高级检索

可分解芳香胺染料对人体的潜在健康风险研究

Research on the Potential Health Risks of Aromatic Amine-releasing Dyes to the Human Body

  • 摘要:
    目的 评估可分解芳香胺染料(AADs)在自然环境中对人体的潜在危害。
    方法 选取联苯胺、2,4-二甲基苯胺、4,4′-二氨基二苯甲烷和邻联甲苯胺四种典型芳香胺(AAs),采用四种光谱技术研究其与人血清白蛋白(HSA)的相互作用机制。
    结果 AAs主要以静态与动态联合猝灭方式,于HSA疏水性氨基酸残基周围等比例结合(结合位点数为1),且整体结合强度中等偏低(结合常数Ka = 1.53×102~17.53×102 L·mol−1),主要依赖苯胺基团与HSA间的氢键与范德华力。此外,AAs的引入导致HSA的α-螺旋结构展开、内部疏水环境减弱,分子直径增大。
    结论 揭示AAs与HSA的相互作用特征及构象影响,证实了AAs在人体内存在扩散风险,为理解AADs及其代谢产物的毒性机制、开展相关健康风险评估提供了理论依据。

     

    Abstract:
    Objective Aromatic amine-releasing dyes (AADs) are a class of synthetic dyes that can decompose into aromatic amines (AAs) under specific conditions, such as microbial action in the environment, and are mainly used for the dyeing of leather, textiles, and other materials. Therein, some AAs are confirmed with strong carcinogenic and teratogenic properties, posing potential threats to human health. Although AADs have been completely banned, the related exposure risk to the human body persists. To address the gaps in current research on the health risks and toxic mechanisms of AADs, this study explored the toxic mechanisms of their metabolites, i.e., AAs, in the human body.
    Methods Four typical AAs, namely benzidine (BZD), 2,4-dimethylaniline (DMA), 4,4′-diaminodiphenylmethane (MDA), and o-tolidine (OT), were selected as representatives. Multiple spectroscopic techniques, including molecular fluorescence, time-resolved fluorescence, three-dimensional fluorescence, and circular dichroism spectroscopy, combined with molecular docking simulation, were used to systematically investigate the interaction mechanism between AAs and human serum albumin (HSA) in the temperature range from room temperature to human physiological temperature (298-310 K). The quenching mechanism, binding sites, binding constants, and thermodynamic constants were analyzed by fitting the data using the Stern-Volmer, double logarithmic, and Van’t Hoff equations, and the effects of AAs on the conformational structure of HSA were clarified.
    Results The results demonstrate that all four AAs could bind to HSA. Specifically, the binding mechanism between BZD and HSA was static quenching, while DMA, MDA, and OT all bound to HSA through a combination of static and dynamic quenching. The number of the binding site between HSA and AAs is one, i.e., AAs bind to HSA in an equimolar ratio. The binding constant Ka of BZD to HSA was 1.78×106 L·mol−1, while the Ka values of DMA, MDA, and OT to HSA were in the range of 1.53×102-17.53×102 L·mol−1, showing an overall moderate-to-low binding strength at 310 K. The bindings of HSA/AAs systems proceeded spontaneously (Gibbs free energy variation ΔG<0). Besides, the binding interaction of the HSA/BZD system was dominated by the hydrophobic interactions, while the bindings of DMA, MDA, and OT to HSA were mainly driven by the hydrogen bonds and van der Waals forces. In addition, AAs were found to prefer to achieve specific binding interaction through multiple forces near the hydrophobic amino acid residues of HSA. Furthermore, the introduction of AAs caused the α-helical structure of HSA to unfold and the peptide chain to stretch, resulting in decreased hydrophobicity of its internal environment and increased molecular diameter, without altering the main structure of HSA.
    Conclusions This study revealed the binding interaction characteristics between AAs and HSA as well as the conformational changes of HSA at the molecular level, confirming the diffusion risk of AAs in the human body, and these interactions may interfere with the normal physiological functions of HSA. Among these AAs, BZD may remain in the blood for a long time due to its strong affinity to HSA, thus posing a more extensive diffusion risk to the human body; DMA, MDA, and OT are more likely to exhibit local accumulation hazards in organ tissues. Clarifying the in vivo toxic mechanism of AAs, the metabolite of AADs, provides an important theoretical basis for the health risk assessment and targeted prevention and control of the entire AADs exposure path and the entire AAs application chain in leather and other related industries.

     

/

返回文章
返回