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SDS-urea 琼脂糖聚丙酰胺复合凝胶电泳分离黏膜黏蛋白分析。

Analysis of mucosal mucins separated by SDS-urea agarose polyacrylamide composite gel electrophoresis.

机构信息

School of Chemistry, National University of Ireland, Galway, Ireland.

出版信息

Electrophoresis. 2011 Dec;32(24):3554-63. doi: 10.1002/elps.201100374. Epub 2011 Nov 24.

Abstract

Efficient separation of mucins (200 kDa-2 MDa) was demonstrated using gradient SDS agarose/polyacrylamide composite gel electrophoresis (SDS-AgPAGE). Inclusion of urea (SDS-UAgPAGE) in the gels casting were shown to have no effect on the migration of mucins in the gel and allowed casting of gel at room temperature. This simplified the procedure for multiple casting of agarose polyacrylamide gradients and increased reproducibility of these gels. Hence, the implementation of urea makes the technique applicable for high throughput isolation and screening of mucin oligosaccharides by LC-MS after releasing the oligosaccharides from isolated, blotted mucin subpopulations. It was also shown that the urea addition had no effect on other supporting applications such as western and lectin blotting. In addition, identification of the mucin protein after tryptic digestion and LC-MS was possible and no protein carbamylation due to the presence of urea in the gel was detected. LC-MS software developed for metabolomic analysis was used for O-linked oligosaccharide detection and differential display of various mucin samples. Using this method, heterogeneous glycosylation of mucins and mucin-type molecules isolated by SDS-AgPAGE and SDS-UAgPAGE was shown to consist of more than 80 different components in a single band, and in the extreme cases, up to 300-500 components (MUC5B/AC from saliva and sputum and). Metabolomic software was also used to show that the migration of mucin isoforms within the gel is due to heterogeneous size distribution of the oligosaccharides, with the slower migrating bands enriched in high-molecular-weight oligosaccharides.

摘要

使用 SDS-琼脂糖/聚丙烯酰胺复合凝胶电泳(SDS-AgPAGE)成功实现了对黏蛋白(200 kDa-2 MDa)的高效分离。结果表明,在凝胶铸型中加入尿素(SDS-UAgPAGE)不会影响黏蛋白在凝胶中的迁移,并且可以在室温下进行凝胶铸型。这简化了琼脂糖-聚丙烯酰胺梯度的多次铸型过程,提高了这些凝胶的重现性。因此,尿素的加入使该技术在通过 LC-MS 从分离、印迹的黏蛋白亚群中释放寡糖后,适用于高通量分离和筛选黏蛋白寡糖。此外,还表明尿素的加入对其他支持应用(如 Western 和凝集素印迹)没有影响。此外,在凝胶中存在尿素的情况下,对经胰蛋白酶消化和 LC-MS 鉴定后的黏蛋白进行鉴定,未发现蛋白质碳化现象。用于代谢组学分析的 LC-MS 软件用于检测 O-连接寡糖和各种黏蛋白样品的差异显示。使用该方法,通过 SDS-AgPAGE 和 SDS-UAgPAGE 分离的黏蛋白和黏蛋白样分子的不均一糖基化被证明由单一条带中的 80 多种不同成分组成,在极端情况下,多达 300-500 种成分(唾液和痰液中的 MUC5B/AC)。代谢组学软件还用于显示黏蛋白同工型在凝胶中的迁移是由于寡糖的异质大小分布,迁移较慢的条带富含高分子量寡糖。

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