Department of Chemistry, University of Texas at Austin, Austin, Texas 78712, United States.
Chemical and Biomolecular Engineering, Rice University, Houston, Texas 77005, United States.
Anal Chem. 2022 Aug 16;94(32):11175-11184. doi: 10.1021/acs.analchem.2c01433. Epub 2022 Aug 5.
With the rapid acceleration in the design and development of new biotherapeutics, ensuring consistent quality and understanding degradation pathways remain paramount, requiring an array of analytical methods including mass spectrometry. The incorporation of non-canonical amino acids, such as for synthetic selenoproteins, creates additional challenges. A comprehensive strategy to characterize selenoproteins should serve dual purposes of providing sequence confirmation and mapping of selenocysteine bridge locations and the identification of unanticipated side products. In the present study, a combined approach exploiting the benefits of both top-down and bottom-up mass spectrometry was developed. Both electron-transfer/higher-energy collision dissociation and 213 nm ultraviolet photodissociation were utilized to provide complementary information, allowing high quality characterization, localization of diselenide bridges for complex proteins, and the identification of previously unreported selenoprotein dimers.
随着新型生物疗法的设计和开发迅速加速,确保一致的质量和了解降解途径仍然至关重要,这需要一系列分析方法,包括质谱法。非典型氨基酸的引入,如用于合成硒蛋白,会带来额外的挑战。全面的硒蛋白表征策略应具有双重目的,即提供序列确认和硒半胱氨酸桥位置的映射,并识别意外的副产物。在本研究中,开发了一种结合使用自上而下和自下而上质谱的综合方法。电子转移/更高能量碰撞解离和 213nm 紫外线光解离都被用来提供互补信息,从而能够对复杂蛋白质进行高质量的表征、硒二硫键的定位,以及鉴定以前未报道的硒蛋白二聚体。