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1.
The induction of anthocyanin synthesis and anthocyanin biosynthetic gene expression in detached petunia (Petunia hybrida) corollas by gibberellic acid (GA3) requires sucrose. Neither sucrose nor GA3 alone can induce these processes. We found that GA3 enhances sucrose uptake by 20 to 30%, and we tested whether this is the mechanism by which the hormone induces gene expression. Changing the intracellular level of sucrose with the inhibitors p-chloromercuribenzenesulfonic acid and vanadate did not inhibit the induction of chalcone synthase gene (chs) expression by GA3. Growing detached corollas in various sucrose concentrations did not affect the induction of the gene but did affect its level of expression and the level of anthocyanin accumulated. Only metabolic sugars promoted GA3-induced anthocyanin accumulation. Mannitol and sorbitol had no effect and 3-O-methylglucose only slightly promoted chs expression and anthocyanin accumulation. Our results do not support the suggestion that sugars act as specific signals in the activation of anthocyanin biosynthetic gene expression during petunia corolla development. We suggest that sugars are essential as general sources of carbohydrates for carbon metabolism, upon which the induction of pigmentation is dependent.  相似文献   

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Transgenic Arabidopsis thaliana plants were constructed by introduction of a fusion of the gene for β-glucuronidase (GUS) to the CHS-A gene, which is one of the two genes for chalcone synthase that are actively expressed in the floral organs of petunia. The expression of the fusion gene CHS-A::GUS was low in transgenic Arabidopsis plantlets, but it was enhanced when plantlets or detached leaves were transferred to a medium that contained 0.3 molar sucrose, glucose, or fructose. No enhancement was observed when plantlets were transferred to a medium that contained 0.3 molar mannitol. Measurements of cellular levels of sugars revealed a tight linkage between the level of expression of the CHS-A::GUS gene and the level of accumulation of exogenously supplied sugars, in particular sucrose. The parallelism between the organ-specific accumulation of sugar and the organ-specific expression of the CHS-A::GUS gene was also observed in petunia and A. thaliana plants grown under normal conditions in soil. The consensus sequences for sugar responses, such as boxes II and III in members of the family of sporamin genes from the sweet potato, were found in the promoter region of the CHS-A gene that was used for fusion to the GUS gene. It is suggested that the expression of the CHS-A gene is regulated by sugars, as is the expression of other sugar-responsive genes, such as the genes for sporamin. A putative common mechanism for the control of expression of “sugar-related” genes, including the CHS-A gene, is discussed.  相似文献   

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百合查尔酮合成酶(CHS)基因的克隆与分析   总被引:3,自引:0,他引:3  
以东方百合“索邦”基因组DNA为模板进行PCR扩增,将得到的目的片段克隆至pGEM-T easy载体后进行测序.结果表明,目的序列全长1 307 bp,经BLA ST分析,与鸢尾、玉米、水稻等植物的查尔酮合成酶(CHS)基因核苷酸同源性在70%以上;与已经克隆的CHS cDNA序列相比,CHS DNA序列中包含2个外显子和1个内含子,内含子全长82 bp,符合TG-AG特征.将得到的序列提交G enB ank,序列号为DQ 471951.  相似文献   

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Chalcone synthase (CHS) catalyzes the first step in the biosynthesis of flavonoids that function in flower pigmentation, protection against stress, and induction of nodulation. The petunia genome contains eight complete chs genes, of which four are differentially expressed in floral tissues and UV-light-induced seedlings. The 5[prime]-flanking regions of these four chs genes were fused to the [beta]-glucuronidase (GUS) reporter gene and introduced into petunia plants by Agrobacterium-mediated transformation. We show that expression of each construct is identical to the expression of the authentic chs gene, implying that the differences in expression pattern between these chs genes are caused at least in part by their promoters. Histochemical analyses of GUS expression show that chs promoters are not only active in pigmented cell types (epidermal cells of the flower corolla and tube and [sub] epidermal cells of the flower stem) but also in a number of unpigmented cell types (mesophylic cells of the corolla, several cell types in the ovary and the seed coat). Comparison of chs-GUS expression and flavonoid accumulation patterns in anthers suggests that intercellular transport of flavonoids and enzymes occurs in this organ. Analysis of the flavonoids accumulated in tissues from mutant lines shows that only a subset of the genes that control flavonoid biosynthesis in the flower operates in the ovary and seed. This implies that (genetic) control of flavonoid biosynthesis is highly tissue specific.  相似文献   

