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1.
盐生植物盐芥(Eutrema salsugineum)耐盐适应性强且具备模式植物特征,是研究植物逆境适应机理的理想材料。作为一种多功能的激素信号分子,褪黑素在盐芥耐盐性中的作用仍不清楚。本研究以盐芥为主要材料,以拟南芥做对比,主要通过褪黑素酶联免疫以及实时荧光定量PCR分析,比较了二者在不同组织中褪黑素的积累和在响应盐胁迫过程中褪黑素合成、相关基因的表达模式以及外源褪黑素处理对其盐应答表型的影响。结果显示,两种植物的褪黑素合成均在幼叶中最高,盐芥本底褪黑素合成水平显著高于拟南芥,且盐胁迫诱导了两种植物中的褪黑素含量,但不同于盐芥,拟南芥在处理7 d后褪黑素合成明显下降。通过序列比对发现在不同植物中,盐芥和拟南芥褪黑素合成相关基因的亲缘关系较近。盐应答表达分析显示,盐芥SNAT1、ASMT和COMT在盐处理3 d表达上调,而拟南芥中的相关基因在处理1 d和3 d后受盐诱导,7 d后拟南芥中表达下降而盐芥中则无明显变化,表明两种植物相关基因响应盐信号的表达变化存在差异。此外,外源褪黑素处理明显缓解了两种植物在盐逆境下的胁迫表型。综上,褪黑素有效贡献于盐芥抗盐性,参与调节盐芥和拟南芥的耐盐适...  相似文献   

2.
在构建盐胁迫下青杨microRNA文库中发现了ptc-miR801,为探索植物在盐胁迫条件下ptc-miR801参与胁迫应答的机制,本实验构建了植物表达载体pCAM2300-ami801,经根癌农杆菌EHA105介导、花序侵染法获得拟南芥转基因植株。RT-PCR半定量结果显示ptc-miR801可以在转基因拟南芥中超表达且NaCl胁迫下ptc-miRNA801转基因植株种子萌发率和根长显著高于野生型,说明ptc-miR801超表达增强了转基因拟南芥耐盐性。该试验为进一步研究miR801在杨树胁迫应答机制中的作用奠定基础。  相似文献   

3.
锌指蛋白在调控植物生长发育和应对逆境过程中发挥着重要作用.为进一步研究锌指类蛋白参与植物非生物胁迫响应的分子机制,对水稻(Oryza sativa)中一个编码含有B-box锌指结构域蛋白的OsBBX25基因进行了功能分析.OsBBX25受盐、干旱和ABA诱导表达.异源表达OsBBX25的转基因拟南芥(Arabidopsis thaliana)与野生型相比对盐和干旱的耐受性增强,且盐胁迫条件下转基因植物中KIN1、RD29A和COR15的表达上调,干旱胁迫下KIN1、RD29A和RD22的表达上调.外源施加ABA时,转基因植物的萌发率与野生型之间没有明显差异.OsBBX25可能作为转录调控的辅助因子调节胁迫应答相关基因的表达,进而参与植物对非生物胁迫的响应.  相似文献   

4.
生长素信号转导途径与植物胁迫反应相互作用的证据(英)   总被引:6,自引:0,他引:6  
生长素影响植物多种生理过程 ,有报道显示生长素可能影响植物对逆境胁迫的反应。我们利用cDNA阵列技术鉴定拟南芥 (Arabidopsisthaliana (L .)Heynh .)的生长素应答基因 ,发现多个胁迫应答基因受生长素抑制 ,包括ArabidopsishomologofMEKkinase1(ATMEKK1) ,RelA/SpoThomolog 3(At_RSH3) ,Catalase 1(Cat1)和Ferritin 1(Fer1) ,说明生长素可调节胁迫应答基因的表达。此外 ,我们还证明吲哚乙酸 (IAA)合成途径中的腈水解酶基因nitrilase 1(NIT1)和nitrilase 2 (NIT2 )受盐胁迫诱导 ,提示在逆境条件下IAA的合成可能随之增加。我们利用生长素不敏感突变体研究生长素与逆境反应相互作用的信号转导 ,发现胁迫应答基因在野生型和生长素不敏感突变体auxinresistant2 (axr2 )中可被盐胁迫诱导 ,而在auxinresistant1_3(axr1_3)中则不被诱导 ,说明生长素与逆境胁迫反应的相互作用可能发生在泛素途径。  相似文献   

