首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到18条相似文献,搜索用时 93 毫秒
1.
番茄Sly-MIR167的抗冷性研究   总被引:1,自引:0,他引:1  
以番茄为材料,采用Northern杂交技术,分析番茄MIR167(Sly-MIR167)在低温胁迫下的表达模式,以明确Sly-MIR167在冷胁迫下的分子调控机制,为基因工程在改良番茄品种中的实际应用提供依据。结果显示:(1)25℃下Sly-MIR167在番茄根、茎、花瓣、果实、叶片都有表达,4℃低温胁迫下的表达量均增加,表明Sly-MIR167表达受低温诱导。(2)采用农杆菌侵染构建表达载体并转化番茄获得转基因植株,冷胁迫实验结果显示:转基因植株在冷胁迫处理的生长状况明显优于对照;另外,冷胁迫下2个转基因株系(T2-5和T2-19)的最大光化学效率、叶绿素含量下降幅度明显低于野生型;脯氨酸含量高于野生型;MDA含量低于野生型,表明Sly-MIR167能够提高番茄对冷胁迫的耐受性。(3)通过miRU在线软件预测Sly-MIR167的靶基因为NF-YA1、NF-YA2,利用RT-PCR技术分析其表达下调,证明它们被MIR167负调控。  相似文献   

2.
过量表达内质网小分子热激蛋白增强番茄的衣霉素抗性   总被引:4,自引:0,他引:4  
真核细胞内质网腔内未折叠蛋白的过度积累会引起内质网胁迫(ER胁迫),继而激活未折叠蛋白应答(UPR)信号途径,诱导内质网定位的分子伴侣的大量表达(如BiP和calnexin等)。本工作将CaMV35S启动子驱动的内质网小分子热激蛋白基因(ER-sHSP)导入番茄,发现ER-sHSP的过量表达提高了转基因番茄整株对衣霉素的抗性。衣霉素处理使未转基因番茄中BiP和calnexin基因的表达迅速升高,转基因番茄中这两个基因的表达也有增加,但表达强度明显低于未转基因番茄。说明ER-sHSP能够减轻ER胁迫,并可能参与UPR信号转导途径。  相似文献   

3.
在干旱胁迫伴随大气CO2浓度以及升高的CO2浓度(加倍)条件下,以过量表达番茄类囊体膜抗坏血酸过氧化物酶基因(StAPX)的转基因番茄为试材,探明干旱胁迫TCO2浓度升高对转基因及其野生型番茄植株清除活性氧及耐旱能力的影响。结果表明:升高的CO2浓度明显增加了干旱胁迫下植物的光合水平;升高的CO2浓度明显降低了干旱导致的植物体内H2O2.和O2的积累,影响了干旱胁迫下番茄植株的水.水循环系统的活性氧清除酶活性和小分子抗氧化物质含量;干旱胁迫下即使伴随升高的CO2浓度,测试番茄植株体内的渗透调节物质含量变化也不太明显;升高的CO2浓度明显降低了干旱胁迫下的植物细胞膜伤害程度;干旱胁迫下,升高的CO2浓度对转基因番茄株系比对野生型植株的影响更加明显。结果证明干旱逆境下,升高的CO2浓度能够在一定程度上进一步提高转基因番茄植株的耐旱性。  相似文献   

4.
利用番茄内质网小分子热激蛋白(ERsHSP)特异性抗体,对番茄果实蛋白进行Western分析,以测定低温冷藏下番茄果实中ERsHSP的表达量,并测定果实硬度、腐烂度和失重率等指标,以比较中蔬4号转ERsHSP基因番茄和未转基因番茄果实在4℃低温下的耐冷藏性.结果表明:在4℃冷藏30 d期间,转基因番茄果实具有较高的ERsHSP表达水平,而未转基因番茄果实中没有ERsHSP的表达;相对于未转基因番茄果实,转基因番茄果实冷害症状轻,并具有较高的果实硬度(平均值为2.84 kg/cm2)、较低的果实腐烂度(平均值为21.03%)和失重率(平均值为6.33%).  相似文献   

