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1.
本研究以拟南芥为实验材料,探索基因At5g66070在植物激素ABA处理条件下的相关生理功能.结果表明,在10μMABA处理下,该基因的表达量明显升高,表明该基因受到ABA的诱导.亚细胞定位发现AT5G66070定位在细胞核.通过DNA及RNA水平筛选鉴定At5g66070基因T-DNA插入纯合突变体,然后经根瘤农杆菌介导法进行遗传转化,筛选获得过表达转基因株系.表型分析发现经ABA处理后,突变体相对于野生型而言根长较短,表明突变体对ABA更为敏感.气孔关闭实验发现10μM ABA能诱导突变体气孔关闭,而野生型和过表达无显著影响.以上结果表明At5g66070在拟南芥的ABA胁迫响应中起负调控作用.  相似文献   

2.
为探究拟南芥SnRK2.2和SnRK2.3基因对Cd胁迫响应的分子机制. 以野生型(WT)、双突变体SnRK2.2/2.3、过表达SnRK2.2和过表达SnRK2.3的转基因植物为材料,研究SnRK2.2和SnRK2.3基因与Cd胁迫响应的关系.发现过表达两个基因可以提高拟南芥对Cd的耐受性,表现为可以减少Cd、丙二醛(MDA)及活性氧(ROS)的累积量,增加抗氧化酶CAT、POD和SOD的活性. qRT PCR结果显示在Cd胁迫下,两种过表达植株中铁转运蛋白IRT1和转录因子FIT、bHLH038和bHLH039表达水平受到明显抑制,ABA合成相关基因AAO3和NCED3的表达量显著上调.在Cd胁迫下,两种过表达植株中ABA含量显著高于WT和双突变体. 以上结果表明:拟南芥遭受Cd胁迫时,SnRK2.2和SnRK2.3基因通过下调IRT1基因表达从而减少植物对Cd的吸收,同时通过增加内源ABA含量来缓解Cd对植物的毒害.  相似文献   

3.
A full-length cDNA clone corresponding to a putative phosphatidylinositol-specific phospholipase C(PIPLC) was isolated from Arabidopsis thaliana by screening a cDNA library and using RT-PCR strategy.The cDNA,designated AtPLC6,encodes a putative polypeptide of 578 amino acid residues with a calculated molecular mass of 66251.84 D and a pI of 7.24. The sequence analysis indicates that the polypeptide contains X, Y, EF-hand and C2 domains.The overall structure of putative AtPLC6 protein, like other plant PI-PLCs,is most similar to that of mammalian PLCδ The recombinant AtPLC6 protein expressed in E. coil was able to hydrolyze phosphatidylinositol 4,5-biophosphate (PIP2) to generate inositol 1,4,5-trisphate (IP3) and 1,2-diacylglycerol (DAG).The protein hydrolyzes PIP2 in a Ca^2 -dependent manner and the optimum concentration of Ca^2 is 10μmol/L.These results suggested that AtPLC6 gene encodes a genuine PIPLC.Northern blot analysis showed that the AtPLC6 gene is expressed at low level in all examined tissues, such as roots,stems,leaves,flowers,siliques and seedlings under normal growth conditions.The gene is strongly induced under low temperature and weakly induced under various stresses,such as ABA, high-salt stress and heat. These results suggested that AtPLC6 might be involved in the signal-transduction pathways of cold responses of the plants.  相似文献   

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