Phenylpropanoid Pathway Engineering: An Emerging Approach towards Plant Defense

苯丙素 代谢途径 生物 代谢工程 合成生物学 基因 计算生物学 细胞生物学 遗传学 生物合成
作者
Vivek Yadav,Zhongyuan Wang,Chunhua Wei,Aduragbemi Amo,Bilal Ahmed,Xiaozhen Yang,Xian Zhang
出处
期刊:Pathogens [MDPI AG]
卷期号:9 (4): 312-312 被引量:288
标识
DOI:10.3390/pathogens9040312
摘要

Pathogens hitting the plant cell wall is the first impetus that triggers the phenylpropanoid pathway for plant defense. The phenylpropanoid pathway bifurcates into the production of an enormous array of compounds based on the few intermediates of the shikimate pathway in response to cell wall breaches by pathogens. The whole metabolomic pathway is a complex network regulated by multiple gene families and it exhibits refined regulatory mechanisms at the transcriptional, post-transcriptional, and post-translational levels. The pathway genes are involved in the production of anti-microbial compounds as well as signaling molecules. The engineering in the metabolic pathway has led to a new plant defense system of which various mechanisms have been proposed including salicylic acid and antimicrobial mediated compounds. In recent years, some key players like phenylalanine ammonia lyases (PALs) from the phenylpropanoid pathway are proposed to have broad spectrum disease resistance (BSR) without yield penalties. Now we have more evidence than ever, yet little understanding about the pathway-based genes that orchestrate rapid, coordinated induction of phenylpropanoid defenses in response to microbial attack. It is not astonishing that mutants of pathway regulator genes can show conflicting results. Therefore, precise engineering of the pathway is an interesting strategy to aim at profitably tailored plants. Here, this review portrays the current progress and challenges for phenylpropanoid pathway-based resistance from the current prospective to provide a deeper understanding.
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