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查尔酮合成酶(CHS)超基因家族又称为植物类型III聚酮合酶超基因家族, 其编码酶通过催化和合成一系列结构多样及生理活性各异的次生代谢物, 在植物生长发育和适应环境的过程中扮演着重要角色。为全面了解CHS超基因家族在植物中的进化规律, 重建其进化历史, 该研究利用14种具有全基因组数据的代表植物, 通过生物信息学手段, 深入挖掘和分析了不同植物类群基因组中查尔酮合成酶超基因家族的成员构成, 推测了其可能的扩增机制和功能分歧, 并探讨了该超基因家族在植物中的总体进化趋势。结果共识别144条具有表达信息的同源序列, 它们全部来自9种陆生植物的基因组, 藻类植物基因组中没有发现相关序列。系统发育和进化分析表明, CHS超基因家族的起源古老, 它们可能为适应复杂的生态环境而出现在早期的陆生植物中, 之后在长期的进化过程中不断发生谱系的特异扩张和拷贝丢失, 最后通过功能分歧的形式在不同植物类群中被分别固定。此外, 进化检验也显示, 尽管CHS超基因家族内部发生了多样的遗传改变, 但整个超基因家族仍处于强烈的纯化选择之下, 并且个体基因中也无任何单氨基酸位点受到正向选择的影响。  相似文献   

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百合查尔酮合成酶基因的克隆与分析   总被引:1,自引:0,他引:1  
以西伯利亚百合为试材,通过半巢式PCR和RT-PCR技术分别克隆了查尔酮合成酶基因(CHS)的DNA和cDNA.生物信息学分析显示,CHS的DNA序列全长1 397 bp(登录号HM622754),包含2个外显子和1个内含子;cDNA序列编码区全长1 182 bp(登录号HQ161731),编码393个氨基酸,具有3个典型的CHS蛋白结构域:N-末端结构域(Lys3-Pro229)、C-末端结构域(Gln239-Pro389)和聚合酶Ⅲ结构域(Met1-Thr391);不同百合品种的CHS基因编码的氨基酸序列相似性高达98%,表明百合CHS基因在进化上呈现出十分保守的趋势;不同植物CHS基因序列的系统进化邻接树结果表明:百合与单子叶植物鸢尾及禾本科的水稻、大麦、玉米等亲缘关系更为接近.  相似文献   

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查尔酮合成酶是银杏叶黄酮合成途径中的第一个关键酶。利用RACE技术克隆到银杏的一个查尔酮合成酶基因,命名为GbCHS2,其cDNA全长1608bp,包括长1173bp的读码框,编码391个氨基酸。GbCHS2蛋白与已从银杏克隆到的GbCHS1蛋白具有很高的同源性,并包含其所有相同的活性位点。用半定量RT-PCR方法研究了银杏叶生长过程中chs基因的转录水平的变化,并对CHS活性变化和黄酮含量的变化曲线进行了线性回归分析。结果显示,在整个银杏叶生长过程中,CHS活性与黄酮含量呈极显著线性相关,表明CHS是银杏叶黄酮合成途径中的一个关键限速酶;chs基因的转录水平的变化与黄酮的积累是同步的,chs基因的这种表达模式表明chs基因的转录水平可能决定了银杏叶黄酮的积累。  相似文献   

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查尔酮合成酶(Chalcone synthase,CHS)广泛存在于植物体内,是花色素形成过程中一种重要的酶,可以进一步催化生成黄酮类化合物。本研究采用Codon W和EMBOSS在线软件对红松查尔酮合成酶基因CHS的密码子使用偏好性进行分析,并与北美乔松等其他24种植物的CHS基因以及模式植物基因组进行比较,对认识红松CHS基因的密码子使用偏好性,为选择适宜的表达系统奠定了一定的基础。研究结果表明:红松CHS基因编码区的有效密码子数(ENC)和GC含量分别为48.92和0.548,C+G含量高于A+T含量,密码子偏好以A/T结尾;多数植物CHS基因的G+C含量高于A+T含量,且密码子更偏好C/G结尾;聚类分析表明,红松与马尾松和赤松的密码子使用偏好性的相似性较高;密码子使用频率研究发现,红松CHS遗传转化与异源表达较优的受体可能是大肠杆菌和拟南芥。  相似文献   

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Chen  Shuai  Pan  Xuhao  Li  Yiting  Cui  Lijie  Zhang  Yinchao  Zhang  Zhiming  Pan  Guangtang  Yang  Jun  Cao  Peijian  Yang  Aiguo 《Journal of Plant Growth Regulation》2017,36(2):374-384
Journal of Plant Growth Regulation - Chalcone synthase (CHS, EC 2.3.1.74) is a member of the plant polyketide synthase superfamily; it catalyzes the first committed step in the flavonoid...  相似文献   

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查尔酮合酶(chalcone synthase, CHS)是植物类黄酮化合物合成的关键酶,有关蕨类植物CHS基因的序列及功能信息尚不完善。本研究采用快速扩增cDNA末端(RACE)技术克隆获得了模式蕨类植物——水蕨(Ceratopteris thalictroides)CtCHS基因(GenBank登录号:JX027616.1),其cDNA序列全长为1616 bp,具有3个外显子和2个内含子,开放阅读框(ORF)为1215 bp,编码404个氨基酸。进化树分析表明,CtCHS与问荆(Equisetum arvense)、松叶蕨(Psilotum nudum)和3种薄囊蕨的查尔酮合成酶基因聚为一枝,说明这些蕨类植物亲缘关系较近且为单系起源。通过构建原核表达体系成功获得CtCHS蛋白的多克隆抗体并用于免疫印迹分析,结果表明CtCHS基因的表达明显受紫外光(UV)诱导。CtCHS基因的克隆与表达分析为进一步研究水蕨类黄酮化合物的合成及其调控机制提供了依据。  相似文献   

