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双酚 S 引起的代谢途径紊乱和潜在人类疾病。

Disrupted metabolic pathways and potential human diseases induced by bisphenol S.

机构信息

Guangdong Key Laboratory of Environmental Pollution and Health, School of Environment, Jinan University, Guangzhou, 510632, China.

Guangdong Ocean Engineering Technology School, Guangzhou, 510320, China.

出版信息

Environ Toxicol Pharmacol. 2021 Nov;88:103751. doi: 10.1016/j.etap.2021.103751. Epub 2021 Oct 5.

Abstract

Although the toxicity of bisphenol S has been studied in some species, the global metabolic network disrupted by bisphenol S remains unclear. To this end, published datasets related to the genes, proteins, and metabolites disturbed by bisphenol S were investigated through omics methods. The dataset revealed that bisphenol S at high concentrations tended to downregulate biomolecules, while low concentrations of bisphenol S tended to enhance metabolic reactions. The results showed that exposure to bisphenol S upregulated estrogen and downregulated androgen metabolism in humans, mice, rats, and zebrafish. Fatty acid metabolism and phospholipid metabolism in mice were upregulated. Reactions in amino acid metabolism were upregulated, with the exception of the suppressive conversion of arginine to ornithine. In zebrafish, fatty acid synthesis was promoted, while nucleotide metabolism was primarily depressed through the downregulation of pyruvate 2-o-phosphotransferase. The interference in amino acid metabolism by bisphenol S could trigger Alzheimer's disease, while its disturbance of glucose metabolism was associated with type II diabetes. Disturbed glycolipid metabolism and vitamin metabolism could induce Alzheimer's disease and diabetes. These findings based on omics data provide scientific insight into the metabolic network regulated by bisphenol S and the diseases triggered by its metabolic disruption.

摘要

虽然双酚 S 的毒性已在某些物种中进行了研究,但双酚 S 所扰乱的全球代谢网络仍不清楚。为此,通过组学方法研究了与双酚 S 扰乱的基因、蛋白质和代谢物相关的已发表数据集。该数据集表明,高浓度的双酚 S 倾向于下调生物分子,而低浓度的双酚 S 则倾向于增强代谢反应。结果表明,双酚 S 暴露会在人类、小鼠、大鼠和斑马鱼中上调雌激素并下调雄激素代谢。在小鼠中,脂肪酸代谢和磷脂代谢被上调。除了精氨酸到鸟氨酸的抑制性转化外,氨基酸代谢的反应也被上调。在斑马鱼中,通过下调丙酮酸 2-磷酸转移酶来促进脂肪酸合成,而核苷酸代谢主要被抑制。双酚 S 对氨基酸代谢的干扰可能引发阿尔茨海默病,而其对葡萄糖代谢的干扰与 2 型糖尿病有关。糖脂代谢和维生素代谢的紊乱可引发阿尔茨海默病和糖尿病。这些基于组学数据的发现为双酚 S 调节的代谢网络以及其代谢紊乱引发的疾病提供了科学见解。

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