Qiu Wen, Evans Caroline A, Landels Andrew, Pham Trong Khoa, Wright Phillip C
State Key Laboratory of Rice Biology and Ministry of Agriculture Key Laboratory of Molecular Biology of Crop Pathogens and Insects, Institute of Biotechnology, Zhejiang University, 310058, Hangzhou, China.
ChELSI Institute, Department of Chemical and Biological Engineering, The University of Sheffield, Mappin Street, Sheffield, S1 3JD, United Kingdom.
Anal Chim Acta. 2020 Sep 8;1129:158-180. doi: 10.1016/j.aca.2020.04.053. Epub 2020 Apr 28.
Significant technical advancements in phosphopeptide enrichment have enabled the identification of thousands of p-peptides (mono and multiply phosphorylated) in a single experiment. However, it is still not possible to enrich all p-peptide species in a single step. A range of new techniques and materials has been developed, with the potential to provide a step-change in phosphopeptide enrichment. The first half of this review contains a tutorial for new potential phosphoproteomic researchers; discussing the key steps of a typical phosphoproteomic experiment used to investigate canonical phosphorylation sites (serine, threonine and tyrosine). The latter half then show-cases the latest developments in p-peptide enrichment including: i) Strategies to mitigate non-specific binding in immobilized metal ion affinity chromatography and metal oxide affinity chromatography protocols; ii) Techniques to separate multiply phosphorylated peptides from monophosphorylated peptides (including canonical from non-canonical phosphorylated peptides), or to simultaneously co-enrich other post-translational modifications; iii) New hybrid materials and methods directed towards enhanced selectivity and efficiency of metal-based enrichment; iv) Novel materials that hold promise for enhanced phosphotyrosine enrichment. A combination of well-understood techniques and materials is much more effective than any technique in isolation; but the field of phosphoproteomics currently requires benchmarking of novel materials against current methodologies to fully evaluate their utility in peptide based proteoform analysis.
磷酸肽富集技术取得的重大进展,使得在一次实验中能够鉴定出数千种磷酸肽(单磷酸化和多磷酸化)。然而,目前仍无法在一步操作中富集所有的磷酸肽种类。一系列新技术和新材料已经被开发出来,有望在磷酸肽富集方面带来重大突破。本综述的前半部分为潜在的新蛋白质组学研究人员提供了一个教程,讨论了用于研究经典磷酸化位点(丝氨酸、苏氨酸和酪氨酸)的典型蛋白质组学实验的关键步骤。后半部分则展示了磷酸肽富集的最新进展,包括:i)在固定化金属离子亲和色谱和金属氧化物亲和色谱方案中减轻非特异性结合的策略;ii)从单磷酸化肽中分离多磷酸化肽(包括经典磷酸化肽与非经典磷酸化肽),或同时共富集其他翻译后修饰的技术;iii)旨在提高基于金属的富集选择性和效率的新型混合材料和方法;iv)有望增强磷酸酪氨酸富集的新型材料。将已熟知的技术和材料结合起来,比任何单独的技术都更有效;但目前蛋白质组学领域需要将新型材料与现有方法进行基准测试,以全面评估它们在基于肽的蛋白质异构体分析中的效用。