Department of Chemical Engineering, Universidad San Francisco de Quito USFQ, Diego de Robles s/n y Av. Interoceánica, Quito 170157, Ecuador.
Departamento Académico de Química Inorgánica, Facultad de Química e Ingeniería Química, Universidad Nacional Mayor de San Marcos, Lima 15081, Peru.
Int J Mol Sci. 2023 Jul 25;24(15):11877. doi: 10.3390/ijms241511877.
The racemization of biomolecules in the active site can reduce the biological activity of drugs, and the mechanism involved in this process is still not fully comprehended. The present study investigates the impact of aromaticity on racemization using advanced theoretical techniques based on density functional theory. Calculations were performed at the ωb97xd/6-311++g(d,p) level of theory. A compelling explanation for the observed aromatic stabilization via resonance is put forward, involving a carbanion intermediate. The analysis, employing Hammett's parameters, convincingly supports the presence of a negative charge within the transition state of aromatic compounds. Moreover, the combined utilization of natural bond orbital (NBO) analysis and intrinsic reaction coordinate (IRC) calculations confirms the pronounced stabilization of electron distribution within the carbanion intermediate. To enhance our understanding of the racemization process, a thorough examination of the evolution of NBO charges and Wiberg bond indices (WBIs) at all points along the IRC profile is performed. This approach offers valuable insights into the synchronicity parameters governing the racemization reactions.
手性中心生物分子的外消旋化会降低药物的生物活性,而这一过程的机制仍未完全被理解。本研究使用基于密度泛函理论的先进理论技术研究芳香性对消旋化的影响。计算是在 ωb97xd/6-311++g(d,p)理论水平上进行的。提出了一种通过共振对观察到的芳香稳定化的有力解释,涉及碳负离子中间体。使用哈米特参数的分析有力地支持了芳香族化合物过渡态中存在负电荷。此外,自然键轨道(NBO)分析和固有反应坐标(IRC)计算的结合使用证实了碳负离子中间体中电子分布的显著稳定化。为了深入了解消旋化过程,我们对 IRC 轮廓上所有点的 NBO 电荷和 Wiberg 键指数(WBI)的演变进行了彻底的研究。这种方法为控制消旋反应的同步性参数提供了有价值的见解。