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The hot pepper xyloglucan endo-trans-gluco-sylase/hydrolase (CaXTH3) gene that was inducible by a broad spectrum of abiotic stresses in hot pepper has been reported to enhance tolerance to drought and high salinity in transgenic Arabidopsis. To assess whether CaXTH3 is a practically useful target gene for improving the stress tolerance of crop plants, we ectopically over-expressed the full-length CaXTH3 cDNA in tomato (Solanum lycopersicum cv. Dotaerang) and found that the 35S:CaXTH3 transgenic tomato plants exhibited a markedly increased tolerance to salt and drought stresses. Transgenic tomato plants exposed to a salt stress of 100?mM NaCl retained the chlorophyll in their leaves and showed normal root elongation. They also remained green and unwithered following exposure to 2?weeks of dehydration. A high proportion of stomatal closures in 35S:CaXTH3 was likely to be conferred by increased cell-wall remodeling activity of CaXTH3 in guard cell, which may reduce transpirational water loss in response to dehydration stress. Despite this increased stress tolerance, the transgenic tomato plants showed no detectable phenotype defects, such as abnormal morphology and growth retardation, under normal growth conditions. These results raise the possibility that CaXTH3 gene is appropriate for application in genetic engineering strategies aimed at improving abiotic stress tolerance in agriculturally and economically valuable crop plants.  相似文献   

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Drought and salinity stresses significantly altered microRNA (miRNA) expression in a dose-dependent manner in tobacco. Salinity stress changed the miRNA expression levels from a 6.86-fold down-regulation to a 616.57-fold up-regulation. Alternatively, miRNAs were down-regulated by 2.68-fold and up-regulated 2810-fold under drought conditions. miR395 was most sensitive to both stresses and was up-regulated by 616 and 2810-folds by 1.00% PEG and 0.171 M NaCl, respectively. Salinity and drought stresses also changed the expression of protein-coding genes [alcohol dehydrogenase (ADH) and alcohol peroxidase (APX)]. The results suggest that miRNAs may play an important role in plant response to environmental abiotic stresses. Further investigation of miRNA-mediated gene regulation may elucidate the molecular mechanism of plant tolerance to abiotic stresses and has the potential to create a miRNA-based biotechnology for improving plant tolerance to drought and salinity stresses.  相似文献   

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Plants frequently face challenges caused by various abiotic stresses, including drought, and have evolved defense mechanisms to counteract the deleterious effects of these stresses. The phytohormone abscisic acid (ABA) is involved in signal transduction pathways that mediate defense responses of plants to abiotic stress. Here, we report a new function of the CaDIN1 protein in defense responses to abiotic stress. The CaDIN1 gene was strongly induced in pepper leaves exposed to ABA, NaCl, and drought stresses. CaDIN1 proteins share high sequence homology with other known DIN1 proteins and are localized in chloroplasts. We generated CaDIN1-silenced peppers and overexpressing transgenic Arabidopsis plants and evaluated their response to ABA and drought stress. Virus-induced gene silencing of CaDIN1 in pepper plants conferred enhanced tolerance to drought stress, which was accompanied by low levels of lipid peroxidation in dehydrated leaves. CaDIN1-overexpressing transgenic plants exhibited reduced sensitivity to ABA during seed germination and seedling stages. Transgenic plants were more vulnerable to drought than that by the wild-type plants because of decreased expression of ABA responsive stress-related genes and reduced stomatal closure in response to ABA. Together, these results suggest that CaDIN1 modulates drought sensitivity through ABA-mediated cell signaling.  相似文献   

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The hot pepper xyloglucan endo-trans-gluco-sylase/hydrolase (CaXTH3) gene that was inducible by a broad spectrum of abiotic stresses in hot pepper has been reported to enhance tolerance to drought and high salinity in transgenic Arabidopsis. To assess whether CaXTH3 is a practically useful target gene for improving the stress tolerance of crop plants, we ectopically over-expressed the full-length CaXTH3 cDNA in tomato (Solanum lycopersicum cv. Dotaerang) and found that the 35S:CaXTH3 transgenic tomato plants exhibited a markedly increased tolerance to salt and drought stresses. Transgenic tomato plants exposed to a salt stress of 100 mM NaCl retained the chlorophyll in their leaves and showed normal root elongation. They also remained green and unwithered following exposure to 2 weeks of dehydration. A high proportion of stomatal closures in 35S:CaXTH3 was likely to be conferred by increased cell-wall remodeling activity of CaXTH3 in guard cell, which may reduce transpirational water loss in response to dehydration stress. Despite this increased stress tolerance, the transgenic tomato plants showed no detectable phenotype defects, such as abnormal morphology and growth retardation, under normal growth conditions. These results raise the possibility that CaXTH3 gene is appropriate for application in genetic engineering strategies aimed at improving abiotic stress tolerance in agriculturally and economically valuable crop plants.  相似文献   

