Biotechnology Department, College of Agriculture, Jahrom University, Jahrom, Iran.
Division of Molecular Plant Genetics, Department of Agronomy & Plant Breeding, College of Agriculture & Natural Resources, University of Tehran, Karaj, Iran.
Plant Physiol Biochem. 2018 Sep;130:464-472. doi: 10.1016/j.plaphy.2018.07.026. Epub 2018 Jul 23.
Phenylalanine ammonia-lyase (PAL) is a control point for branched phenylpropanoid and terpenoid pathways. It represents the first regulatory step to provide a metabolic flux to produce of the precursors needed for biosynthesizing main volatile phenylpropanoid compounds (methyleugenol and methylchavicol) in basil. It is crucial during the stage of the environmental and development stimulants. To obtain better knowledge of the biosynthesis of these phenylpropene compounds, characterization and cloning of Ocimum basilicum PAL (ObPAL) cDNA and its heterologous expression and enzyme activity were assessed. The almost full-length ObPAL was 2064 bp in size encoding a 687-amino-acid polypeptide with molecular weight of 74.642 kDa and theoretical pI of 8.62. Phylogenetic analysis revealed a significant evolutionary relatedness of ObPAL with the PAL sequence reported in different species of Lamiaceae. To further confirm its function, ObPAL was cloned into pET28a (+) vector and expressed in E. coli. The recombinant protein exhibited high PAL activity and could catalyze the L-Phe conversion to trans-cinnamic acid. Expression analysis of PAL gene showed that ObPAL manifested various transcription ratios exposed to drought stress. Overall, our results demonstrated the ObPAL regulation gene is possibly a mechanism dependent on cultivar and drought stress.
苯丙氨酸解氨酶(PAL)是支链苯丙烷和萜烯途径的控制点。它代表了为生物合成主要挥发性苯丙烷化合物(甲基丁香酚和甲基胡椒酚)提供代谢通量的第一个调节步骤,在罗勒中需要这些前体。它在环境和发育刺激物的阶段至关重要。为了更好地了解这些苯基丙烯化合物的生物合成,评估了 Ocimum basilicum PAL(ObPAL)cDNA 的特征和克隆及其异源表达和酶活性。几乎全长的 ObPAL 大小为 2064bp,编码一个 687 个氨基酸的多肽,分子量为 74.642kDa,理论 pI 为 8.62。系统发育分析表明 ObPAL 与不同唇形科物种报道的 PAL 序列具有显著的进化相关性。为了进一步证实其功能,ObPAL 被克隆到 pET28a(+)载体中并在大肠杆菌中表达。重组蛋白表现出高 PAL 活性,并能催化 L-Phe 转化为反式肉桂酸。PAL 基因的表达分析表明,ObPAL 表现出不同的转录比率,暴露于干旱胁迫下。总的来说,我们的结果表明,ObPAL 调节基因可能是一种依赖于品种和干旱胁迫的机制。