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1.
根据本室分离的水稻EPSP合酶基因的基因组序列设计一对引物,利用RT-PCR方法首次从水稻(Oryza sativa L. subsp. indica)叶片的RNA中扩增获得了水稻编码EPSP合酶的全长为1 585 bp的cDNA片段,它含有一个完整的开放读码框,编码511个氨基酸,包括444个氨基酸组成的成熟肽序列以及N端的67个氨基酸组成的叶绿体转运肽序列.成熟肽氨基酸序列对比表明,除真菌来源的EPSP合酶变异较大外,其他来源的EPSP合酶同源性较高,均在51%以上.而叶绿体转运肽氨基酸序列同源性较低.Southern杂交表明水稻EPSP合酶基因在水稻基因组中以单拷贝形式存在.RT-PCR分析表明,水稻EPSP合酶基因在根、未成熟种子和叶片中均有转录表达,在叶片中表达量最高.  相似文献   

2.
水稻EPSP合酶基因的克隆、结构分析和定位   总被引:1,自引:1,他引:0  
5-烯醇丙酮莽草酸-3-磷酸(EPSP)合酶是芳香族氨基酸合成途径中的一个关键酶, 该基因在植物抗除草剂基因工程中具有重要的应用价值. 根据水稻EPSP合酶基因的EST序列设计探针, 在水稻TAC基因组文库中筛选到16个阳性克隆. 对阳性克隆E11进行亚克隆, 由此获得了由3661核苷酸组成的水稻EPSP合酶基因全序列. 序列分析和同源性比较揭示, 该基因由8个外显子和7个内含子组成. 以窄叶青8号/京系17组合构建的DH群体和分子图谱将水稻EPSP合酶基因定位于水稻第6条染色体的上端.  相似文献   

3.
甜菜ATP合酶β亚基基因atpB的克隆、序列分析及进化   总被引:5,自引:0,他引:5  
atpB基因编码ATP合酶β亚基,是光合作用中的重要基因。ATP合酶是生物体内能量代谢的关键酶,参与氧化磷酸化和光合磷酸化反应。利用植物叶绿体基因组在进化过程中高度保守的特点,根据已知植物烟草、水稻和菠菜等的叶绿体基因组全序列,设计并合成了一对引物,以甜菜叶绿体DNA为模板,PCR扩增得到包含atpB完整基因(GenBank登录号为DQ067451)在内的一段序列,测序与序列分析表明:该克隆片段全长2 293 bp,其中包括有1 497 bp的编码区序列,推测编码498个氨基酸。同源性比较,该克隆基因与烟草、菠菜、油菜、水稻atpB基因的核苷酸序列同源性分别为90.92%、95.79%、87.71%和86.37%,推测的氨基酸序列同源性分别为94.58%、97.19%、92.17%和91.97%。同时,建立了几种植物的氨基酸序列系统进化树。  相似文献   

4.
atpB基因编码ATP合酶β亚基,是光合作用中的重要基因。ATP合酶是生物体内能量代谢的关键酶,参与氧化磷酸化和光合磷酸化反应。利用植物叶绿体基因组在进化过程中高度保守的特点,根据已知植物烟草、水稻和菠菜等的叶绿体基因组全序列,设计并合成了一对引物,以甜菜叶绿体DNA为模板,PCR扩增得到包含atpB 完整基因(GenBank登录号为 DQ067451)在内的一段序列,测序与序列分析表明:该克隆片段全长2 293 bp,其中包括有1 497 bp的编码区序列,推测编码498个氨基酸。同源性比较,该克隆基因与烟草、菠菜、油菜、水稻atpB基因的核苷酸序列同源性分别为90.92%、95.79%、87.71%和86.37%,推测的氨基酸序列同源性分别为94.58%、97.19%、92.17%和91.97%。同时,建立了几种植物的氨基酸序列系统进化树。  相似文献   

5.
αtpB基因编码ATP合酶β亚基,是光合作用中的重要基因。ATP合酶是生物体内能量代谢的关键酶,参与氧化磷酸化和光舍磷酸化反应。利用植物叶绿体基因组在进化过程中高度保守的特点,根据已知植物烟草、水稻和菠菜等的叶绿体基因组全序列,设计并合成了一对引物,以甜菜叶绿体DNA为模板,PCR扩增得到包含αtpB完整基因(GenBank登录号为DQ067451)在内的一段序列,测序与序列分析表明:该克隆片段全长2293bp,其中包括有1497bp的编码区序列,推测编码498个氨基酸。同源性比较,该克隆基因与烟草、菠菜、油菜、水稻αtpB基因的核苷酸序列同源性分别为90.92%、95.79%、87.71%和86.37%,推测的氨基酸序列同源性分别为94.58%、97.19%、92.17%和91.97%。同时,建立了几种植物的氨基酸序列系统进化树。  相似文献   