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Hsp24 is a small heat-shock protein (sHSP). Such proteins are important endogenous cytoprotection factors involved in defense. A 1116-bp full-length cDNA of the Hsp24, with a 645-bp open reading frame nucleotide encoding a 24-kDa polypeptide consisting of 214 amino acid residues, was isolated from Trichoderma harzianum. Sequence analysis revealed that Hsp24 gene has more than 42–58% amino acid sequence homology with those of other fungi. The Hsp24 gene was integrated into pYES2 by inserting into a single site for recombination, yielding the recombinant of pYES2/Hsp24. Hsp24 expressed by pYES2/Hsp24 was induced by galactose. We tested whether Hsp24 could confer abiotic stress resistance when it was introduced into yeast cells. A transgenic yeast harboring T. harzianum Hsp24 was generated under the control of a constitutively expressed GAL promoter. The results indicated that Hsp24 yeast transformants had significantly higher resistance to salt, drought and heat stresses.  相似文献   

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从慈竹笋转录组数据库中筛选并克隆出2个bZIP基因(BebZIP2和BebZIP6)进行生物信息学分析。分析结果表明,它们编码序列长度分别为504和720 bp,编码167个和239个氨基酸,BebZIP2和BebZIP6属于bZIP相关蛋白,与水稻OsbZIP52/RISBZ5蛋白聚在一枝。组织表达分析表明,这2个慈竹BebZIP基因在慈竹笋、茎、展开叶和未展开叶等部位均有表达,属于组成型表达,同一基因在不同组织中的表达量差异较大,表达量的大小为未展开叶 > 展开叶 > 茎 > 笋。对慈竹幼苗进行ABA、NaCl和PEG6000非生物胁迫处理,结果表明,BebZIP2和BebZIP6对盐、干旱和ABA胁迫均具有不同程度的响应。  相似文献   

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Salinity and drought are two major environmental factors that limit the growth and yield of many forage crops in semi-arid and arid regions. Alfalfa (Medicago sativa L.) is one of the most important forage crops in many countries. We aim to investigate the molecular mechanisms of alfalfa in response to salt and drought stresses in this study. Physiological and proteomic analyses were applied to examine the Zhongmu NO.3 alfalfa seed germination stage with 200 mM NaCl and 180 g·L?1 polyethylene glycol (PEG) treatments. The germination ability of the seed and the accumulation of osmotic solutes were quite different between the NaCl and PEG treatments. More than 800 protein spots were detected by proteomics technology on two-dimensional electrophoresis (2-DE) gels. The abundance of twenty-eight proteins were decreased or increased after salt and drought stress. Seventeen of these proteins were identified and classified into six functional categories through mass spectrometry (MS). The six groups involved in salt- and PEG-mediated stress included defense response, energy metabolism, protein synthesis and degradation, oxidative stress, carbohydrate metabolism-associated proteins, and unknown proteins. We discovered that some proteins related to carbohydrate metabolism and energy production increased in abundance under salt- and PEG-mediated drought stress. This demonstrates a common mechanism of energy consumption during abiotic stresses. Further study of these proteins with unknown function will provide insights into the molecular mechanisms of abiotic stress and the discovery of new candidate markers.  相似文献   

