Instituto de Tecnologia Química e Biológica António Xavier (ITQB-NOVA), Universidade Nova de Lisboa, Av. da República (EAN), 2780-157 Oeiras, Portugal.
Department of Chemistry, Magnetic Resonance Center (CERM), University of Florence, Via L. Sacconi 6, 50019 Sesto Fiorentino, Italy; Consorzio Interuniversitario Risonanze Magnetiche MetalloProteine (CIRMMP), Via L. Sacconi 6, 50019 Sesto Fiorentino, Italy.
J Inorg Biochem. 2022 Sep;234:111871. doi: 10.1016/j.jinorgbio.2022.111871. Epub 2022 May 23.
Metalloproteins represent a substantial fraction of the proteome where they have an outsized contribution to enzymology. This stems from the reactivity of transition metals found in the active sites of numerous classes of enzymes that undergo redox and/or spin-state transitions. Notwithstanding, NMR structures of metalloproteins deposited in the PDB are under-represented and NMR studies exploring paramagnetic states are a minute fraction of the overall database content. This state of affairs contrasts with the early recognition that paramagnetic proteins offer unique opportunities for structure-function studies which are not available for diamagnetic proteins. Recent development of novel pulse sequences that minimize quenching of signal intensity that arises from the presence of a paramagnetic center in metalloproteins is extending even further the range of systems which can be studied by solution-state NMR. In this manuscript we review solution-state NMR applications to paramagnetic proteins, highlighting the developments in both methodologies and data interpretation, laying bare the vast range of opportunities for paramagnetic NMR to contribute to the understanding of structure and function of metalloenzymes and biomimetic metallocatalysts.
金属蛋白酶代表了蛋白质组的一个重要部分,它们对酶学有巨大的贡献。这源于在许多类酶的活性位点中发现的过渡金属的反应性,这些酶经历氧化还原和/或自旋态转变。尽管如此,PDB 中储存的金属蛋白酶的 NMR 结构仍然不足,探索顺磁状态的 NMR 研究只是整个数据库内容的一小部分。这种情况与早期认识形成鲜明对比,即顺磁蛋白为结构-功能研究提供了独特的机会,而这些机会对于抗磁蛋白是不存在的。最近开发的新型脉冲序列最大限度地减少了由于金属蛋白酶中顺磁中心的存在而导致的信号强度猝灭,这进一步扩展了可以通过溶液态 NMR 研究的系统范围。在本文中,我们综述了溶液态 NMR 在顺磁蛋白中的应用,重点介绍了方法学和数据解释方面的发展,揭示了顺磁 NMR 为理解金属酶和仿生金属催化剂的结构和功能做出贡献的广泛机会。