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在由缺乏L-岩藻糖的mur1拟南芥突变体合成的果胶多糖鼠李半乳糖醛酸聚糖II中,L-半乳糖取代了L-岩藻糖。

l-Galactose replaces l-fucose in the pectic polysaccharide rhamnogalacturonan II synthesized by the l-fucose-deficient mur1 Arabidopsis mutant.

作者信息

Reuhs Bradley L, Glenn Joshua, Stephens Samuel B, Kim John S, Christie D Benjamin, Glushka John G, Zablackis Earl, Albersheim Peter, Darvill Alan G, O'Neill Malcolm A

机构信息

Complex Carbohydrate Research Center and Department of Biochemistry and Molecular Biology, The University of Georgia, 315 Riverbend Road, GA 30602-4712, Athens, USA.

出版信息

Planta. 2004 May;219(1):147-57. doi: 10.1007/s00425-004-1205-x. Epub 2004 Feb 26.

Abstract

Arabidopsis thaliana mur1 is a dwarf mutant with altered cell-wall properties, in which l-fucose is partially replaced by l-galactose in the xyloglucan and glycoproteins. We found that the mur1 mutation also affects the primary structure of the pectic polysaccharide rhamnogalacturonan II (RG-II). In mur1 RG-II a non-reducing terminal 2- O-methyl l-galactosyl residue and a 3,4-linked l-galactosyl residue replace the non-reducing terminal 2- O-methyl l-fucosyl residue and the 3,4-linked l-fucosyl residue, respectively, that are present in wild-type RG-II. Furthermore, we found that a terminal non-reducing l-galactosyl residue, rather than the previously reported d-galactosyl residue, is present on the 2- O-methyl xylose-containing side chain of RG-II in both wild type and mur1 plants. Approximately 95% of the RG-II from wild type and mur1 plants is solubilized as a high-molecular-weight (>100 kDa) complex, by treating walls with aqueous potassium phosphate. The molecular mass of RG-II in this complex was reduced to 5-10 kDa by treatment with endopolygalacturonase, providing additional evidence that RG-II is covalently linked to homogalacturonan. The results of this study provide additional information on the structure of RG-II and the role of this pectic polysaccharide in the plant cell wall.

摘要

拟南芥mur1是一种细胞壁特性改变的矮化突变体,在其木葡聚糖和糖蛋白中,L-岩藻糖部分被L-半乳糖取代。我们发现mur1突变也会影响果胶多糖鼠李半乳糖醛酸聚糖II(RG-II)的一级结构。在mur1的RG-II中,一个非还原末端的2-O-甲基-L-半乳糖基残基和一个3,4-连接的L-半乳糖基残基分别取代了野生型RG-II中存在的非还原末端的2-O-甲基-L-岩藻糖基残基和3,4-连接的L-岩藻糖基残基。此外,我们发现,在野生型和mur1植株中,RG-II含2-O-甲基木糖的侧链上存在的是一个末端非还原L-半乳糖基残基,而非先前报道的D-半乳糖基残基。通过用磷酸钾水溶液处理细胞壁,野生型和mur1植株中约95%的RG-II以高分子量(>100 kDa)复合物的形式溶解。用内切多聚半乳糖醛酸酶处理后,该复合物中RG-II的分子量降至5-10 kDa,这进一步证明RG-II与同型半乳糖醛酸共价连接。本研究结果为RG-II的结构以及这种果胶多糖在植物细胞壁中的作用提供了更多信息。

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