Department of Biochemistry and Molecular Biophysics, Perelman School of Medicine, University of Pennsylvania, Philadelphia 19104, USA; Epigenetics Institute, University of Pennsylvania, Philadelphia 19104, USA.
Department of Biochemistry and Molecular Biophysics, Perelman School of Medicine, University of Pennsylvania, Philadelphia 19104, USA.
Structure. 2018 Dec 4;26(12):1651-1663.e3. doi: 10.1016/j.str.2018.08.006. Epub 2018 Oct 4.
Until recently, a major limitation of hydrogen-deuterium exchange mass spectrometry (HDX-MS) was that resolution of deuterium localization was limited to the length of the peptide generated during proteolysis. However, electron transfer dissociation (ETD) has been shown to preserve deuterium label in the gas phase, enabling better resolution. To date, this technology remains mostly limited to small, already well-characterized proteins. Here, we optimize, expand, and adapt HDX-MS tandem MS (MS/MS) capabilities to accommodate histone and nucleosomal complexes on top-down HDX-MS/MS and middle-down HDX-MS/MS platforms and demonstrate that near site-specific resolution of deuterium localization can be obtained with high reproducibility. We are able to study histone tail dynamics in unprecedented detail, which have evaded analysis by traditional structural biology techniques for decades, revealing important insights into chromatin biology. Together, the results of these studies highlight the versatility, reliability, and reproducibility of ETD-based HDX-MS/MS methodology to interrogate large protein and protein/DNA complexes.
直到最近,氢氘交换质谱(HDX-MS)的一个主要局限是,氘定位的分辨率仅限于蛋白酶解过程中生成的肽的长度。然而,电子转移解离(ETD)已被证明可以在气相中保留氘标记,从而实现更好的分辨率。迄今为止,这项技术仍然主要局限于已经研究得很好的小而简单的蛋白质。在这里,我们优化、扩展和改编了 HDX-MS 串联质谱(MS/MS)的能力,以适应组蛋白和核小体复合物在自上而下的 HDX-MS/MS 和中到下的 HDX-MS/MS 平台上的分析,并证明可以获得具有高重复性的几乎特定于位点的氘定位分辨率。我们能够以前所未有的细节研究组蛋白尾部的动力学,这几十年来一直逃避传统的结构生物学技术的分析,揭示了染色质生物学的重要见解。总之,这些研究的结果突出了基于 ETD 的 HDX-MS/MS 方法在研究大蛋白和蛋白/DNA 复合物方面的多功能性、可靠性和可重复性。