5.
过量表达叶绿体小分子热激蛋白提高番茄的抗寒性   总被引:17,自引:0,他引:17  
小分子热激蛋白与植物耐寒性提高有相关性,但是没有直接的实验证据能证明小分子热激蛋白的存在增加植物抗寒性.我们克隆了番茄叶绿体(定位)小分子热激蛋白cDNA,并将35SCaMV启动子驱动的番茄叶绿体小分子热激蛋白cDNA植物表达构架导入番茄,测定转基因番茄和未转基因番茄的抗寒性水平.低温处理后,转基因番茄的冷害症状轻于未转基因的番茄;转基因番茄细胞电解质外渗较少、花青素和MDA累积量较低;净光合速率和叶绿体含量高于对照.这些实验结果说明叶绿体小分子热激蛋白的过量表达提高了植物抗寒性.  相似文献   

6.
转HAL1基因番茄的耐盐性   总被引:18,自引:0,他引:18  
利用农杆菌介导的叶盘法,把HAL1 基因转入番茄,Southern杂交检测得到转基因植株.耐盐实验表明, T1代转基因番茄在150 mmol/L的NaCl胁迫下仍有43%的发芽率,200 mmol/L的NaCl胁迫下发芽率为6%,而对照种子在100和150 mmol/L的NaCl胁迫下发芽率分别为11.0%和0.转基因番茄的电解质相对外渗率小于对照,而根冠比和叶绿素含量大于对照,转HAL1基因显著提高了番茄的耐盐性.盐胁迫下Na 、K 的累积状况表明,转基因番茄根、茎、叶的K /Na 均有所提高,根系的SK/Na增大,茎、叶的RSK/Na和RLK/Na减小,说明根系对K /Na 离子的选择吸收和运输能力加强.不但选择吸收K /Na ,而且表现出整株水平上的有利于耐盐的K /Na 区域化分配.  相似文献   

7.
根癌农杆菌介导AtNHX1基因转化番茄的研究   总被引:1,自引:0,他引:1  
构建AtNHX1基因植物表达载体,通过农杆菌介导法将其转入番茄。探讨了外植体类型、农杆菌菌株和不同筛选标记对芽诱导分化的影响。对抗性植株进行PCR检测,获得15株转基因植株。对转基因番茄T1代进行80mmol/LNaHCO胁迫处理,转基因植株的相对生长量高于对照植株,显示AtNHX1基因的导入提高了番茄对碱性盐的耐受性。  相似文献   

8.
NAC(NAM-ATAF1,2-CUC2)转录因子在植物胁迫响应中起重要作用。为了探讨三舭丹基因在番茄抗低温胁迫中的功能,分离了番茄LeNLP4转录因子基因,并获得转正义LeNLP4基因番茄植株。荧光定量PCR分析表明,LeNLP4的表达受低温诱导。与野生型植株相比,在4℃胁迫下转基因植株具有较高的生长量和光系统II(PSH)最大光化学效率(Fv/Fm)、过氧化氢(H2O2)和超氧阴离子(O2-)清除速率、抗坏血酸过氧化物酶(APX)和超氧化物歧化酶(SOD)活性,以及较低的丙二醛(MDA)含量和相对电导率(REC)。过表达株系中SICBF1的表达高于野生型。上述结果表明,LeNLP4的过表达提高了转基因番茄抗低温胁迫能力。  相似文献   

