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Demethylesterification of the Primary Wall by PECTIN METHYLESTERASE35 Provides Mechanical Support to the Arabidopsis Stem

机译:PECTIN甲基酯酶35对初生壁的脱甲基酯化作用为拟南芥茎提供了机械支持

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摘要

Secondary cell walls, which contain lignin, have traditionally been considered essential for the mechanical strength of the shoot of land plants, whereas pectin, which is a characteristic component of the primary wall, is not considered to be involved in the mechanical support of the plant. Contradicting this conventional knowledge, loss-of-function mutant alleles of Arabidopsis thaliana PECTIN METHYLESTERASE35 (PME35), which encodes a pectin methylesterase, showed a pendant stem phenotype and an increased deformation rate of the stem, indicating that the mechanical strength of the stem was impaired by the mutation. PME35 was expressed specifically in the basal part of the inflorescence stem. Biochemical characterization showed that the activity of pectin methylesterase was significantly reduced in the basal part of the mutant stem. Immunofluorescence microscopy and immunogold electron microscopy analyses using JIM5, JIM7, and LM20 monoclonal antibodies revealed that demethylesterification of methylesterified homogalacturonans in the primary cell wall of the cortex and interfascicular fibers was suppressed in the mutant, but lignified cell walls in the interfascicular and xylary fibers were not affected. These phenotypic analyses indicate that PME35-mediated demethylesterification of the primary cell wall directly regulates the mechanical strength of the supporting tissue.
机译:传统上认为,包含木质素的次生细胞壁对于陆地植物枝条的机械强度必不可少,而作为主要壁的特征成分的果胶则不被认为与植物的机械支撑有关。 。与该常规知识相反,拟南芥PECTIN甲基酯酶35(PME35)的功能缺失突变等位基因编码果胶甲基酯酶,显示出侧茎表型和茎变形率增加,表明茎的机械强度为受突变影响。 PME35在花序茎的基部特异性表达。生化特征表明,果胶甲基酯酶的活性在突变茎的基部显着降低。使用JIM5,JIM7和LM20单克隆抗体进行的免疫荧光显微镜和免疫金电子显微镜分析表明,突变体可抑制皮质和束间纤维原代细胞壁中甲基化的同半乳糖醛酸的甲基酯化反应,但束状和纤维间木质化的细胞壁被抑制。不受影响。这些表型分析表明,PME35介导的原代细胞壁脱甲基酯化直接调节支持组织的机械强度。

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