Bioanalytische Chemie, TU Dresden, 01062 Dresden, Germany.
Carbohydr Res. 2013 Jan 10;365:52-60. doi: 10.1016/j.carres.2012.11.001. Epub 2012 Nov 10.
Diatoms-unicellular algae with silicified cell walls-have become model organisms for investigations of biomineralization processes. Numerous studies suggest the importance of biosilica-associated or even embedded biomolecules for the biosilica formation. Such molecules are peptides, polyamines, and even saccharides. However, the role of the latter class of biomolecules is only poorly understood yet. Therefore, we investigated the saccharide composition of the biosilica-associated organic material of the diatom Stephanopyxis turris. This species exhibits a considerably high saccharide content in its siliceous cell walls. Gas chromatography-mass spectrometry analysis revealed that mannose-6-phosphate is strongly associated to the cell walls. This phosphorylated saccharide has not yet been found in diatom biosilica. In vitro studies on the polyallylamine-induced silica precipitation were carried out in the presence of mannose-6-phosphate. Compared to inorganic phosphate, mannose-6-phosphate significantly influenced the precipitation behavior of this model system suggesting a possible contribution of mannose-6-phosphate to the biomineralization process of Stephanopyxis turris.
硅藻——具有硅化细胞壁的单细胞藻类——已成为生物矿化过程研究的模式生物。许多研究表明,与生物硅相关甚至嵌入生物硅的生物分子对生物硅的形成很重要。这些分子是肽、多胺,甚至是糖。然而,这类生物分子的作用还知之甚少。因此,我们研究了硅藻塔形星杆藻生物硅相关有机物质中的糖组成。该物种的硅细胞壁中含有相当高的糖含量。气相色谱-质谱分析表明,6-磷酸甘露糖与细胞壁强烈相关。这种磷酸化的糖尚未在硅藻生物硅中发现。在多聚烯丙胺诱导的硅沉淀的体外研究中,在 6-磷酸甘露糖存在的情况下进行。与无机磷酸盐相比,6-磷酸甘露糖显著影响了该模型系统的沉淀行为,这表明 6-磷酸甘露糖可能对塔形星杆藻的生物矿化过程有贡献。