Laboratory of Developmental Neurobiology, National Heart, Lung, and Blood Institute, National Institutes of Health, Bethesda, MD, United States of America.
Faculty of Pharmaceutical Sciences, Tokyo University of Science, Noda City, Chiba, Japan.
PLoS One. 2022 Jun 28;17(6):e0269972. doi: 10.1371/journal.pone.0269972. eCollection 2022.
Proteoglycan glycosaminoglycan (GAG) chains are attached to a serine residue in the protein through a linkage series of sugars, the first of which is xylose. Xylosides are chemicals which compete with the xylose at the enzyme xylosyl transferase to prevent the attachment of GAG chains to proteins. These compounds have been employed at concentrations in the millimolar range as tools to study the role of GAG chains in proteoglycan function. In the course of our studies with xylosides, we conducted a dose-response curve for xyloside actions on neural cells. To our surprise, we found that concentrations of xylosides in the nanomolar to micromolar range had major effects on cell morphology of hippocampal neurons as well as of Neuro2a cells, affecting both actin and tubulin cytoskeletal dynamics. Such effects/morphological changes were not observed with higher xyloside concentrations. We found a dose-dependent alteration of GAG secretion by Neuro2a cells; however, concentrations of xylosides which were effective in altering neuronal morphology did not cause a large change in the rate of GAG chain secretion. In contrast, both low and high concentrations of xylosides altered HS and CS composition. RNAseq of treated cells demonstrated alterations in gene expression only after treatment with millimolar concentration of xylosides that had no effect on cell morphology. These observations support a novel action of xylosides on neuronal cells.
蛋白聚糖糖胺聚糖 (GAG) 链通过糖的连接系列连接到蛋白质中的丝氨酸残基上,第一个糖是木糖。木糖苷是一种化学物质,可与木糖竞争,从而阻止 GAG 链与蛋白质结合。这些化合物已在毫摩尔范围内的浓度下用作研究 GAG 链在蛋白聚糖功能中的作用的工具。在我们对木糖苷的研究过程中,我们对木糖苷对神经细胞的作用进行了剂量反应曲线研究。令我们惊讶的是,我们发现纳米摩尔至微摩尔范围内的木糖苷浓度对海马神经元和 Neuro2a 细胞的细胞形态有很大影响,影响肌动蛋白和微管细胞骨架动力学。在较高的木糖苷浓度下未观察到这种影响/形态变化。我们发现 Neuro2a 细胞的 GAG 分泌呈剂量依赖性改变;然而,改变神经元形态的木糖苷浓度并没有使 GAG 链分泌率发生很大变化。相反,低浓度和高浓度的木糖苷都改变了 HS 和 CS 的组成。用木糖苷处理的细胞的 RNAseq 显示,只有在用对细胞形态没有影响的毫摩尔浓度的木糖苷处理后,基因表达才会发生改变。这些观察结果支持木糖苷对神经元细胞的新作用。