Joint BioEnergy Institute, Emeryville, CA, 94608, USA.
Biosciences Area, Lawrence Berkeley National Laboratory, Berkeley, CA, 94720, USA.
Plant J. 2018 Dec;96(5):1036-1050. doi: 10.1111/tpj.14088. Epub 2018 Oct 20.
Boron is a micronutrient that is required for the normal growth and development of vascular plants, but its precise functions remain a subject of debate. One established role for boron is in the cell wall where it forms a diester cross-link between two monomers of the low-abundance pectic polysaccharide rhamnogalacturonan-II (RG-II). The inability of RG-II to properly assemble into a dimer results in the formation of cell walls with abnormal biochemical and biomechanical properties and has a severe impact on plant productivity. Here we describe the effects on RG-II structure and cross-linking and on the growth of plants in which the expression of a GDP-sugar transporter (GONST3/GGLT1) has been reduced. In the GGLT1-silenced plants the amount of L-galactose in side-chain A of RG-II is reduced by up to 50%. This leads to a reduction in the extent of RG-II cross-linking in the cell walls as well as a reduction in the stability of the dimer in the presence of calcium chelators. The silenced plants have a dwarf phenotype, which is rescued by growth in the presence of increased amounts of boric acid. Similar to the mur1 mutant, which also disrupts RG-II cross-linking, GGLT1-silenced plants display a loss of cell wall integrity under salt stress. We conclude that GGLT1 is probably the primary Golgi GDP-L-galactose transporter, and provides GDP-L-galactose for RG-II biosynthesis. We propose that the L-galactose residue is critical for RG-II dimerization and for the stability of the borate cross-link.
硼是一种微量元素,对维管植物的正常生长和发育是必需的,但它的确切功能仍存在争议。硼的一个已确定的作用是在细胞壁中,它在低丰度果胶多糖鼠李半乳糖醛酸聚糖 II(RG-II)的两个单体之间形成二酯交联。RG-II 不能正确组装成二聚体,导致细胞壁具有异常的生化和生物力学特性,并对植物生产力产生严重影响。在这里,我们描述了 GDP-糖转运蛋白(GONST3/GGLT1)表达减少对 RG-II 结构和交联以及植物生长的影响。在 GGLT1 沉默的植物中,侧链 A 中 L-半乳糖的含量减少了高达 50%。这导致细胞壁中 RG-II 交联程度降低,以及在钙螯合剂存在下二聚体稳定性降低。沉默的植物表现出矮小的表型,在硼酸含量增加的情况下生长可以得到挽救。类似于同样破坏 RG-II 交联的 mur1 突变体,GGLT1 沉默的植物在盐胁迫下表现出细胞壁完整性丧失。我们得出结论,GGLT1 可能是高尔基体 GDP-L-半乳糖的主要转运蛋白,为 RG-II 生物合成提供 GDP-L-半乳糖。我们提出 L-半乳糖残基对于 RG-II 二聚化和硼酸盐交联的稳定性是至关重要的。