Chen Jianzhong, Gridnev Ilya D
Shanghai Key Laboratory for Molecular Engineering of Chiral Drugs, School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, P. R. China.
Department of Chemistry, Graduate School of Science, Tohoku University, Aramaki 3-6. Aoba-ku, Sendai 8578, Japan.
iScience. 2020 Mar 27;23(3):100960. doi: 10.1016/j.isci.2020.100960. Epub 2020 Mar 5.
Heavily substituted (R)-DTBM-SegPHOS is active in the asymmetric Pd(II)-catalyzed hydrogenation or C-O bond cleavage of α-pivaloyloxy-1-(2-furyl)ethanone, whereas (R)-SegPHOS fails to catalyze either of these transformations. An extensive network of C-H ··· H-C interactions provided by the heavily substituted phenyl rings of (R)-DTBM-SegPHOS leads to increased stabilities of all intermediates and transition states in the corresponding catalytic cycles compared with the unsubstituted analogues. Moreover, formation of the encounter complex and its rearrangement into the reactive species proceeds in a fashion similar to that seen in natural enzymatic reactions. Computations demonstrate that this feature is the origin of enantioselection in asymmetric hydrogenation, since the stable precursor is formed only when the catalyst is approached by one prochiral plane of the substrate.
高度取代的(R)-DTBM-SegPHOS在不对称钯(II)催化的α-新戊酰氧基-1-(2-呋喃基)乙酮的氢化反应或C-O键裂解反应中具有活性,而(R)-SegPHOS无法催化这两种转化反应中的任何一种。与未取代的类似物相比,(R)-DTBM-SegPHOS高度取代的苯环提供了广泛的C-H···H-C相互作用网络,导致相应催化循环中所有中间体和过渡态的稳定性增加。此外,遭遇络合物的形成及其重排为反应性物种的过程与天然酶促反应中的情况类似。计算表明,这一特征是不对称氢化反应中对映选择性的起源,因为只有当底物的一个前手性平面接近催化剂时才会形成稳定的前体。