Sengupta Sonali, Patra Barunava, Ray Sudipta, Majumder Arun Lahiri
Plant Molecular and Cellular Genetics, Bose Institute, CIT Scheme VIIM, Kolkata 700054, India.
Plant Cell Environ. 2008 Oct;31(10):1442-59. doi: 10.1111/j.1365-3040.2008.01850.x. Epub 2008 Jul 14.
Methylated inositol D-pinitol (3-O-methyl-D-chiro-inositol) accumulates in a number of plants naturally or in response to stress. Here, we present evidence for accumulation and salt-enhanced synthesis of pinitol in Porteresia coarctata, a halophytic wild rice, in contrast to its absence in domesticated rice. A cDNA for Porteresia coarctata inositol methyl transferase 1 (PcIMT1), coding for the inositol methyl transferase implicated in the synthesis of pinitol has been cloned from P. coarctata, bacterially overexpressed and shown to be functional in vitro. In silico analysis confirms the absence of an IMT1 homolog in Oryza genome, and PcIMT1 is identified as phylogenetically remotely related to the methyl transferase gene family in rice. Both transcript and proteomic analysis show the up-regulation of PcIMT1 expression following exposure to salinity. Coordinated expression of L-myo-inositol 1-phosphate synthase (PcINO1) gene along with PcIMT1 indicates that in P. coarctata, accumulation of pinitol via inositol is a stress-regulated pathway. The presence of pinitol synthesizing protein/gene in a wild halophytic rice is remarkable, although its exact role in salt tolerance of P. coarctata cannot be currently ascertained. The enhanced synthesis of pinitol in Porteresia under stress may be one of the adaptive features employed by the plant in addition to its known salt-exclusion mechanism.
甲基化肌醇 D-松醇(3-O-甲基-D-手性肌醇)在许多植物中自然积累或在应激反应时积累。在此,我们提供证据表明,盐生野生稻窄叶野生稻中存在松醇积累且盐胁迫可增强其合成,而驯化水稻中则没有。我们从窄叶野生稻中克隆了窄叶野生稻肌醇甲基转移酶 1(PcIMT1)的 cDNA,该基因编码参与松醇合成的肌醇甲基转移酶,并在细菌中进行了过量表达,且在体外显示具有功能。计算机分析证实水稻基因组中不存在 IMT1 同源物,并且 PcIMT1 被鉴定为与水稻中的甲基转移酶基因家族在系统发育上关系较远。转录组和蛋白质组分析均表明,盐胁迫处理后 PcIMT1 的表达上调。L-肌醇 1-磷酸合酶(PcINO1)基因与 PcIMT1 的协同表达表明,在窄叶野生稻中,通过肌醇合成松醇是一条受胁迫调节的途径。野生盐生稻中存在松醇合成蛋白/基因很显著,尽管目前尚无法确定其在窄叶野生稻耐盐性中的具体作用。在胁迫条件下,窄叶野生稻中松醇合成的增强可能是该植物除已知的排盐机制外所采用的适应性特征之一。