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Salinity and drought severely affect both plant growth and productivity, making the isolation and characterization of salinity- or drought-inducible promoters suitable for genetic improvement of crop resistance highly desirable. In this study, a 1468-bp sequence upstream of the translation initiation codon ATG of the promoter for ZmGAPP (maize Type-II H+-pyrophosphatase gene) was cloned. Nine 5´ deletion fragments (D1–D9) of different lengths of the ZmGAPP promoter were fused with the GUS reporter and translocated into tobacco. The deletion analysis showed that fragments D1–D8 responded well to NaCl and PEG stresses, whereas fragment D9 and CaMV 35S did not. The D8 segment (219 bp; -219 to -1 bp) exhibited the highest promoter activity of all tissues, with the exception of petals among the D1–D9 transgenic tobacco, which corresponds to about 10% and 25% of CaMV 35S under normal and NaCl or PEG stress conditions, respectively. As such, the D8 segment may confer strong gene expression in a salinity and osmotic stress inducible manner. A 71-bp segment (-219 to -148 bp) was considered as the key region regulating ZmGAPP response to NaCl or PEG stress, as transient transformation assays demonstrated that the 71-bp sequence was sufficient for the salinity or osmotic stress response. These results enhance our understanding of the molecular mechanisms regulating ZmGAPP expression, and that the D8 promoter would be an ideal candidate for moderating expression of drought and salinity response genes in transgenic plants.  相似文献   

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采用RT-PCR、cDNA末端快速扩增法和长片段PCR技术,从杜梨幼苗中获得1个磷酸乙醇胺N-甲基转移酶基因(Pb—PEAMT),运用生物信息学方法分析它的序列特点,并通过跨内含子引物进行半定量RT-PCR研究其在非生物胁迫下的表达情况。结果表明:PbPEA臌因编码区DNA序列长为3320bp,由11个外显子和10个内含子组成,cDNA序列长1479bp,推导的多肽包括2个II型甲基转移酶保守结构域,与蓖麻PEAMT蛋白相似性最高(86%),亲缘关系最近。PbPEA燃因在杜梨幼苗根和叶中均为诱导型表达,100mmol·L^-1氯化钠、10%(w/v)聚乙二醇、180mmol·L^-1甘露醇或20μmol·L^-1脱落酸处理后PbPEAMT表达水平上升,表明PbPEAMT对盐碱、干旱和渗透胁迫存在表达响应,可能参与ABA介导的逆境信号转导途径。  相似文献   

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Zhang L  Xi D  Li S  Gao Z  Zhao S  Shi J  Wu C  Guo X 《Plant molecular biology》2011,77(1-2):17-31
Mitogen-activated protein kinase (MAPK) cascades play important roles in mediating biotic and abiotic stress responses. In plants, MAPKs are classified into four major groups (A-D) according to their sequence homology and conserved phosphorylation motifs. Compared with well-studied MAPKs in groups A and B, little is known about group C. In this study, we functionally characterised a stress-responsive group C MAPK gene (GhMPK2) from cotton (Gossypium hirsutum). Northern blot analysis indicated that GhMPK2 was induced by abscisic acid (ABA) and abiotic stresses, such as NaCl, PEG, and dehydration. Subcellular localization analysis suggested that GhMPK2 may activate its specific targets in the nucleus. Constitutive overexpression of GhMPK2 in tobacco (Nicotiana tabacum) conferred reduced sensitivity to ABA during both seed germination and vegetative growth. Interestingly, transgenic plants had a decreased rate of water loss and exhibited enhanced drought and salt tolerance. Additionally, transgenic plants showed improved osmotic adjustment capacity, elevated proline accumulation and up-regulated expression of several stress-related genes, including DIN1, Osmotin and NtLEA5. β-glucuronidase (GUS) expression driven by the GhMPK2 promoter was clearly enhanced by treatment with NaCl, PEG, and ABA. These results strongly suggest that GhMPK2 positively regulates salt and drought tolerance in transgenic plants.  相似文献   

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张悦  赵鑫  侯峥  王艳敏  王玉成  王超 《植物研究》2019,39(1):113-122
通过对刚毛柽柳转录组分析,克隆获得了一条与S-腺苷甲硫氨酸合成酶(SAMS)基因同源性高的基因,命名为ThSAMS。序列分析结果表明:ThSASM基因全长cDNA为1185bp,编码394个氨基酸,编码蛋白相对分子质量为97.85kDa,理论等电点为5.02。通过生物信息学分析表明,ThSASM基因编码的氨基酸与其他物种SAMS基因编码的氨基酸具有很高的同源性,其中与枣的同源性最高,达95%。实时荧光定量PCR(quantitativereal-timePCR,qRT-PCR)分析表明,ThSASM表达受NaCl、聚乙二醇(PEG)和ABA处理做出应答,暗示ThSASM可能参与了刚毛柽柳对盐和干旱的胁迫应答,为进一步研究SAMS基因在植物胁迫应答中的功能及作用机制提供了参考依据。  相似文献   

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