6.
甘薯叶绿体rbcL基因的克隆与序列分析   总被引:2,自引:0,他引:2  
根据烟草、水稻和菠菜叶绿体的全基因组序列设计引物,以甘薯的叶绿体基因组DNA为模板,PCR扩增包舍甘暑叶绿体rbcL完整基因(GenBank登录号为AY942199)在内的一段序列.序列分析表明:此片段的全长为1 627 bp,包括1 443bp的编码区序列在内.推测编码480个氨基酸,同时构建了此片段的限制性酶切图谱.相似性比较显示,此基因编码区序列与烟草、菠菜、小麦、水稻、玉米、矮牵牛、紫花苜蓿、拟南芥、莨菪、葡萄以及甜菜的rbcL基因核苷酸的同源性为85%~98%,氨基酸的同源性为92%~95%.  相似文献   

7.
银杏叶绿体petD基因的克隆与表达   总被引:1,自引:0,他引:1  
根据黑松、云杉、菠菜与玉米叶绿体petD基因序列设计引物,以银杏叶绿体基因组DNA为模板,PCR扩增克隆了银杏叶绿体petD基因(GenBank登录号为DQ923066,命名为GbpetD)的序列。序列分析显示,GbpetD基因组DNA序列编码区长1243bp,含1个内含子和2个外显子,其外显子序列编码177个氨基酸。相似性比对显示,该基因编码区序列与云杉、台东苏铁、黑松、莴苣、木薯、北美落叶松的petD基因核苷酸同源性为84%-99%,氨基酸序列同源性为85%-93%。系统进化树分析结果表明GbpetD蛋白质与黑松、北美落叶松、云杉、苏铁等裸子植物的petD蛋白质聚类关系最近。半定量RT—PCR分析表明,GbpetD基因在银杏叶和茎中表达,在叶中表达量最大。  相似文献   

8.
利用5′/3′RACE PCR技术,从桃(Prunus persica (L.) Batsch)果实中克隆了植物乙烯生物合成的关键酶--ACC合酶的全长cDNA pacs,对pacs基因进行全序列测定表明,该基因全长1 848个碱基,编码区为1 449个碱基,5′端有177个碱基的非编码区序列,3′端有219个碱基的非编码区序列(不包括终止密码子TAA).pacs基因编码区共编码483个氨基酸,蛋白质大小为54 kD,等电点为6.43.pacs与番茄(S19677)、梅(AB031026)、番木瓜(U68216)、苹果(AB034993)等其他植物ACC合酶cDNA氨基酸序列同源性分别为65%、70%、75%、90%,并存在与这些ACC合酶氨基酸的活性位点保守序列SLSKDMGFPGFR.RT-PCR结合杂交分析表明,pacs和我们以前克隆的桃ACC合酶cDNA pacs12(AF467782)在叶片和花中基因表达模式基本一致,伤处理和IAA均能诱导叶片pacs 和pacs12基因的表达,但pacs在伤处理叶片的表达水平比pacs12高;pacs 和pacs12基因在果实表达有所不同,pacs在绿熟和成熟果实中均有表达,而pacs12在绿熟果实中基本检测不到,在成熟果实中才有表达,两者在果实中的表达水平比伤处理和IAA处理叶片和花中要低.  相似文献   

9.
利用5'/3'RACE FCR技术,从桃(Prunus persica(L.)Batsch)果实中克隆了植物乙烯生物合成的关键酶-ACC合酶的全长cDNA pacs,对pacs基因进行全序列测定表明,该基因全长1848个碱基,编码区1449个碱基,5'端有177个碱基的非编码区序列,3'端有219个碱基的非编码区序列(不包括终止密码子TAA)。pacs基因编码区共编码483个氨基酸,蛋白质大小为54kd,等电点为6.43。pacs与番茄(S19677)、梅(AB031026)、番木瓜(U68216)、苹果(AB034993)等其他植物ACC合酶cDNA氨基酸序列同源性分别为65%、70%、90%,并存在与这些ACC合酶氨pacs12(af467782)在叶片和花中基因表达模式基本一致,伤处理和IAA均能诱导叶片pacs和pacs12基因的表达,但pacs在伤处理叶片的表达水平比pacs12高;pacs和pacs12基因在果实表达有所不同,pacs在绿熟和成熟果实中均有表达,而pacs12在绿熟果实中基本检测不同,在成熟果实中才有表达,两在果实中的表达水平比伤处理和IAA处理叶片和花中要低。  相似文献   