9.
该研究以野生型番茄(Solanum lycopersicum)为材料,采用PCR技术克隆得到了番茄 SlWRKY31 基因起始密码子 ATG 上游启动子序列,并利用该启动子驱动 GUS基因在野生型番茄中表达,对获得的转基因番茄采用不同胁迫处理后进行GUS 染色和定量分析。结果表明:(1)序列分析显示,该启动子全长1 849 bp,含有多个与非生物胁迫和激素响应相关的顺式作用元件,主要包括热胁迫响应元件 HSE、干旱诱导响应元件 MBS、防卫和胁迫响应元件 TC rich repeats、创伤诱导响应元件 WUN motif、脱落酸(ABA)响应元件 ABRE 和水杨酸(SA)响应元件 TCA element。(2)实时荧光定量 PCR 结果显示,SlWRKY31 基因呈组成型表达模式,且在叶和果实中表达量较高,茎中较低;在NaCl、甘露醇、SA、ABA 和42 ℃ 高温的胁迫处理下,其表达量显著升高。(3)构建 SlWRKY31 启动子和 GUS 基因融合的植物表达载体,并通过农杆菌介导法将其转化野生型番茄,对获得的转基因番茄进行 GUS 组织化学染色分析结果显示,SlWRKY31 基因在番茄的各个组织(根、茎、叶、花、果实和种子)中均有表达,表明 SlWRKY31 启动子是组成型表达启动子。(4)对转基因番茄在不同胁迫处理后的 GUS 染色和定量分析显示,SlWRKY31 启动子显著受到NaCl、甘露醇、SA、ABA 和42 ℃ 高温的诱导表达,说明该启动子是一个可以响应多种逆境胁迫的诱导型启动子。  相似文献   

10.
番茄幼苗叶面喷施适宜浓度(20~40mg·L~(-1))的己酸二乙氨基乙醇酯(DA-6)可有效提高冷胁迫下番茄幼苗植株的抗寒能力。冷胁迫下,20~40mg·L~(-1)DA-6处理的番茄植株自由水/束缚水比值降幅较大,叶中叶绿素含量、超氧化物歧化酶(SOD)、过氧化物酶(POD)和抗坏血酸过氧化物酶(APX)活性也明显增大,丙二醛(MDA)积累下降25.8%~34.6%,可溶性糖和可溶性蛋白质含量提高。  相似文献   

11.
12.
13.
In an attempt to improve stress tolerance of tomato (Lycopersicon esculentum) plants, an expression vector containing an Arabidopsis C-repeat/dehydration responsive element binding factor 1 (CBF1) cDNA driven by a cauliflower mosaic virus 35S promoter was transferred into tomato plants. Transgenic expression of CBF1 was proved by northern- and western-blot analyses. The degree of chilling tolerance of transgenic T(1) and T(2) plants was found to be significantly greater than that of wild-type tomato plants as measured by survival rate, chlorophyll fluorescence value, and radical elongation. The transgenic tomato plants exhibited patterns of growth retardation; however, they resumed normal growth after GA(3) (gibberellic acid) treatment. More importantly, GA(3)-treated transgenic plants still exhibited a greater degree of chilling tolerance compared with wild-type plants. Subtractive hybridization was performed to isolate the responsive genes of heterologous Arabidopsis CBF1 in transgenic tomato plants. CATALASE1 (CAT1) was obtained and showed activation in transgenic tomato plants. The CAT1 gene and catalase activity were also highly induced in the transgenic tomato plants. The level of H(2)O(2) in the transgenic plants was lower than that in the wild-type plants under either normal or cold conditions. The transgenic plants also exhibited considerable tolerance against oxidative damage induced by methyl viologen. Results from the current study suggest that heterologous CBF1 expression in transgenic tomato plants may induce several oxidative-stress responsive genes to protect from chilling stress.  相似文献   

