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在轮藻中寻找陆生植物阿拉伯半乳聚糖蛋白的进化根源: 螺旋藻(接合藻纲)中存在鼠李半乳糖蛋白。

Search for evolutionary roots of land plant arabinogalactan-proteins in charophytes: presence of a rhamnogalactan-protein in Spirogyra pratensis (Zygnematophyceae).

机构信息

Department of Pharmaceutical Biology, Pharmaceutical Institute, Christian-Albrechts-University of Kiel, Kiel, 24118, Germany.

Department of Botany, Functional Plant Biology, University of Innsbruck, Innsbruck, 6020, Austria.

出版信息

Plant J. 2022 Feb;109(3):568-584. doi: 10.1111/tpj.15577. Epub 2021 Nov 26.

DOI:10.1111/tpj.15577
PMID:34767672
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7612518/
Abstract

Charophyte green algae (CGA) are assigned to be the closest relatives of land plants and therefore enlighten processes in the colonization of terrestrial habitats. For the transition from water to land, plants needed significant physiological and structural changes, as well as with regard to cell wall composition. Sequential extraction of cell walls of Nitellopsis obtusa (Charophyceae) and Spirogyra pratensis (Zygnematophyceae) offered a comparative overview on cell wall composition of late branching CGA. Because arabinogalactan-proteins (AGPs) are considered common for all land plant cell walls, we were interested in whether these special glycoproteins are present in CGA. Therefore, we investigated both species with regard to characteristic features of AGPs. In the cell wall of Nitellopsis, no hydroxyproline was present and no AGP was precipitable with the β-glucosyl Yariv's reagent (βGlcY). By contrast, βGlcY precipitation of the water-soluble cell wall fraction of Spirogyra yielded a glycoprotein fraction rich in hydroxyproline, indicating the presence of AGPs. Putative AGPs in the cell walls of non-conjugating Spirogyra filaments, especially in the area of transverse walls, were detected by staining with βGlcY. Labelling increased strongly in generative growth stages, especially during zygospore development. Investigations of the fine structure of the glycan part of βGlcY-precipitated molecules revealed that the galactan backbone resembled that of AGPs with 1,3- 1,6- and 1,3,6-linked Galp moieties. Araf was present only in small amounts and the terminating sugars consisted predominantly of pyranosidic terminal and 1,3-linked rhamnose residues. We introduce the term 'rhamnogalactan-protein' for this special AGP-modification present in S. pratensis.

摘要

轮藻绿藻(CGA)被认为是陆地植物的近亲,因此启发了陆地栖息地的殖民过程。对于从水到陆地的过渡,植物需要显著的生理和结构变化,以及细胞壁组成方面的变化。对 Nitellopsis obtusa(Charophyceae)和 Spirogyra pratensis(Zygnematophyceae)细胞壁的连续提取为晚期分支 CGA 的细胞壁组成提供了一个比较性的概述。由于阿拉伯半乳聚糖蛋白(AGPs)被认为是所有陆地植物细胞壁的共同特征,我们想知道这些特殊的糖蛋白是否存在于 CGA 中。因此,我们研究了这两个物种的 AGP 特征。在 Nitellopsis 的细胞壁中,没有羟脯氨酸,也没有用β-葡萄糖基 Yariv 试剂(βGlcY)沉淀的 AGP。相比之下,用βGlcY 沉淀 Spirogyra 的水溶性细胞壁部分得到了富含羟脯氨酸的糖蛋白部分,表明存在 AGP。非共轭 Spirogyra 丝状细胞壁中的推定 AGP,特别是在横壁区域,用βGlcY 染色检测到。在有性生殖生长阶段,尤其是在合子孢子发育期间,标记显著增加。用βGlcY 沉淀的分子的聚糖部分的精细结构研究表明,半乳糖醛酸主链类似于具有 1,3-1,6-和 1,3,6 连接的 Galp 部分的 AGP。阿拉伯糖仅以少量存在,并且末端糖主要由吡喃糖末端和 1,3 连接的鼠李糖残基组成。我们为这种特殊的 AGP 修饰提出了“阿拉伯半乳糖蛋白”的术语,该修饰存在于 S. pratensis 中。

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