10.
以水稻广亲和品种Cpslo17幼穗为材料,用一步法RT—PCR(逆转录聚合酶链式反应)克隆了一个长度为1118bp的编码线粒体磷转运蛋白的OsMPT基因。序列分析表明其包含了基因完整的编码序列,编码由368个氨基酸组成的线粒体磷转运蛋白,它与玉米、大豆、Lotus japonicus、Betula pendula、拟南芥的线粒体磷转运蛋白氨基酸序列相似率分别为93.5%,85.6%,83.8%,83.7%,81.1%。氨基酸疏水谱分析显示它有线粒体磷转运蛋白家族高度保守的6个跨膜结构域。水稻线粒体磷转运蛋白N端富含精氨酸(Arginine)、丙氨酸(Alanine)和丝氨酸(Serine)。iPSORT预测其蛋白N端具有定位于线粒体的信号肽序列,进一步分析表明此编码区段有6个外显子和5个内含子。RT—PCR结果表明,OsMPT基因在水稻两个亚种粳稻和籼稻的叶片中均有表达,在Cpslo17营养器官和生殖器官中都有高水平表达。水稻线粒体磷转运蛋白的克隆和表达分析将为研究其结构和生物学功能奠定基础。  相似文献   

11.
The shikimate pathway enzyme 5-enolpyruvylshikimate 3-phosphate synthase (EPSPs) is the target of nonselective herbicide glyphosate. A partial rice epsps cDNA was generated by RT-PCR with primers designed according to EST sequence in GenBank and used as probe for rice genomic library screening. In a screen of approximately 8.0×104 clones from the rice genomic library, sixteen positive clones were obtained, which strongly hybridized to the probe. One clone, E11, was selected for further analysis and the full-length 3661 bp rice epsps genomic sequence was obtained. Sequence analysis and homologous comparison revealed that epsps gene is composed of 8 exons and 7 introns. Analysis by restriction fragment length polymorphism with the probe of rice epsps cDNA fragment confirmed that rice epsps is located on chromosome 6 with an indica-japonica (ZYQ8-JX17) double-haploid (DH) population. This is the first report on the EPSP synthase from monocotyledons.  相似文献   

12.
An 859-bp cDNA segment of a terpene synthase gene was amplified by PCR from the evergreen sclerophyllous holm oak (Quercus ilex L.) using heterologous primers for conserved regions of terpene synthase genes (TPS) in dicotyledonous plants. Based on the sequence of this segment, homologous primers were designed for amplification by RACE-PCR of a cDNA segment carrying the monoterpene synthase gene myrS. The gene encodes a protein of 597 amino acids including an N-terminal putative plastid transit peptide. The gene without the segment encoding the transit peptide was cloned by PCR into a bacterial expression vector. Expression in Escherichia coli yielded an active monoterpene synthase, which converted geranyl diphosphate (GDP) predominantly into the acyclic monoterpene myrcene and to a very small extent into cyclic monoterpenes. Sequence comparison with previously cloned monoterpene synthases revealed that the myrcene synthase from Q. ilex belongs to the TPSb subfamily.  相似文献   

13.
Three forms of soluble starch synthase were resolved by anion-exchange chromatography of soluble extracts from immature rice (Oryza sativa L.) seeds, and each of these forms was further purified by affinity chromatograph. The 55-, 57-, and 57-kD proteins in the three preparations were identified as candidates for soluble starch synthase by western blot analysis using an antiserum against rice granule-bound starch synthase. It is interesting that the amino-terminal amino acid sequence was identical among the three proteins, except that the 55-kD protein lacked eight amino acids at the amino terminus. Thus, these three proteins are products of the same gene. The cDNA clones coding for this protein have been isolated from an immature rice seed library in lambda gt11 using synthetic oligonucleotides as probes. The deduced amino acid sequence of this protein contains a lysine-X-glycine-glycine consensus sequence for the ADP-glucose-binding site of starch and glycogen synthases. Therefore, we conclude that this protein corresponds to a form of soluble starch synthase in immature rice seeds. The precursor of the enzyme contains 626 amino acids, including a 113-residue transit peptide at the amino terminus. The mature form of soluble starch synthase shares a significant but low sequence identity with rice granule-bound starch synthase and Escherichia coli glycogen synthase. However, several regions, including the substrate-binding site, are highly conserved among these three enzymes. Blot hybridization analysis demonstrates that the gene encoding soluble starch synthase is a single-copy gene in the rice genome and is expressed in both leaves and immature seeds. These results suggest that soluble and granule-bound starch synthases play distinct roles in starch biosynthesis of plant.  相似文献   

