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Characterisation of a prokaryote-type tRNA-isopentenyltransferase gene from the moss Physcomitrella patens

机译:苔藓小立碗藓中原核生物型tRNA-异戊烯基转移酶基因的表征

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摘要

Cytokinins are of critical importance to numerous developmental processes in plants. Two cytokinin biosynthetic pathways have been described; each one uses a different type of isopentenyltransferases (IPTs) as the key enzyme. In the first pathway, adenylate-IPTs (EC 2.5.1.27) prenylate adenylic nucleotides to cytokinin nucleotides, thus catalysing the direct de novo biosynthesis of free cytokinins. In the second pathway, tRNA-IPTs (EC 2.5.1.8) catalyse cytokinin formation by isopentenylation of tRNA, the degradation of which liberates cytokinin nucleotides. Seed plants have been shown to possess both forms of IPTs. Here, we report on the in-silico based identification and on the functional characterisation of an IPT encoding gene (PpIPT1) from the bryophyte Physcomitrella patens. Analysis of the PpIPT1 amino acid sequence revealed high similarities to tRNA-IPTs of other plants. No adenylate-IPT genes were found in the Physcomitrella sequenced transcriptome/genome. PpIPT1 functionally complemented a defective tRNA-IPT gene of Saccharomyces cerevisiae (ScMOD5) in the strain MT-8. Dephosphorylated tRNA hydrolysates from PpIPT1-transformed MT-8 showed cytokinin activity in a moss bioassay and the presence of isopentenyladenosine in HPLC analysis, in contrast to those prepared from untransformed MT-8. A comparison of pro- and eukaryotic homologues revealed two classes of tRNA-IPTs; PpIPT1 belongs to a prokaryotic type with predicted chloroplast targeting. RT-PCR experiments revealed a stronger expression in the cytokinin overproducing mutant oveST25, thus indicating the potential role of PpIPT1 for cytokinin biosynthesis in the evolutionary old land plant Physcomitrella.
机译:细胞分裂素对于植物中的许多发育过程至关重要。已经描述了两种细胞分裂素的生物合成途径。每一种都使用不同类型的异戊烯基转移酶(IPT)作为关键酶。在第一个途径中,腺苷酸-IPT(EC 2.5.1.27)烯丙基化腺苷酸腺苷酸为细胞分裂素核苷酸,从而催化了游离细胞分裂素的直接从头生物合成。在第二种途径中,tRNA-IPT(EC 2.5.1.8)通过tRNA的异戊烯基化催化细胞分裂素的形成,其降解释放出细胞分裂素核苷酸。种子植物已被证明拥有两种形式的IPT。在这里,我们报道了基于苔藓植物Physcomitrella patens的IPT编码基因(PpIPT1)的基于计算机的鉴定和功能表征。对PpIPT1氨基酸序列的分析显示与其他植物的tRNA-IPT具有高度相似性。在Physcomitrella测序的转录组/基因组中未发现腺苷酸-IPT基因。 PpIPT1在功能上与MT-8菌株中酿酒酵母(ScMOD5)的缺陷tRNA-IPT基因互补。与未经转化的MT-8制备的相比,PpIPT1转化的MT-8的去磷酸化的tRNA水解产物在苔藓生物测定中显示细胞分裂素活性,并且在HPLC分析中显示异戊烯基腺苷的存在。对原核和真核同源物的比较揭示了两类tRNA-IPT。 PpIPT1属于原核生物,具有预期的叶绿体靶向作用。 RT-PCR实验表明,在过量表达细胞分裂素的突变型oveST25中有更强的表达,从而表明PpIPT1在进化的老陆植物Physcomitrella中对细胞分裂素生物合成的潜在作用。

著录项

  • 来源
    《Planta》 |2007年第3期|683-695|共13页
  • 作者单位

    Biocenter Klein Flottbek and Botanical Garden University of Hamburg Ohnhorst street 18 22609 Hamburg Germany;

    Biocenter Klein Flottbek and Botanical Garden University of Hamburg Ohnhorst street 18 22609 Hamburg Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Cytokinin biosynthesis; Isopentenyltransferase; tRNA;

    机译:细胞分裂素生物合成异戊烯基转移酶tRNA;

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