School of Chemistry, Cardiff University, Main Building, Park Place, CF10 3AT, Cardiff, United Kingdom.
School of Chemistry, Cardiff University, Main Building, Park Place, CF10 3AT, Cardiff, United Kingdom; Chair of Medicinal and Bioinorganic Chemistry, Department of Chemistry, Technical University of Munich, Lichtenbergstr. 4, 85748, Garching, Germany.
Curr Opin Chem Biol. 2020 Apr;55:103-110. doi: 10.1016/j.cbpa.2019.12.007. Epub 2020 Feb 18.
One of the challenges of modern inorganic chemistry is translating the potential of metal catalysts to living systems to achieve controlled non-natural transformations. This field poses numerous issues associated with the metal compounds biocompatibility, stability, and reactivity in complex aqueous environment. Moreover, it should be noted that although referring to 'metal catalysis', turnover has not yet been fully demonstrated in most of the examples within living systems. Nevertheless, transition metal catalysts offer an opportunity of modulating bioprocesses through reactions that are complementary to enzymes. In this context, gold complexes, both coordination and organometallic, have emerged as promising tools for bio-orthogonal transformations, endowed with excellent reactivity and selectivity, compatibility within aqueous reaction medium, fast kinetics of ligand exchange reactions, and mild reaction conditions. Thus, a number of examples of gold-templated reactions in a biologically relevant context will be presented and discussed here in relation to their potential applications in biological and medicinal chemistry.
现代无机化学面临的挑战之一是将金属催化剂的潜力转化为生命系统,以实现可控的非天然转化。该领域涉及许多与金属化合物在复杂水相环境中的生物相容性、稳定性和反应性相关的问题。此外,应当指出的是,尽管提到“金属催化”,但在大多数生命系统中的实例中,尚未完全证明转化率。然而,过渡金属催化剂为通过与酶互补的反应来调节生物过程提供了机会。在这种情况下,金配合物(包括配位和有机金属)已成为生物正交转化的有前途的工具,具有出色的反应性和选择性、在水相反应介质中的兼容性、配体交换反应的快速动力学以及温和的反应条件。因此,将在此处提出并讨论在生物学相关背景下的金模板反应的一些实例,并讨论它们在生物和药物化学中的潜在应用。