Department of Chemistry and Biochemistry, University of California, Santa Barbara, CA, United States.
Department of Biochemistry, Duke University, Durham, NC, United States.
Methods Enzymol. 2022;662:119-141. doi: 10.1016/bs.mie.2021.10.014. Epub 2021 Dec 7.
Cysteine thiyl radicals are implicated as cofactors in a variety of enzymatic transformations, as well as transient byproducts of oxidative stress, yet their reactivity has undermined their detailed study. Selenocysteine exhibits a lower corresponding selenyl radical reduction potential, thus taming this radical reactivity without significant steric perturbation, potentially affording a glimpse into otherwise fleeting events in thiyl radical catalysis. In this chapter, we describe a suite of fusion protein constructs for general and efficient production of site-specifically incorporated selenoproteins by a recently developed nonsense suppression technology. As a proof of concept, we produced NikJ, a member of the radical S-adenosyl methionine enzyme family involved in the biosynthesis of peptidyl nucleoside antibiotics. We place emphasis throughout the plasmid assembly, protein expression, and selenium quantitation on accommodating the structural and functional diversity of thiyl radical enzymes. The protocol produces NikJ with near quantitative selenocysteine insertion, 50% nonsense read-through, and facile protein purification.
半胱氨酸硫基自由基作为各种酶促转化的辅助因子,以及氧化应激的瞬时副产物,但其反应性阻碍了对其的详细研究。硒代半胱氨酸表现出较低的相应硒基自由基还原电位,因此在不产生显著空间位阻的情况下控制这种自由基反应性,有可能为硫基自由基催化中否则转瞬即逝的事件提供一个视角。在这一章中,我们描述了一系列融合蛋白构建体,用于通过最近开发的无意义抑制技术进行定点掺入硒蛋白的通用和高效生产。作为概念验证,我们生产了 NikJ,它是参与肽核苷抗生素生物合成的自由基 S-腺苷甲硫氨酸酶家族的成员。我们在质粒组装、蛋白质表达和硒定量过程中强调了适应硫基自由基酶的结构和功能多样性。该方案产生了具有近定量硒代半胱氨酸插入、50%无意义通读和易于蛋白质纯化的 NikJ。