An Engineered Monolignol 4-O-Methyltransferase Depresses Lignin Biosynthesis and Confers Novel Metabolic Capability in Arabidopsis

Инженерно сконструированная монолигнольная 4-O-метилтрансфераза подавляет биосинтез лигнина и придаёт Arabidopsis новые метаболические свойства
Kewei Zhang, Mohammad-Wadud Bhuiya, Jorge Rencoret, Yu-Chen Miao, Hoon Kim, John Ralph, Chang‐Jun Liu
2012-07-01

cell wall digestibilityiterative saturation mutagenesislignin biosynthesismonolignol 4-O-methyltransferasephenylpropanoid biosynthesis
Although the practice of protein engineering is industrially fruitful in creating biocatalysts and therapeutic proteins, applications of analogous techniques in the field of plant metabolic engineering are still in their infancy. Lignins are aromatic natural polymers derived from the oxidative polymerization of primarily three different hydroxycinnamyl alcohols, the monolignols. Polymerization of lignin starts with the oxidation of monolignols, followed by endwise cross-coupling of (radicals of) a monolignol and the growing oligomer/polymer. The para-hydroxyl of each monolignol is crucial for radical generation and subsequent coupling. Here, we describe the structure-function analysis and catalytic improvement of an artificial monolignol 4-O-methyltransferase created by iterative saturation mutagenesis and its use in modulating lignin and phenylpropanoid biosynthesis. We show that expressing the created enzyme in planta, thus etherifying the para-hydroxyls of lignin monomeric precursors, denies the derived monolignols any participation in the subsequent coupling process, substantially reducing lignification and, ultimately, lignin content. Concomitantly, the transgenic plants accumulated de novo synthesized 4-O-methylated soluble phenolics and wall-bound esters. The lower lignin levels of transgenic plants resulted in higher saccharification yields. Our study, through a structure-based protein engineering approach, offers a novel strategy for modulating phenylpropanoid/lignin biosynthesis to improve cell wall digestibility and diversify the repertories of biologically active compounds.
1
An artificial monolignol 4-O-methyltransferase was structurally analyzed and catalytically improved through iterative saturation mutagenesis.
2
In planta expression methylated monolignol para-hydroxyls, preventing their oxidative coupling and substantially reducing lignification and lignin content.
3
Reduced lignin levels increased saccharification yields, improving cell-wall digestibility.
4
The engineered enzyme provides a strategy to modulate phenylpropanoid metabolism and diversify biologically active compounds.
5
Transgenic Arabidopsis accumulated newly synthesized 4-O-methylated soluble phenolics and wall-bound esters.

Transgenic Arabidopsis plants expressing an engineered monolignol 4-O-methyltransferase

Effects of para-hydroxyl etherification on lignin and phenylpropanoid biosynthesis, accumulation of 4-O-methylated phenolics, and cell-wall saccharification yield

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2012-07-01
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Kewei Zhang
Mohammad-Wadud Bhuiya
Jorge Rencoret
Yu-Chen Miao
Hoon Kim
John Ralph
Chang‐Jun Liu
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