Department of Chemistry, Michigan State University, 578 S Shaw Ln, East Lansing, Michigan 48824, United States.
Anal Chem. 2020 Dec 15;92(24):15890-15898. doi: 10.1021/acs.analchem.0c03266. Epub 2020 Dec 2.
Top-down proteomics (TDP) aims to delineate proteomes in a proteoform-specific manner, which is vital for accurately understanding protein function in cellular processes. It requires high-capacity separation of proteoforms before mass spectrometry (MS) and tandem MS (MS/MS). Capillary isoelectric focusing (cIEF)-MS has been recognized as a useful tool for TDP in the 1990s because cIEF is capable of high-resolution separation of proteoforms. Previous cIEF-MS studies concentrated on measuring the protein's mass without MS/MS, impeding the confident proteoform identification in complex samples and the accurate localization of post-translational modifications on proteoforms. Herein, for the first time, we present automated cIEF-MS/MS-based TDP for large-scale delineation of proteoforms in complex proteomes. Single-shot cIEF-MS/MS identified 711 proteoforms from an () proteome consuming only nanograms of proteins. Coupling two-dimensional size-exclusion chromatography (SEC)-cIEF to ESI-MS/MS enabled the identification of nearly 2000 proteoforms from the proteome. Label-free quantitative TDP of zebrafish male and female brains using SEC-cIEF-MS/MS quantified thousands of proteoforms and revealed sex-dependent proteoform profiles in brains. Particularly, we discovered several proteolytic proteoforms of pro-opiomelanocortin and prodynorphin with significantly higher abundance in male zebrafish brains as potential endogenous hormone proteoforms. Multilevel quantitative proteomics (TDP and bottom-up proteomics) of the brains revealed that the majority of proteoforms having statistically significant difference in abundance between genders showed no abundance difference at the protein group level. This work represents the first multilevel quantitative proteomics study of sexual dimorphism of the brain.
自上而下的蛋白质组学(TDP)旨在以特定于蛋白质形式的方式描绘蛋白质组,这对于准确理解蛋白质在细胞过程中的功能至关重要。它需要在质谱(MS)和串联 MS(MS/MS)之前对蛋白质形式进行高容量分离。毛细管等电聚焦(cIEF)-MS 自 20 世纪 90 年代以来已被认为是 TDP 的有用工具,因为 cIEF 能够对蛋白质形式进行高分辨率分离。以前的 cIEF-MS 研究集中在测量蛋白质的质量而不进行 MS/MS,这阻碍了在复杂样品中对蛋白质形式进行有信心的鉴定,也阻碍了对蛋白质形式上的翻译后修饰的准确定位。在这里,我们首次提出了基于自动化 cIEF-MS/MS 的 TDP,用于大规模描绘复杂蛋白质组中的蛋白质形式。单次 cIEF-MS/MS 仅消耗纳克蛋白质即可从 () 蛋白质组中鉴定出 711 种蛋白质形式。将二维尺寸排阻色谱(SEC)-cIEF 与 ESI-MS/MS 耦合,可从 蛋白质组中鉴定出近 2000 种蛋白质形式。使用 SEC-cIEF-MS/MS 对斑马鱼雄性和雌性大脑进行无标记定量 TDP 定量了数千种蛋白质形式,并揭示了大脑中性别依赖的蛋白质形式谱。特别是,我们发现了几种前阿黑皮素原和前强啡肽的蛋白水解蛋白质形式,其在雄性斑马鱼大脑中的丰度明显更高,可能是内源性激素蛋白质形式。大脑的多层次定量蛋白质组学(TDP 和自下而上的蛋白质组学)表明,在两性之间丰度存在统计学差异的大多数蛋白质形式在蛋白质组水平上没有丰度差异。这项工作代表了大脑性别二态性的第一个多层次定量蛋白质组学研究。