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16.
The endosperm of hexaploid wheat (Triticum aestivum [L.]) was shown to contain a high molecular weight starch synthase (SS) analogous to the product of the maize du1 gene, starch synthase III (SSIII; DU1). cDNA and genomic DNA sequences encoding wheat SSIII were isolated and characterized. The wheat SSIII cDNA is 5,346 bp long and contains an open reading frame that encodes a 1,628-amino acid polypeptide. A putative N-terminal transit peptide, a 436-amino acid C-terminal catalytic domain, and a central 470-amino acid SSIII-specific domain containing three regions of repeated amino acid similarity were identified in the wheat gene. A fourth region between the transit peptide and the SSIII-specific domain contains repeat motifs that are variable with respect to motif sequence and repeat number between wheat and maize. In dicots, this N-terminal region does not contain repeat motifs and is truncated. The gene encoding wheat SSIII, designated ss3, consists of 16 exons extending over 10 kb, and is located on wheat chromosome I. Expression of ss3 mRNA in wheat was detected in leaves, pre-anthesis florets, and from very early to middle stage of endosperm development. The entire N-terminal variable repeat region and the majority of the SSIII-specific domain are encoded on a single 2,703-bp exon. A gene encoding a class III SS from the Arabidopsis genome sequencing project shows a strongly conserved exon structure to the wheat ss3 gene, with the exception of the N-terminal region. The evolutionary relationships of the genes encoding monocot and dicot class III SSs are discussed.  相似文献   

17.
Ribulose bisphosphate carboxylase small subunit protein is synthesized in the cytoplasm as a precursor and transported into the chloroplast where the amino-terminal portion, the transit peptide, is removed proteolytically. To obtain chloroplast delivery of the 43-kDa 5-enolpyruvyl 3-phosphoshikimate (EPSP) synthase of Salmonella typhimurium, we constructed fusion proteins between the bacterial EPSP synthase and the ribulose bisphosphate carboxylase small subunit. A fusion protein consisting of the transit peptide fused to the EPSP synthase was not transported in vitro or in vivo into chloroplasts. A second fusion protein consisting of the transit peptide and 24 amino acids of the mature small subunit fused to the EPSP synthase was transported both in vitro and in vivo into chloroplasts. It was processed into two polypeptides of 46 and 47 kDa, respectively. This heterogeneity in processing was not caused by the presence of the aroA start codon, since its removal resulted in the same pattern. Substituting 24 different amino acids for the 24 amino acids of the mature small subunit resulted in a fusion protein that was not transported into the chloroplast. It was concluded that a portion of the mature small subunit was needed for efficient chloroplast delivery.  相似文献   

18.
利用RT-PCR技术从甜荞中克隆得到查耳酮合酶(CHS)的cDNA开放阅读框(ORF)序列,命名为FeChs,NCBI登录号为GU172166.1.该序列长1 179 bp,编码392个氨基酸,与其它植物CHS基因的同源性为78%~92%,其推导的氨基酸序列含有CHS高度保守的活性位点及CHS的标签序列GFGPG.  相似文献   

19.
From the rice leaf cDNA library, we have cloned a cDNA encoding rice chloroplast translational elongation factor EF-Tu (tufA). The rice tufA cDNA clone contains 1678 nucleotides and codes for a 467 amino acid protein including a putative chloroplast transit peptide of 59 amino acid residues. The predicted molecular mass of the mature protein is approximately 45 kDa. This cDNA clone contains the 61 nucleotides of the 5' untranslated region (UTR) and the 213 nucleotides of 3' UTR. Amino acid sequence identity of the rice tufA with the mature chloroplast EF-Tu proteins of tobacco, pea, arabidopsis, and soybean ranges from 83% to 86%. The deduced polypeptide of the rice tufA cDNA contains GTP binding domains in its N-terminal region and chloroplast EF-Tu signature regions in the C-terminal region. The rice tufA appears to exist as a single copy gene, although its homologues of maize and oat exist as multiple copy genes. The rice tufA gene is located in chromosome 1 and is more highly expressed in the leaf than in root tissue.  相似文献   

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