降低防晒添加剂的雌激素风险:功能改良水杨酸盐的理论设计与评估。

Journal of hazardous materials Pub Date : 2024-09-15 Epub Date: 2024-07-29 DOI:10.1016/j.jhazmat.2024.135371
Yuhan Cui, Wei He, Zhonghe Wang, Hao Yang, Maosheng Zheng, Yu Li
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引用次数: 0

摘要

水杨酸酯(SE)是防晒产品中广泛使用的紫外线(UV)吸收剂,但已被发现具有健康风险,如皮肤过敏和雌激素效应。本研究旨在设计既能保持高紫外线吸收率又能降低雌激素毒性的 SE 替代品。利用分子对接和 Gaussian09 软件进行初步评估,并进一步应用二维和三维定量结构-活性关系(分别为二维-QSAR 和三维-QSAR)模型,我们设计出 73 种替代品。表现最好的分子是水杨酸乙基己酯 (EHS)-5 和 EHS-15,它们分别显著降低了雌激素毒性(44.54 % 和 17.60 %),并提高了紫外线吸收率(249.56 % 和 46.94 %)。通过对人体健康风险的筛选,我们发现 EHS-5 和 EHS-15 与 EHS 相比,没有皮肤敏感性和眼刺激性,皮肤渗透性也有所降低。此外,我们还推导出了 EHS-5 和 EHS-15 的光解和合成途径,证明了它们良好的光降解性和潜在的可合成性。此外,我们还分析了雌激素效应和紫外线吸收特性发生变化的机制。我们发现原子分子性质的共价氢键碱性和酸性 Propgen 值以及最高占据分子轨道特征值分别是影响 SEs 的雌激素效应和紫外线吸收率的主要因素。本研究的重点是设计和筛选具有增强功能性、降低健康风险和合成可行性的 SEs。
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Reduced estrogenic risks of a sunscreen additive: Theoretical design and evaluation of functionally improved salicylates.

Salicylic esters (SEs), the widely used ultraviolet (UV) absorbers in sunscreen products, have been found to have health risks such as skin sensitization and estrogenic effects. This study aims to design SE substitutes that maintain high UV absorbance while reducing estrogenicity. Using molecular docking and Gaussian09 software for initial assessments and further application of a combination of two-dimensional and three-dimensional quantitative structure-activity relationships (2D-QSAR and 3D-QSAR, respectively) models, we designed 73 substitutes. The best-performing molecules, ethylhexyl salicylate (EHS)-5 and EHS-15, significantly reduced estrogenicity (44.54 % and 17.60 %, respectively) and enhanced UV absorbance (249.56 % and 46.94 %, respectively). Through screening for human health risks, we found that EHS-5 and EHS-15 were free from skin sensitivity and eye irritation and exhibited reduced skin permeability compared with EHS. Furthermore, the photolysis and synthetic pathways of EHS-5 and EHS-15 were deduced, demonstrating their good photodegradability and potential synthesizability. In addition, we analyzed the mechanisms underlying the changes in estrogenic effects and UV absorption properties. We identified covalent hydrogen bond basicity and acidity Propgen value for atomic molecular properties and the highest occupied molecular orbital eigenvalue as the main factors affecting the estrogenic effect and UV absorbance of SEs, respectively. This study focuses on the design and screening of SEs, exhibiting enhanced functionality, reduced health risks, and synthetic feasibility.

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