Department of Chemistry, University of Chicago, Chicago, Illinois 60637, United States.
J Am Chem Soc. 2021 Dec 15;143(49):20849-20862. doi: 10.1021/jacs.1c09280. Epub 2021 Dec 2.
The selective hydroxylation of aliphatic C-H bonds remains a challenging but broadly useful transformation. Nature has evolved systems that excel at this reaction, exemplified by cytochrome P450 enzymes, which use an iron-oxo intermediate to activate aliphatic C-H bonds with > 1400 s at 4 °C. Many synthetic catalysts have been inspired by these enzymes and are similarly proposed to use transition metal-oxo intermediates. However, most examples of well-characterized transition metal-oxo species are not capable of reacting with strong, aliphatic C-H bonds, resulting in a lack of understanding of what factors facilitate this reactivity. Here, we report the isolation and characterization of a new terminal Co-oxo complex, PhB(Im)CoO. Upon oxidation, a transient Co-oxo intermediate is generated that is capable of hydroxylating aliphatic C-H bonds with an extrapolated for C-H activation >130 s at 4 °C, comparable to values observed in cytochrome P450 enzymes. Experimental thermodynamic values and DFT analysis demonstrate that, although the initial C-H activation step in this reaction is endergonic, the overall reaction is driven by an extremely exergonic radical rebound step, similar to what has been proposed in cytochrome P450 enzymes. The rapid C-H hydroxylation reactivity displayed in this well-defined system provides insight into how hydroxylation is accomplished by biological systems and similarly potent synthetic oxidants.
脂肪族 C-H 键的选择性羟化仍然是一项具有挑战性但用途广泛的转化。自然界已经进化出了擅长这种反应的系统,以细胞色素 P450 酶为例,它使用铁-氧中间物在 4°C 下以 >1400s 的速率激活脂肪族 C-H 键。许多合成催化剂都受到这些酶的启发,并被认为同样使用过渡金属-氧中间物。然而,大多数特征良好的过渡金属-氧物种的例子都不能与强的、脂肪族的 C-H 键反应,导致人们对促进这种反应性的因素缺乏了解。在这里,我们报告了一种新的末端 Co-氧配合物 PhB(Im)CoO 的分离和表征。在氧化过程中,会生成瞬态 Co-氧中间物,能够以 4°C 下的 >130s 的 对脂肪族 C-H 键进行羟化,与细胞色素 P450 酶中观察到的值相当。实验热力学值和 DFT 分析表明,尽管该反应中的初始 C-H 活化步骤是吸热的,但整个反应是由一个极其放热的自由基回弹步骤驱动的,这与细胞色素 P450 酶中提出的步骤相似。在这个定义明确的体系中,快速的 C-H 羟化反应提供了关于生物体系如何完成羟化作用的见解,以及类似的有效合成氧化剂。