function as an effective ROS scavenger and its expression could enhance acquired tolerance of ROS-induced oxidative stress through induction of various cell rescue proteins in yeast cells.  相似文献   

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二色补血草LbGRP基因的克隆及抗逆能力分析   总被引:2,自引:0,他引:2  
潘妍  王玉成  张大伟  杨传平 《遗传》2010,32(3):278-286
富含甘氨酸RNA结合蛋白(Glycine-rich RNA-binding proteins, GRP)是植物中重要的转录后调控蛋白, 在植物的生长发育及对胁迫的抗性调控等过程中起重要作用。文章从二色补血草(Limonium bicolor (Bunge) O.) cDNA文库中克隆出了富含甘氨酸RNA结合蛋白基因(LbGRP)的全长cDNA序列(GenBank登录号: GQ398238)。为了研究LbGRP的抗逆功能, 将其构建到酵母表达载体pYES2中, 转化到酿酒酵母INVSc1菌株中, 获得重组酵母INVSc1(pYES2-LbGRP), 同时将转空pYES2质粒的酵母INVSc1(pYES2)作为对照。对重组酵母INVSc1 (pYES2-LbGRP)和对照INVSc1(pYES2)进行NaCl、KCl、NaHCO3、Na2CO3、干旱和冷冻胁迫, 比较它们在不同胁迫下的存活率。结果表明, INVSc1(pYES2-LbGRP)在各种胁迫下的存活率明显高于对照INVSc1(pYES2), 证明LbGRP基因具有抗NaCl、KCl、NaHCO3、Na2CO3、干旱和冷冻等胁迫的能力, 推测该基因参与了二色补血草的抗逆调控过程。  相似文献   

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The ThPOD1 gene encodes a peroxidase and was isolated from a Tamarix hispida NaCl-stress root cDNA library. We found that ThPOD1 expression could be induced by abiotic stresses such as cold, salt, drought and exogenous abscisic acid. These findings suggested that ThPOD1 might be involved in the plant response to environmental stresses and ABA treatment. To elucidate the function of this gene, recombinant plasmids expressing full-length ThPOD1 as well as ThPOD2 (aa 41-337), and ThPOD3 (aa 73-337) truncated polypeptides were constructed. SDS–PAGE and Western blot analyses of the fusion proteins revealed that the molecular weights of ThPOD1, ThPOD2 and ThPOD3 were ~57, ~50 and ~47 kDa, respectively. Stress assays of E. coli treated with the recombinant plasmids indicated that ThPOD3 could improve resistance to drought stress. This finding could potentially be used to improve plant tolerance to drought stress via gene transfer.  相似文献   

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