Lionetti Davide, Suseno Sandy, Shiau Angela A, de Ruiter Graham, Agapie Theodor
Division of Chemistry and Chemical Engineering, California Institute of Technology, 1200 East California Boulevard, MC 127-72, Pasadena, California 91125, United States.
JACS Au. 2024 Jan 22;4(2):344-368. doi: 10.1021/jacsau.3c00675. eCollection 2024 Feb 26.
Metalloenzymes with heteromultimetallic active sites perform chemical reactions that control several biogeochemical cycles. Transformations catalyzed by such enzymes include dioxygen generation and reduction, dinitrogen reduction, and carbon dioxide reduction-instrumental transformations for progress in the context of artificial photosynthesis and sustainable fertilizer production. While the roles of the respective metals are of interest in all these enzymatic transformations, they share a common factor in the transfer of one or multiple redox equivalents. In light of this feature, it is surprising to find that incorporation of redox- metals into the active site of such an enzyme is critical to its function. To illustrate, the presence of a redox-inactive Ca center is crucial in the Oxygen Evolving Complex, and yet particularly intriguing given that the transformation catalyzed by this cluster is a redox process involving four electrons. Therefore, the effects of redox inactive metals on redox processes-electron transfer, oxygen- and hydrogen-atom transfer, and O-O bond cleavage and formation reactions-mediated by transition metals have been studied extensively. Significant effects of redox inactive metals have been observed on these redox transformations; linear free energy correlations between Lewis acidity and the redox properties of synthetic model complexes are observed for several reactions. In this Perspective, these effects and their relevance to multielectron processes will be discussed.
具有异多金属活性位点的金属酶催化着控制多个生物地球化学循环的化学反应。这类酶催化的转化反应包括双氧的生成与还原、二氮还原以及二氧化碳还原,这些都是人工光合作用和可持续肥料生产进程中的重要转化反应。尽管在所有这些酶促转化反应中,各自金属的作用都备受关注,但它们在一个或多个氧化还原当量的转移方面有一个共同因素。鉴于这一特性,令人惊讶的是,将氧化还原金属掺入此类酶的活性位点对其功能至关重要。例如,氧化还原惰性的钙中心在光系统II放氧复合体中至关重要,然而考虑到该簇催化的转化是一个涉及四个电子的氧化还原过程,这一点就显得格外引人深思。因此,氧化还原惰性金属对由过渡金属介导的氧化还原过程——电子转移、氧原子和氢原子转移以及O - O键的断裂和形成反应——的影响已得到广泛研究。在这些氧化还原转化反应中已观察到氧化还原惰性金属的显著影响;对于几个反应,在路易斯酸度与合成模型配合物的氧化还原性质之间观察到了线性自由能关系。在这篇综述文章中,将讨论这些影响及其与多电子过程的相关性。