Saez-Aguayo Susana, Rautengarten Carsten, Temple Henry, Sanhueza Dayan, Ejsmentewicz Troy, Sandoval-Ibañez Omar, Doñas Daniela, Parra-Rojas Juan Pablo, Ebert Berit, Lehner Arnaud, Mollet Jean-Claude, Dupree Paul, Scheller Henrik V, Heazlewood Joshua L, Reyes Francisca C, Orellana Ariel
Centro de Biotecnología Vegetal, FONDAP Center for Genome Regulation, Facultad de Ciencias Biológicas, Universidad Andrés Bello, Santiago, Chile.
ARC Centre of Excellence in Plant Cell Walls, School of BioSciences, The University of Melbourne, Victoria 3010, Australia.
Plant Cell. 2017 Jan;29(1):129-143. doi: 10.1105/tpc.16.00465. Epub 2017 Jan 6.
UDP-glucuronic acid (UDP-GlcA) is the precursor of many plant cell wall polysaccharides and is required for production of seed mucilage. Following synthesis in the cytosol, it is transported into the lumen of the Golgi apparatus, where it is converted to UDP-galacturonic acid (UDP-GalA), UDP-arabinose, and UDP-xylose. To identify the Golgi-localized UDP-GlcA transporter, we screened mutants in genes coding for putative nucleotide sugar transporters for altered seed mucilage, a structure rich in the GalA-containing polysaccharide rhamnogalacturonan I. As a result, we identified , which encodes a Golgi-localized protein that transports UDP-GlcA and UDP-GalA in vitro. The seed coat of mutants had less GalA, rhamnose, and xylose in the soluble mucilage, and the distal cell walls had decreased arabinan content. Cell walls of other organs and cells had lower arabinose levels in roots and pollen tubes, but no differences were observed in GalA or xylose contents. Furthermore, the GlcA content of glucuronoxylan in the stem was not affected in the mutant. Interestingly, the degree of homogalacturonan methylation increased in These results suggest that this UDP-GlcA transporter plays a key role defining the seed mucilage sugar composition and that its absence produces pleiotropic effects in this component of the plant extracellular matrix.
尿苷二磷酸葡萄糖醛酸(UDP-GlcA)是许多植物细胞壁多糖的前体,也是种子黏液产生所必需的。在细胞质溶胶中合成后,它被转运到高尔基体腔中,在那里它被转化为尿苷二磷酸半乳糖醛酸(UDP-GalA)、尿苷二磷酸阿拉伯糖和尿苷二磷酸木糖。为了鉴定高尔基体定位的UDP-GlcA转运蛋白,我们筛选了编码假定核苷酸糖转运蛋白的基因突变体,以寻找种子黏液的变化,种子黏液是一种富含含半乳糖醛酸多糖鼠李糖半乳糖醛酸聚糖I的结构。结果,我们鉴定出了[具体基因名称],它编码一种高尔基体定位的蛋白,该蛋白在体外能转运UDP-GlcA和UDP-GalA。[突变体名称]突变体的种皮可溶性黏液中半乳糖醛酸、鼠李糖和木糖含量较低,远端细胞壁阿拉伯聚糖含量降低。其他器官和细胞的细胞壁在根和花粉管中的阿拉伯糖水平较低,但在半乳糖醛酸或木糖含量上未观察到差异。此外,突变体茎中葡糖醛酸木聚糖的葡糖醛酸含量不受影响。有趣的是,[突变体名称]中同型半乳糖醛酸的甲基化程度增加。这些结果表明,这种UDP-GlcA转运蛋白在决定种子黏液糖组成方面起关键作用,并且其缺失会在植物细胞外基质的这一组成部分中产生多效性效应。