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类黄酮是植物中的一种重要的次级代谢产物,它与植物的花色形成有关。查尔酮合酶是类黄酮合成途径中的一个关键酶,在植物体内,CHS表达量的增加或减少都可能改变花的。从矮牵牛花瓣的cDNA中克隆到了CHS-A基因,进行了全序列分析,并与国外已报道的CHS-A-序列进行了同源性比较。  相似文献   

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利用RT-PCR方法,从非洲菊(Gerbera hybrida)花瓣的CDNA中克隆到了查尔酮合酶(Chalcone Synthase,CHS)基因CHS,进行了序列分析。结果表明,克隆到的CHS基因全长为1197bps,编码一个由398个氨基酸残基组成的多肽,与Helariutta等发表的非洲菊查尔酮合酶CHSI基因的CDNA序列的CHS基因同源性高达99%。进一步将该基因克隆到表达载体pET32a上,经IPTG诱导表达,得到高效表达的融合蛋白。  相似文献   

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利用RT-PCR和RACE方法,从我国珍稀植物金花茶(Camellia nitidissima)花瓣中获得了查尔酮合成酶(chalcone synthase,CHS)基因的cDNA全长,命名为Cn-CHS,GenBank登录号HQ269804.碱基序列分析表明,Cn-CHS全长1 454bp,包含77 bp的5'非翻译区、207 bp的3'非翻译区和一个长为1 170 bp编码389个氨基酸的开放阅读框.氨基酸序列分析显示该基因编码的蛋白具有CHS家族保守存在的所有功能活性位点和特征性多肽序列.氨基酸序列比对分析表明,CnCHS与蔷薇科、杜鹃花科、茄科等植物的CHS相似性都在92%以上;与山茶科山茶属物种山茶(C.japonica)CHS完全一致;与茶(C.sinensis)CHS相似性达99%,有5个氨基酸位点存在差异,其中包括一个功能性位点.  相似文献   

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The effect of the gene Po on the activity of chalcone isomerase was investigated in Petunia hybrida. Furthermore, isomerase activities isolated from petals were compared with those extracted from anthers. No effect of Po on the pH-dependence of the isomerase and its kinetic properties was observed. With respect to these criteria, the enzyme extracted from anthers behaved in an identical manner to that extracted from petals. Upon chromatofocussing of a petal extract two peaks of activity were present with slightly different isoelectric points (pI 4.8 and pI 5.1). The occurrence of these activities was dependent on the method of enzyme extraction. An isolation procedure using polyvinylpyrrolidone besides Dowex to remove phenolic compounds, followed by (NH4)2SO4 precipitation of the protein, resulted in only one peak of isomerase at a pI of 5.3. This observation was independent of Po and did not occur in anthers. In anthers one peak of enzyme activity with a pI of 4.5 was present. The moleuclar weight of the isomerase from flowers (62,500 dalton in Po-dominant and Po-recessive plants) differed from the molecular weight of the anther enzyme (44,000 dalton). In Po-recessive mutants the isomerase activity in mature flowers was low compared with Po-dominant mutants, indicating that the mutation in Po either reflects a temporal mutation in the expression of chalcone isomerase or an increased degradation of the enzyme.  相似文献   

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为了解查耳酮合酶在小桐子(Jatropha curcas)抗冷性形成中的作用, 基于小桐子低温锻炼转录组和数字基因表达谱数据, 克隆了低温新诱导表达的小桐子查耳酮合酶基因(JcCHS), 并分析了该基因的表达特性和功能。结果表明, JcCHS 基因的cDNA全长为1386 bp, 包含完整开放阅读框(ORF) 1170 bp, 编码389个氨基酸, JcCHS的理论分子量为42.2 kDa、等电点为6.53, 与蓖麻CHS 蛋白序列的相似性高达93.6%, 具有III 型聚酮合酶家族保守的查耳酮合酶/ 对苯乙烯合酶结构域。半定量RTPCR分析表明, JcCHS 在小桐子各组织中都有表达, 其中根的表达量较高。JcCHS 基因的表达能在一定程度上提高重组酵母菌的低温抵抗能力, 这说明JcCHS 基因可能参与了小桐子的抗低温响应。  相似文献   

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根据番茄ACC合成酶基因(LE—ACC2)DNA序列,以番茄(LycopersiconesculentumMill)果实的总DNA为模板,利用PCR技术扩增得到预期大小的该基因编码区内部分DNA序列,插入到质粒载体pGEM—3zf(+)的BamHⅠ和HindⅢ位点之间后转化E.coliDH—5α,可选出重组子pRE,经酶切,PCR及DNA序列分析证明克隆成功;将pRE上的目的DNA序列以反义方式构建到我室已合成并克隆的含核酶DNA序列的重组质粒pRⅠ的BamHⅠ和HindⅢ之间,构成含有反义RNA-核酶嵌合DNA序列的重组质粒pREⅠ,经酶切及序列分析,结果与预期一致.  相似文献   

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