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基于氢键的双功能智能聚合物高效同时富集磷酸肽和糖肽。

High-Efficiency Phosphopeptide and Glycopeptide Simultaneous Enrichment by Hydrogen Bond-based Bifunctional Smart Polymer.

机构信息

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, 122 Luoshi Road, Wuhan 430070, China.

Research & Development Center, Jushi Group. Co., Ltd, 669 Wenhua Road, Tongxiang 314500, China.

出版信息

Anal Chem. 2020 May 5;92(9):6269-6277. doi: 10.1021/acs.analchem.9b02643. Epub 2020 Apr 13.

DOI:10.1021/acs.analchem.9b02643
PMID:32233396
Abstract

Aberrant protein phosphorylation and glycosylation are closely associated with a number of diseases. In particular, an interplay between phosphorylation and glycosylation regulates the hyperphosphorylation of protein tau, which is regarded as one of the pathologic features of Alzheimer's disease (AD). However, simultaneous characterization of these two types of post-translational modifications (PTMs) in the complex biological samples is challenging. TiO and the immobilized ion affinity chromatography (IMAC)-based enrichment method suffers from low selectivity and/or low recovery of phosphopeptides and glycopeptides because of the inherent limitations in intermolecular interactions. Here, we introduce a hydrogen bond-based poly[(-isopropylacrylamide--4-(3-acryloylthioureido)benzoic acid] (referred to as PNI--ATBA) as a bifunctional enrichment platform to solve this bottleneck problem. Benefited from multiple hydrogen bonding interactions of ATBA with -acetylneuraminic acid (Neu5Ac) located at the terminals of sialylated glycans and from favorable conformational transition of the copolymer chains, the smart copolymer has high adsorption capacity (370 mg·g) and high recovery (ranging from 74.1% ± 7.0% to 106% ± 5.0% ( = 3)) of sialylated glycopeptides. The smart copolymer also has high selectivity (79%) for simultaneous enrichment of glycopeptides and phosphopeptides from 50 μg HeLa cell lysates, yielding 721 unique phosphorylation sites from 631 phosphopeptides and 125 unique glycosylation sites from 120 glycopeptides. This study will open a new avenue and provide a novel insight for the design of enrichment materials used in PTM-proteomics.

摘要

蛋白质的异常磷酸化和糖基化与许多疾病密切相关。特别是,磷酸化和糖基化之间的相互作用调节蛋白质 tau 的过度磷酸化,这被认为是阿尔茨海默病 (AD) 的病理特征之一。然而,在复杂的生物样品中同时描述这两种类型的翻译后修饰 (PTM) 具有挑战性。TiO 和基于固定化离子亲和层析 (IMAC) 的富集方法由于分子间相互作用的固有局限性,存在对磷酸肽和糖肽的选择性低和/或回收率低的问题。在这里,我们引入了基于氢键的聚[(-异丙基丙烯酰胺-4-(3-丙烯酰基硫脲基)苯甲酸)(简称 PNI-ATBA)]作为一种双功能富集平台来解决这个瓶颈问题。由于 ATBA 与位于唾液酸化聚糖末端的 N-乙酰神经氨酸 (Neu5Ac) 之间存在多个氢键相互作用,以及共聚物链的有利构象转变,智能共聚物具有高吸附容量 (370 mg·g) 和高回收率 (范围为 74.1%±7.0%至 106%±5.0% (=3)) 的唾液酸化糖肽。该智能共聚物还具有同时从 50 μg HeLa 细胞裂解物中富集糖肽和磷酸肽的高选择性 (79%),从 631 个磷酸肽中获得 721 个独特的磷酸化位点,从 120 个糖肽中获得 125 个独特的糖基化位点。这项研究将为 PTM 蛋白质组学中富集材料的设计开辟新的途径,并提供新的见解。

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