School of Food and Biological Engineering, Xihua University, Chengdu, 610039, China; College of Veterinary Medicine, China Agricultural University, Beijing, 100193, China.
School of Food and Biological Engineering, Xihua University, Chengdu, 610039, China.
Food Chem Toxicol. 2022 Aug;166:113252. doi: 10.1016/j.fct.2022.113252. Epub 2022 Jun 20.
Bisphenol A diglycidyl ethers (BADGE) is one class of human-made chemicals, and it is one of the most widely used raw materials for epoxy resins. As an active compound, BADGE undergoes biotransformation in vitro and in vivo. However, there is a limited understanding of the biotransformation of BADGE and toxicity studies on transformation products. We conducted comprehensive research on the metabolic transformation of BADGE in vitro and in vivo. The results showed that 12 metabolites and 7 metabolites were identified in vitro and in vivo, respectively. Four biotransformation products, including M1 (hydrolysis), M3 (dehydroxylation), M10 (carboxylation), and M11 (glucose conjugation), can be found in both in vitro and in vivo samples. The main metabolic pathways were hydroxylation, carboxylation, cysteine (Cys) conjugation, and glucose conjugation. Besides, our results suggested the existence of metabolic differences in BADGE between species and gender. Further, we investigated toxicities of BADGE metabolites in-silico. Importantly, some hydrolysis (M1, M2), hydroxylation (M7), and oxidation (M8) products showed similar or even higher potential toxicity than BADGE depending on the endpoint. These results enrich the biotransformation profiles of BADGE and provide useful information for understanding its biotransformation in humans and a reference for the comprehensive assessment for human health risk.
双酚 A 二缩水甘油醚(BADGE)是一类人工合成化学品,也是环氧树脂最广泛使用的原料之一。作为一种活性化合物,BADGE 在体外和体内都会发生生物转化。然而,对于 BADGE 的生物转化及其转化产物的毒性研究,人们的了解还很有限。我们对 BADGE 的体外和体内代谢转化进行了全面研究。结果表明,分别在体外和体内鉴定出 12 种和 7 种代谢物。在体外和体内样品中均发现了 4 种生物转化产物,包括 M1(水解)、M3(去羟化)、M10(羧化)和 M11(葡萄糖结合)。主要的代谢途径包括羟化、羧化、半胱氨酸(Cys)结合和葡萄糖结合。此外,我们的结果表明,BADGE 在不同物种和性别之间存在代谢差异。进一步,我们通过计算方法研究了 BADGE 代谢物的毒性。重要的是,根据终点的不同,一些水解(M1、M2)、羟化(M7)和氧化(M8)产物显示出与 BADGE 相似甚至更高的潜在毒性。这些结果丰富了 BADGE 的生物转化谱,并为了解其在人体中的生物转化提供了有用的信息,也为全面评估人类健康风险提供了参考。