College of Food Science, South China Agricultural University, No. 483, Wushan Street, Tianhe District, Guangzhou 510642, China.
Int J Mol Sci. 2020 Jun 10;21(11):4139. doi: 10.3390/ijms21114139.
Molecular imprinting technology is a promising method for detecting chloramphenicol (CAP), a broad-spectrum antibiotic with potential toxicity to humans, in animal-derived foods. This work aimed to investigate the interactions between the CAP as a template and functional monomers required for synthesizing efficient molecularly imprinted polymers for recognition and isolation of CAP based on density functional theory. The most suitable monomer, methacrylic acid (MAA), was determined based on interaction energies and Gibbs free energy changes. Further, the reaction sites of CAP and MAA was predicted through the frontier molecular orbitals and molecular electrostatic potentials. Atoms in molecules topology analysis and non-covalent interactions reduced density gradient were applied to investigate different types of non-covalent and inter-atomic interactions. The simulation results showed that CAP was the main electron donor, while MAA was the main electron acceptor. Moreover, the CAP-MAA complex simultaneously involved N-H···O and C=O···H double hydrogen bonds, where the strength of the latter was greater than that of the former. The existence of hydrogen bonds was also confirmed by theoretical and experimental hydrogen nuclear magnetic resonance and Fourier transform infrared spectroscopic analyses. This research can act as an important reference for intermolecular interactions and provide strong theoretical guidance regarding CAP in the synthesis of molecularly imprinted polymers.
分子印迹技术是一种有前途的方法,可用于检测氯霉素(CAP),这是一种广谱抗生素,对人类具有潜在毒性。本工作旨在基于密度泛函理论研究 CAP 作为模板与合成高效分子印迹聚合物所需的功能单体之间的相互作用,用于识别和分离 CAP。根据相互作用能和吉布斯自由能变化,确定了最合适的单体甲基丙烯酸(MAA)。通过前线分子轨道和分子静电势预测了 CAP 和 MAA 的反应位点。通过分子中的原子拓扑分析和非共价相互作用的约化密度梯度,研究了不同类型的非共价和原子间相互作用。模拟结果表明,CAP 是主要的电子供体,而 MAA 是主要的电子受体。此外,CAP-MAA 复合物同时涉及 N-H···O 和 C=O···H 双重氢键,后者的强度大于前者。氢键的存在也通过理论和实验的氢核磁共振和傅里叶变换红外光谱分析得到了证实。这项研究可以作为分子间相互作用的重要参考,并为 CAP 在分子印迹聚合物合成中的氢键提供强有力的理论指导。