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Plant Golgi cell wall synthesis: From genes to enzyme activities

机译:植物高尔基体细胞壁合成:从基因到酶的活性

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The cell wall provides mechanical support to the plant cells, and the surface wall, which is directly exposed to the extracellular environment, acts as a primary barrier against pathogen attack, mechanical injury, and other environmental stresses. Biophysical properties of the wall in conjunction with the cell turgor pressure determine the rate of cell expansion during primary growth. Polysaccharides, the most dominant fraction of the wall, consist of cellulose microfibrils that are embedded in a matrix of hemicellulose and pectin. Matrix polysaccharides in plants are made in the Golgi cisternae and then exported to the wall by exocytosis. Cellulose is made at the plasma membrane by a cellulose synthase complex and directly deposited into the cell wall. Whereas the wall chemical composition has been well characterized and many of the enzyme activities for polysaccharide synthases have been biochemically assayed, true to its name, the cell wall proved impregnable to the molecular understanding of its synthesis until relatively recently. In this issue of PNAS, Liepman et al. (7) present their work on overcoming this barrier by functionally expressing several of the plant genes encoding a wall matrix polysaccharide synthase in a non-plant eukaryotic host, cultured Drosophila cells.
机译:细胞壁为植物细胞提供机械支撑,而直接暴露于细胞外环境的表面壁则是抵御病原体侵袭,机械损伤和其他环境压力的主要屏障。壁的生物物理特性与细胞膨胀压力一起决定了原始生长过程中细胞的膨胀速率。多糖是壁中最主要的部分,由嵌入在半纤维素和果胶基质中的纤维素微纤维组成。植物中的基质多糖在高尔基水箱中制成,然后通过胞吐作用输出到壁中。纤维素是由纤维素合酶复合物在质膜上制成的,并直接沉积到细胞壁中。尽管其壁化学组成已得到很好的表征,并且多糖生物合成酶的许多酶活性已通过生物化学方法进行了测定,但实际上直到最近才证明细胞壁对于其合成的分子理解是不可渗透的。在本期PNAS中,Liepman等人。 (7)通过在非植物真核宿主培养的果蝇细胞中功能性表达编码壁基质多糖合酶的几种植物基因,提出了克服这一障碍的工作。

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