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Phenotypic plasticity in cell walls of maize brown midrib mutants is limited by lignin composition

机译:玉米褐中肋突变体细胞壁的表型可塑性受到木质素组成的限制

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摘要

The hydrophobic cell wall polymer lignin is deposited in specialized cells to make them impermeable to water and prevent cell collapse as negative pressure or gravitational force is exerted. The variation in lignin subunit composition that exists among different species, and among different tissues within the same species suggests that lignin subunit composition varies depending on its precise function. In order to gain a better understanding of the relationship between lignin subunit composition and the physico-chemical properties of lignified tissues, detailed analyses were performed of near-isogenic brown midrib2 (bm2), bm4, bm2-bm4, and bm1-bm2-bm4 mutants of maize. This investigation was motivated by the fact that the bm2-bm4 double mutant is substantially shorter, displays drought symptoms even when well watered, and will often not develop reproductive organs, whereas the phenotypes of the individual bm single mutants and double mutant combinations other than bm2-bm4 are only subtly different from the wild-type control. Detailed cell wall compositional analyses revealed midrib-specific reductions in Klason lignin content in the bm2, bm4, and bm2-bm4 mutants relative to the wild-type control, with reductions in both guaiacyl (G)- and syringyl (S)-residues. The cellulose content was not different, but the reduction in lignin content was compensated by an increase in hemicellulosic polysaccharides. Linear discriminant analysis performed on the compositional data indicated that the bm2 and bm4 mutations act independently of each other on common cell wall biosynthetic steps. After quantitative analysis of scanning electron micrographs of midrib sections, the variation in chemical composition of the cell walls was shown to be correlated with the thickness of the sclerenchyma cell walls, but not with xylem vessel surface area. The bm2-bm4 double mutant represents the limit of phenotypic plasticity in cell wall composition, as the bm1-bm2-bm4 and bm2-bm3-bm4 mutants did not develop into mature plants, unlike the triple mutants bm1-bm2-bm3 and bm1-bm3-bm4.
机译:疏水性细胞壁聚合物木质素沉积在专门的细胞中,使它们不透水,并防止细胞在施加负压或重力的情况下塌陷。存在于不同物种之间以及同一物种内不同组织之间的木质素亚基组成的变化表明,木质素亚基组成取决于其精确功能。为了更好地了解木质素亚基组成与木质化组织的理化性质之间的关系,对近等基因棕色midrib2(bm2),bm4,bm2-bm4和bm1-bm2-bm4进行了详细分析。玉米的突变体。这项研究的动机是,bm2-bm4双重突变体明显较短,即使浇水充足也表现出干旱症状,并且通常不会发育生殖器官,而单个bm单一突变体和bm2以外的双重突变体组合的表型。 -bm4与野生型控件只有细微的区别。详细的细胞壁成分分析显示,相对于野生型对照,bm2,bm4和bm2-bm4突变体中Klason木质素含量的中肋特异性降低,同时具有愈创木脂基(G)和丁香烯基(S)残基的降低。纤维素含量没有变化,但是木质素含量的减少被半纤维素多糖的增加所补偿。对成分数据进行的线性判别分析表明,bm2和bm4突变在共同的细胞壁生物合成步骤中彼此独立起作用。在对中肋切片的扫描电子显微镜照片进行定量分析后,显示细胞壁化学成分的变化与巩膜细胞壁的厚度相关,但与木质部血管表面积无关。 bm2-bm4双重突变体代表细胞壁组成的表型可塑性极限,因为bm1-bm2-bm4和 bm2 - bm3 - bm4 突变体没有发育为成熟植物,这与三重突变体 bm1-bm2-bm3 bm1-bm3-bm4 不同。

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