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重金属-有机荧光化合物配合物的稳定常数和电位灵敏度:新型香豆素类配体预测与设计的定量构效关系模型

Stability Constant and Potentiometric Sensitivity of Heavy Metal-Organic Fluorescent Compound Complexes: QSPR Models for Prediction and Design of Novel Coumarin-like Ligands.

作者信息

Diem-Tran Phan Thi, Ho Tue-Tam, Tuan Nguyen-Van, Bao Le-Quang, Phuong Ha Tran, Chau Trinh Thi Giao, Minh Hoang Thi Binh, Nguyen Cong-Truong, Smanova Zulayho, Casanola-Martin Gerardo M, Rasulev Bakhtiyor, Pham-The Hai, Cuong Le Canh Viet

机构信息

Mientrung Institute for Scientific Research, Vietnam National Museum of Nature, Vietnam Academy of Science and Technology, Hue 53000, Vietnam.

Faculty of Pharmaceutical Chemistry and Technology, Hanoi University of Pharmacy, 13-15 Le Thanh Tong, Hoan Kiem, Hanoi 10000, Vietnam.

出版信息

Toxics. 2023 Jul 7;11(7):595. doi: 10.3390/toxics11070595.

Abstract

Industrial wastewater often consists of toxic chemicals and pollutants, which are extremely harmful to the environment. Heavy metals are toxic chemicals and considered one of the major hazards to the aquatic ecosystem. Analytical techniques, such as potentiometric methods, are some of the methods to detect heavy metals in wastewaters. In this work, the quantitative structure-property relationship (QSPR) was applied using a range of machine learning techniques to predict the stability constant (logβ) and potentiometric sensitivity (PS) of 200 ligands in complexes with the heavy metal ions Cu, Cd, and Pb. In result, the logβML models developed for four ions showed good performance with square correlation coefficients (R) ranging from 0.80 to 1.00 for the training and 0.72 to 0.85 for the test sets. Likewise, the PSML displayed acceptable performance with an R of 0.87 to 1.00 for the training and 0.73 to 0.95 for the test sets. By screening a virtual database of coumarin-like structures, several new ligands bearing the coumarin moiety were identified. Three of them, namely NEW02, NEW03, and NEW07, showed very good sensitivity and stability in the metal complexes. Subsequent quantum-chemical calculations, as well as physicochemical/toxicological profiling were performed to investigate their metal-binding ability and developability of the designed sensors. Finally, synthesis schemes are proposed to obtain these three ligands with major efficiency from simple resources. The three coumarins designed clearly demonstrated capability to be suitable as good florescent chemosensors towards heavy metals. Overall, the computational methods applied in this study showed a very good performance as useful tools for designing novel fluorescent probes and assessing their sensing abilities.

摘要

工业废水通常含有有毒化学物质和污染物,对环境危害极大。重金属是有毒化学物质,被认为是对水生生态系统的主要危害之一。分析技术,如电位分析法,是检测废水中重金属的一些方法。在这项工作中,运用了一系列机器学习技术的定量结构-性质关系(QSPR)来预测200种配体与重金属离子铜、镉和铅形成的配合物的稳定常数(logβ)和电位灵敏度(PS)。结果表明,针对四种离子建立的logβML模型表现良好,训练集的平方相关系数(R)在0.80至1.00之间,测试集的R在0.72至0.85之间。同样,PSML模型也表现出可接受的性能,训练集的R为0.87至1.00,测试集的R为0.73至0.95。通过筛选香豆素类结构的虚拟数据库,鉴定出了几种带有香豆素部分的新配体。其中三种,即NEW02、NEW03和NEW07,在金属配合物中表现出非常好的灵敏度和稳定性。随后进行了量子化学计算以及物理化学/毒理学分析,以研究它们的金属结合能力和所设计传感器的可开发性。最后,提出了合成方案,以便从简单原料高效地获得这三种配体。所设计的三种香豆素清楚地证明了它们有能力作为对重金属良好的荧光化学传感器。总体而言,本研究中应用的计算方法作为设计新型荧光探针和评估其传感能力的有用工具表现出了非常好的性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/778e/10383909/09dfac7399a8/toxics-11-00595-g001.jpg

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