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生长素影响植物多种生理过程,有报道显示生长素可能影响植物对逆境胁迫的反应.我们利用cDNA阵列技术鉴定拟南芥(Arabidopsis thaliana (L.) Heynh.)的生长素应答基因,发现多个胁迫应答基因受生长素抑制,包括Arabidopsis homolog of MEK kinase1 (ATMEKK1),RelA/SpoT homolog 3 (At-RSH3),Catalase 1 (Cat1) 和Ferritin 1 (Fer1),说明生长素可调节胁迫应答基因的表达.此外,我们还证明吲哚乙酸(IAA)合成途径中的腈水解酶基因nitrilase 1 (NIT1) 和nitrilase 2 (NIT2) 受盐胁迫诱导,提示在逆境条件下IAA的合成可能随之增加.我们利用生长素不敏感突变体研究生长素与逆境反应相互作用的信号转导,发现胁迫应答基因在野生型和生长素不敏感突变体auxin resistant 2 (axr2) 中可被盐胁迫诱导,而在auxin resistant 1-3 (axr1-3)中则不被诱导,说明生长素与逆境胁迫反应的相互作用可能发生在泛素途径.  相似文献   

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生长素影响植物多种生理过程,有报道显示生长素可能影响植物对逆境胁迫的反应。我们利用cDNA阵列技术鉴定拟南芥(Arabiopsis thaliana (L.)Heynh.)的生长素应答基因,发现多个胁迫应答基因受生长素抑制,包括Arabidopsis homolog of MEK kinasel(ATMEKK1),RelA/SpoT homolog 3(At-RSH3),Catalase 1(Cat1)和Ferriitn 1(Fer1)。说明生长素可调节胁迫应答基因的表达,此外,我们还证明吲哚乙酸(LAA)合成途径中的腈水解酶基因nitrilase 1(NIT1)和nitrilae 2(NIT2)受盐胁迫诱导,提示在逆境条件下1AA的合成可能随之增加,我们利用生长素不敏感突变体研究生长素与逆境反应相互作用的信号转导,发现胁迫应答基因在野生型和生长素不敏感突变体auxin resistant 2(axr2)中可被盐胁迫诱导,而在auxin resitant1-3(axl-3)中则不被诱导,说明生长素与逆境胁迫反应的相互作用可能发生在泛素途径。  相似文献   

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为了研究玉米中介体亚基ZmMED7基因的功能,通过荧光定量PCR技术,研究ZmMED7-1和ZmMED7-2在玉米不同组织中的表达及在ABA处理、盐害和渗透胁迫等逆境条件下的应答反应,并将ZmMED7-1和ZmMED7-2转入拟南芥中研究其基因功能。结果显示,ZmMED7在玉米不同发育时期的组织器官中均有表达,ZmMED7-1和ZmMED7-2分别在V1和V5期的叶片中表达量最高。ABA、盐害和渗透胁迫等处理都能够抑制ZmMED7-1和ZmMED7-2基因的表达。过表达ZmMED7-1导致拟南芥在种子萌发时期对盐胁迫的耐受能力减弱。研究结果说明:ZmMED7基因作为负调控因子参与了植物逆境胁迫应答反应。  相似文献   

8.
为了解水稻Na+/H+逆向转运蛋白(OsNHX1)在植物应答非生物胁迫中的分子调控机制,采用RT-PCR方法克隆OsNHX1基因上游2 000bp的启动子序列,并通过基因枪轰击瞬时转化洋葱表皮细胞,检测不同非生物胁迫下启动子的活性和表达模式;同时,分别克隆全长和C末端缺失的OsNHX1基因,通过花序浸染法转化拟南芥,研究OsNHX1基因及其C末端的功能。结果显示:OsNHX1启动子受逆境胁迫诱导,在盐、干旱、脱落酸胁迫处理下GUS表达活性明显升高;过表达OsNHX1的转基因拟南芥中,种子萌发率、根长、丙二醛含量和相对含水量的测定结果均显示其胁迫耐受性得到改善,但过表达OsNHX1C末端缺失基因对转基因植株的胁迫耐受性无明显影响。研究表明,Na+/H+逆向转运蛋白有助于提高植物耐盐性,且其C末端区域对该转运蛋白活性的发挥具有关键作用。  相似文献   

