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表面引发原子转移自由基聚合:获得三维波浪状聚合物结构修饰的毛细管柱,用于在线磷酸肽富集。

Surface initiated atom transfer radical polymerization: access to three dimensional wavelike polymer structure modified capillary columns for online phosphopeptide enrichment.

机构信息

State Key Laboratory of Proteomics, Beijing Proteome Research Center, Beijing Institute of Radiation Medicine, No. 33 Life Science Park Road, Changping District, Beijing 102206, PR China.

出版信息

Anal Chem. 2010 Nov 15;82(22):9461-8. doi: 10.1021/ac1021437. Epub 2010 Oct 28.

Abstract

Reversible phosphorylation is one of the most important post-translational modifications of proteins and a key regulator of cellular signaling pathways. Specific enrichment of phosphopeptides from proteolytic digests is a prerequisite for large scale identification of protein phosphorylation by mass spectrometry. Online enrichment of phosphopeptides attracts particular interests due to its automated operation, higher throughput and reproducibility, lower sample loss, and contamination. Here, we report a new type of capillary column developed using surface initiated atom transfer radical polymerization (SI-ATRP) for automated online phosphopeptide enrichment. SI-ATRP modification leads to a surface confined growth of three-dimensional wavelike polymer structure on the inner wall of capillary columns and, therefore, results in largely increased surface area. Furthermore, the noncross-linked flexible polymer chains grown by SI-ATRP create a large internal volume that allows phosphopeptides to penetrate into during enrichment and also facilitate the interaction between the numerous functional groups in the polymer chains and target phosphopeptides. Therefore, highly efficient and specific enrichment is achieved even for a low femtomole of phosphopeptides. The loading capacity is increased more than an order of magnitude compared with that obtained using conventional open tubular capillary columns. The SI-ATRP modified capillary column was successful applied in the online phosphoproteomics analysis of HepG2 cell lysate and resulted in 10 times improved phosphopeptide identification than the previously reported number. Finally, the SI-ATRP technique is compatible with a variety of functional monomers, and therefore, versatile potential applications in reverse phase, ion exchange, and affinity chromatography can be expected.

摘要

可逆磷酸化是蛋白质翻译后修饰的最重要方式之一,也是细胞信号通路的关键调节因素。通过质谱大规模鉴定蛋白质磷酸化,需要从蛋白水解物中特异性富集磷酸肽。在线富集磷酸肽因其自动化操作、高通量、可重复性、低样品损失和低污染而备受关注。本研究报告了一种使用表面引发原子转移自由基聚合(SI-ATRP)开发的新型毛细管柱,用于自动化在线磷酸肽富集。SI-ATRP 修饰导致在毛细管柱内壁上形成受限在表面的三维波浪形聚合物结构,从而大大增加了表面积。此外,通过 SI-ATRP 生长的非交联柔性聚合物链可形成大的内部体积,使磷酸肽在富集过程中能够渗透其中,并促进聚合物链中的众多功能基团与目标磷酸肽之间的相互作用。因此,即使是低飞摩尔的磷酸肽也能实现高效和特异性的富集。与传统开管毛细管柱相比,其负载量增加了一个数量级以上。SI-ATRP 修饰的毛细管柱成功应用于 HepG2 细胞裂解物的在线磷酸蛋白质组学分析,比之前报道的数量提高了 10 倍。最后,SI-ATRP 技术与多种功能单体兼容,因此有望在反相、离子交换和亲和层析中具有多种潜在应用。

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