Department of Chemistry, University of Texas, Austin, Texas 78712 United States.
Department of Chemistry and Biochemistry, Florida International University, Miami, Florida 33199, United States.
J Am Soc Mass Spectrom. 2022 Jul 6;33(7):1092-1102. doi: 10.1021/jasms.2c00083. Epub 2022 Jun 10.
Although it is widely accepted that protein function is largely dependent on its structure, intrinsically disordered proteins (IDPs) lack defined structure but are essential in proper cellular processes. Mammalian high mobility group proteins (HMGA) are one such example of IDPs that perform a number of crucial nuclear activities and have been highly studied due to their involvement in the proliferation of a variety of disease and cancers. Traditional structural characterization methods have had limited success in understanding HMGA proteins and their ability to coordinate to DNA. Ion mobility spectrometry and mass spectrometry provide insights into the diversity and heterogeneity of structures adopted by IDPs and are employed here to interrogate HMGA2 in its unbound states and bound to two DNA hairpins. The broad distribution of collision cross sections observed for the apo-protein are restricted when HMGA2 is bound to DNA, suggesting that increased protein organization is promoted in the holo-form. Ultraviolet photodissociation was utilized to probe the changes in structures for the compact and elongated structures of HMGA2 by analyzing backbone cleavage propensities and solvent accessibility based on charge-site analysis, which revealed a spectrum of conformational possibilities. Namely, preferential binding of the DNA hairpins with the second of three AT-hooks of HMGA2 is suggested based on the suppression of backbone fragmentation and distribution of DNA-containing protein fragments.
虽然人们普遍认为蛋白质的功能在很大程度上取决于其结构,但无规卷曲蛋白质(IDPs)缺乏明确的结构,但在适当的细胞过程中是必不可少的。哺乳动物的高迁移率族蛋白(HMGA)就是这样一种 IDP,它具有许多关键的核活性,并且由于其参与多种疾病和癌症的增殖而受到高度研究。传统的结构特征化方法在理解 HMGA 蛋白及其与 DNA 协调的能力方面取得的成功有限。离子淌度谱和质谱技术为研究 IDPs 所采用的结构多样性和异质性提供了深入的了解,并在这里用于研究未结合状态下的 HMGA2 以及与两个 DNA 发夹结合的 HMGA2。当 HMGA2 与 DNA 结合时,观察到的无规卷曲蛋白的碰撞截面的广泛分布受到限制,这表明在全酶形式中促进了蛋白质的组织化增加。利用紫外线光解技术通过基于电荷位点分析的分析骨架断裂倾向和溶剂可及性来探测 HMGA2 的紧凑和伸长结构的结构变化,这揭示了一系列构象可能性。具体而言,根据含 DNA 的蛋白质片段的分布和骨架片段化的抑制,建议 DNA 发夹优先与 HMGA2 的三个 AT 钩中的第二个结合。