9.
利用拟南芥cDNA文库在裂殖酵母中的功能性表达 ,从拟南芥中分离了一个编码富甘氨酸蛋白 (glycine richprotein ,GRP)的cDNA克隆 (其基因被命名为AtGRP9)。在裂殖酵母中大量表达AtGRP9cDNA能显著提高细胞的耐盐性。在拟南芥中 ,AtGRP9基因的表达受盐胁迫诱导 ,其表达具有根器官特异性 ;而且 35S启动子组成形成超量表达植株的耐盐性明显提高。这些实验结果表明拟南芥AtGRP9可能是一盐胁迫应答相关基因。  相似文献   

10.
磷脂酶(phospholipase)是一类在植物生长发育和胁迫应答中起重要调控作用的磷脂水解酶,也是一类重要的信号转导酶。而磷脂酶A1(PLA1)在植物应答生物胁迫和非生物胁迫中的功能研究鲜见报道。研究从桑树(Morus alba L.)中克隆了磷脂酶PLA1的1个亚型MaPLA1-2D基因,对其进行了序列分析、组织表达、胁迫诱导表达和蛋白亚细胞定位分析。结果表明,桑树PLA1-2D亚型基因包括4个成员,命名为MaPLA1-2D.1~MaPLA1-2D.4。4个基因在桑树根和叶中高水平表达,蛋白亚细胞定位在叶绿体。序列和进化分析表明MaPLA1-2D基因4个成员与拟南芥AtDAD1基因的保守结构域序列具有较高相似度且进化关系紧密。MaPLA1-2D基因4个成员的启动子含有多种胁迫应答顺式元件和激素响应元件;胁迫诱导表达模式分析表明MaPLA1-2D基因表达受干旱和脱落酸处理显著诱导。以上结果说明,MaPLA1-2D基因与拟南芥DAD同源,可能在桑树非生物胁迫应答中发挥重要功能。  相似文献   

11.
Most of the symplastic water transport in plants occurs via aquaporins, but the extent to which aquaporins contribute to plant water status under favorable growth conditions and abiotic stress is not clear. To address this issue, we constitutively overexpressed the Arabidopsis plasma membrane aquaporin, PIP1b, in transgenic tobacco plants. Under favorable growth conditions, PIP1b overexpression significantly increased plant growth rate, transpiration rate, stomatal density, and photosynthetic efficiency. By contrast, PIP1b overexpression had no beneficial effect under salt stress, whereas during drought stress it had a negative effect, causing faster wilting. Our results suggest that symplastic water transport via plasma membrane aquaporins represents a limiting factor for plant growth and vigor under favorable conditions and that even fully irrigated plants face limited water transportation. By contrast, enhanced symplastic water transport via plasma membrane aquaporins may not have any beneficial effect under salt stress, and it has a deleterious effect during drought stress.  相似文献   

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Raffinose family oligosaccharides (RFO) accumulating during seed development are thought to play a role in the desiccation tolerance of seeds. However, the functions of RFO in desiccation tolerance have not been elucidated. Here we examine the functions of RFO in Arabidopsis thaliana plants under drought- and cold-stress conditions, based on the analyses of function and expression of genes involved in RFO biosynthesis. Sugar analysis showed that drought-, high salinity- and cold-treated Arabidopsis plants accumulate a large amount of raffinose and galactinol, but not stachyose. Raffinose and galactinol were not detected in unstressed plants. This suggests that raffinose and galactinol are involved in tolerance to drought, high salinity and cold stresses. Galactinol synthase (GolS) catalyses the first step in the biosynthesis of RFO from UDP-galactose. We identified three stress-responsive GolS genes (AtGolS1, 2 and 3) among seven Arabidopsis GolS genes. AtGolS1 and 2 were induced by drought and high-salinity stresses, but not by cold stress. By contrast, AtGolS3 was induced by cold stress but not by drought or salt stress. All the GST fusion proteins of GST-AtGolS1, 2 and 3 expressed in Escherichia coli had galactinol synthase activities. Overexpression of AtGolS2 in transgenic Arabidopsis caused an increase in endogenous galactinol and raffinose, and showed reduced transpiration from leaves to improve drought tolerance. These results show that stress-inducible galactinol synthase plays a key role in the accumulation of galactinol and raffinose under abiotic stress conditions, and that galactinol and raffinose may function as osmoprotectants in drought-stress tolerance of plants.  相似文献   

