Sun Qingqing, Bao Baocheng, Dong Wenqian, Lyu Yanchao, Wang Mengyuan, Xi Zheng, Han Jie, Guo Rong
Yangzhou University, School of Chemistry and Chemical Engineering, Yangzhou, 225002 Jiangsu, China.
Yangzhou University, School of Chemistry and Chemical Engineering, Yangzhou, 225002 Jiangsu, China.
J Colloid Interface Sci. 2024 Sep;669:944-951. doi: 10.1016/j.jcis.2024.05.027. Epub 2024 May 9.
Understanding the structure-function relationships encoded on chiral catalysts is important for investigating the fundamental principles of catalytic enantioselectivity. Herein, the synthesis and self-assembly of naphthalene substituted bis-l/d-histidine amphiphiles (bis-l/d-NapHis) in DMF/water solution mixture is reported. The resulting supramolecular assemblies featuring well-defined P/M nanoribbons (NRs). With combination of the (P/M)-NR and metal ion catalytic centers (M = Co, Cu, Fe), the (P)-NR-M as chiral supramolecular catalysts show catalytic preference to 3,4-dihydroxy-S-phenylalanine (S-DOPA) oxidation while the (M)-NR-M show enantioselective bias to R-DOPA oxidation. In contrast, their monomeric counterparts bis-l/d-NapHis-M display an inverse and dramatically lower catalytic selectivity in the R/S-DOPA oxidation. Among them, the Co-coordinated supramolecular nanostructures show the highest catalytic efficiency and enantioselectivity (select factor up to 2.70), while the Fe-coordinated monomeric ones show nearly racemic products. Analysis of the kinetic results suggests that the synergistic effect between metal ions and the chiral supramolecular NRs can significantly regulate the enantioselective catalytic activity, while the metal ion-mediated monomeric bis-l/d-NapHis were less active. The studies on association constants and activation energies reveal the difference in catalytic efficiency and enantioselectivity resulting from the different energy barriers and binding affinities existed between the chiral molecular/supramolecular structures and R/S-DOPA enantiomers. This work clarifies the correlation between chiral molecular/supramolecular structures and enantioselective catalytic activity, shedding new light on the rational design of chiral catalysts with outstanding enantioselectivity.
理解手性催化剂所编码的结构-功能关系对于研究催化对映选择性的基本原理至关重要。在此,报道了萘取代的双-l/d-组氨酸两亲物(双-l/d-NapHis)在N,N-二甲基甲酰胺/水溶液混合物中的合成与自组装。所得超分子组装体具有明确的P/M纳米带(NRs)。通过将(P/M)-NR与金属离子催化中心(M = Co、Cu、Fe)相结合,(P)-NR-M作为手性超分子催化剂对3,4-二羟基-S-苯丙氨酸(S-DOPA)氧化显示出催化偏好,而(M)-NR-M对R-DOPA氧化表现出对映选择性偏向。相比之下,它们的单体对应物双-l/d-NapHis-M在R/S-DOPA氧化中表现出相反且显著较低的催化选择性。其中,钴配位的超分子纳米结构显示出最高的催化效率和对映选择性(选择因子高达2.70),而铁配位的单体结构则显示出几乎外消旋的产物。动力学结果分析表明,金属离子与手性超分子NRs之间的协同效应可显著调节对映选择性催化活性,而金属离子介导的单体双-l/d-NapHis活性较低。对缔合常数和活化能的研究揭示了手性分子/超分子结构与R/S-DOPA对映体之间不同的能量壁垒和结合亲和力导致的催化效率和对映选择性差异。这项工作阐明了手性分子/超分子结构与对映选择性催化活性之间的相关性,为合理设计具有出色对映选择性的手性催化剂提供了新的思路。