14.
A tomato (Lycopersicon esculentum Mill.) zeaxanthin epoxidase gene (LeZE) was isolated and antisense transgenic tomato plants were produced. Northern, southern, and western blot analyses demonstrated that antisense LeZE was transferred into the tomato genome and the expression of LeZE was inhibited. The ratio of (A+Z)/(V+A+Z) in antisense transgenic plants was maintained at a higher level than in the wild type (WT) plants under high light and chilling stress with low irradiance. The value of non-photochemical quenching (NPQ) in WT and transgenic plants was not affected during the stresses. The oxidizable P700 and the maximal photochemical efficiency of PSII (Fv/Fm) in transgenic plants decreased more slowly at chilling temperature under low irradiance. These results suggested that suppression of LeZE caused zeaxanthin accumulation, which was helpful in alleviating photoinhibition of PSI and PSII in tomato plants under chilling stress.  相似文献   

15.
16.
17.
Tomato (Lycopersicon esculentum Mill.) plants, which normally do not accumulate glycinebetaine (GB), are susceptible to chilling stress. Exposure to temperatures below 10 degrees C causes various injuries and greatly decreases fruit set in most cultivars. We have transformed tomato (cv. Moneymaker) with a chloroplast-targeted codA gene of Arthrobacter globiformis, which encodes choline oxidase to catalyze the conversion of choline to GB. These transgenic plants express codA and synthesize choline oxidase, while accumulating GB in their leaves and reproductive organs up to 0.3 and 1.2 micromol g(-1) fresh weight (FW), respectively. Their chloroplasts contain up to 86% of total leaf GB. Over various developmental phases, from seed germination to fruit production, these GB-accumulating plants are more tolerant of chilling stress than their wild-type counterparts. During reproduction, they yield, on average, 10-30% more fruit following chilling stress. Endogenous GB contents as low as 0.1 micromol g(-1) FW are apparently sufficient to confer high levels of tolerance in tomato plants, as achieved via transformation with the codA gene. Exogenous application of either GB or H2O2 improves both chilling and oxidative tolerance concomitant with enhanced catalase activity. These moderately increased levels of H2O2 in codA transgenic plants, as a byproduct of choline oxidase-catalyzed GB synthesis, might activate the H2O2-inducible protective mechanism, resulting in improved chilling and oxidative tolerances in GB-accumulating codA transgenic plants. Thus, introducing the biosynthetic pathway of GB into tomato through metabolic engineering is an effective strategy for improving chilling tolerance.  相似文献   

18.
Sui N  Li M  Zhao SJ  Li F  Liang H  Meng QW 《Planta》2007,226(5):1097-1108
A tomato (Lycopersicon esculentum Mill.) glycerol-3-phosphate acyltransferase gene (LeGPAT) was isolated. The deduced amino acid sequence revealed that LeGPAT contained four acyltransferase domains, showing high identities with GPAT in other plant species. A GFP fusion protein of LeGPAT was targeted to chloroplast in cowpea mesophyll protoplast. RNA gel blot showed that the mRNA accumulation of LeGPAT in the wild type (WT) was induced by chilling temperature. Higher expression levels were observed when tomato leaves were exposed to 4 degrees C for 4 h. RNA gel and western blot analysis confirmed that the sense gene LeGPAT was transferred into the tomato genome and overexpressed under the control of 35S-CaMV. Although tomato is classified as a chilling-sensitive plant, LeGPAT exhibited selectivity to 18:1 over 16:0. Overexpression of LeGPAT increased total activity of LeGPAT and cis-unsaturated fatty acids in PG in thylakoid membrane. Chilling treatment induced less ion leakage from the transgenic plants than from the WT. The photosynthetic rate and the maximal photochemical efficiency of PS II (Fv/Fm) in transgenic plants decreased more slowly during chilling stress and recovered faster than in WT under optimal conditions. The oxidizable P700 in both WT and transgenic plants decreased obviously at chilling temperature under low irradiance, but the oxidizable P700 recovered faster in transgenic plants than in the WT. These results indicate that overexpression of LeGPAT increased the levels of PG cis-unsaturated fatty acids in thylakoid membrane, which was beneficial for the recovery of chilling-induced PS I photoinhibition in tomato.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号