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MYB类转录因子在调控逆境应答基因的表达起着重要的作用, 是最大的植物转录因子之一。文章通过同源基因克隆方法和RACE(Rapid-amplification of cDNA ends)技术, 以毛竹幼苗为材料, 获得一个MYB类转录因子, 命名PeMYB2。氨基酸序列分析表明, PeMYB2具有典型的R2R3-MYB特征, N端含有两个串联重复保守结构域, C端含有一个膜蛋白DUF3651; 进化树分析表明, PeMYB2与水稻OsMYB18序列相似性最高, 达到85.98%; 酵母单杂实验表明, PeMYB2具有转录激活功能。将PeMYB2转化拟南芥对其功能进行分析, 获得7株转基因纯合体植株。比较转基因和野生型拟南芥表型发现, PeMYB2的过量表达使转基因拟南芥出现矮化、晚花的现象; 非生物胁迫处理(盐胁迫、干旱胁迫、低温胁迫)结果表明, 转基因拟南芥中PeMYB2的过量表达, 导致转基因植株对盐胁迫和低温胁迫有更高的耐性, 但是对低温胁迫的耐受性没有明显的变化; 进一步通过盐胁迫信号通路相关Marker基因(NXH1、SOS1、RD29A、COR15A)的定量PCR实验验证, 发现PeMYB2对下游这些抗逆基因的表达具有调控作用。上述实验结果表明, 毛竹PeMYB2可参与非生物胁迫调控, 对毛竹盐胁迫和低温胁迫的响应起着重要的作用。  相似文献   

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Wang Y  Liu C  Li K  Sun F  Hu H  Li X  Zhao Y  Han C  Zhang W  Duan Y  Liu M  Li X 《Plant molecular biology》2007,64(6):633-644
The nuclear protein ETHYLENE INSENSITIVE2 (EIN2) is a central component of the ethylene signal transduction pathway in plants, and plays an important role in mediating cross-links between several hormone response pathways, including abscisic acid (ABA). ABA mediates stress responses in plants, but there is no report on the role of EIN2 on plant response to salt and osmotic stresses. Here, we show that EIN2 gene regulates plant response to osmotic and salt stress through an ABA-dependent pathway in Arabidopsis. The expression of the EIN2 gene is down-regulated by salt and osmotic stress. An Arabidopsis EIN2 null mutant was supersensitive to both salt and osmotic stress conditions. Disruption of EIN2 specifically altered the expression pattern of stress marker gene RD29B in response to the stresses, but not the stress- or ABA-responsive genes RD29A and RD22, suggesting EIN2 modulates plant stress responses through the RD29B branch of the ABA response. Furthermore, disruption of EIN2 caused substantial increase in ABA. Lastly, our data showed that mutations of other key genes in ethylene pathway also had altered sensitivity to abiotic stresses, indicating that the intact ethylene may involve in the stress response. Taken together, the results identified EIN2 as a cross-link node in ethylene, ABA and stress signaling pathways, and EIN2 is necessary to induce developmental arrest during seed germination, and seedling establishment, as well as subsequent vegetative growth, thereby allowing the survival and growth of plants under the adverse environmental conditions. Youning Wang and Chuang Liu contributed equally to this work.  相似文献   

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构建了植物过量表达载体p35S::GaSus3,通过花序浸染法成功获得转GaSus3基因拟南芥植株。利用NaCl模拟盐胁迫处理,证实转基因拟南芥与野生型相比耐盐性明显增强。在盐胁迫下,转基因拟南芥受到的影响较小,而野生型则受盐害影响严重:转基因拟南芥具有更好的萌发率和主根长度,以保证植株正常生长;盐胁迫下转基因拟南芥能保持较多的绿色叶片,而野生型则过早黄化死亡。研究还发现,转基因拟南芥的过氧化氢酶活性在胁迫前后都高于野生型,这说明转GaSus3基因能够提高拟南芥抗氧化胁迫的能力。研究结果为进一步探讨GaSus3基因在棉花耐盐方面的功能奠定了基础。  相似文献   

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