Deficiency in flavonoid biosynthesis genes CHS, CHI, and CHIL alters rice flavonoid and lignin profiles

特里金 木质素 单甘醇 苯丙素 细胞壁 类黄酮生物合成 查尔酮合酶 生物化学 化学 类黄酮 查尔酮异构酶 突变体 生物合成 生物 基因 有机化学 基因表达 转录组 抗氧化剂
作者
Pui Ying Lam,Lanxiang Wang,Andy C. W. Lui,Hongjia Liu,Yuri Takeda-Kimura,Moxian Chen,Fu Yuan Zhu,Jianhua Zhang,Toshiaki Umezawa,Yuki Tobimatsu,Clive Lo
出处
期刊:Plant Physiology [Oxford University Press]
卷期号:188 (4): 1993-2011 被引量:18
标识
DOI:10.1093/plphys/kiab606
摘要

Abstract Lignin is a complex phenylpropanoid polymer deposited in the secondary cell walls of vascular plants. Unlike most gymnosperm and eudicot lignins that are generated via the polymerization of monolignols, grass lignins additionally incorporate the flavonoid tricin as a natural lignin monomer. The biosynthesis and functions of tricin-integrated lignin (tricin-lignin) in grass cell walls and its effects on the utility of grass biomass remain largely unknown. We herein report a comparative analysis of rice (Oryza sativa) mutants deficient in the early flavonoid biosynthetic genes encoding CHALCONE SYNTHASE (CHS), CHALCONE ISOMERASE (CHI), and CHI-LIKE (CHIL), with an emphasis on the analyses of disrupted tricin-lignin formation and the concurrent changes in lignin profiles and cell wall digestibility. All examined CHS-, CHI-, and CHIL-deficient rice mutants were largely depleted of extractable flavones, including tricin, and nearly devoid of tricin-lignin in the cell walls, supporting the crucial roles of CHS and CHI as committed enzymes and CHIL as a noncatalytic enhancer in the conserved biosynthetic pathway leading to flavone and tricin-lignin formation. In-depth cell wall structural analyses further indicated that lignin content and composition, including the monolignol-derived units, were differentially altered in the mutants. However, regardless of the extent of the lignin alterations, cell wall saccharification efficiencies of all tested rice mutants were similar to that of the wild-type controls. Together with earlier studies on other tricin-depleted grass mutant and transgenic plants, our results reflect the complexity in the metabolic consequences of tricin pathway perturbations and the relationships between lignin profiles and cell wall properties.

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