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新型全氟辛烷磺酸替代品 OBS 通过触发甲状腺功能紊乱和破骨细胞分化来抑制发育中的斑马鱼的身体生长。

Novel PFOS alternative OBS inhibits body growth of developing zebrafish by triggering thyroid function disorder and osteoclast differentiation.

机构信息

Research Institute of Poyang Lake, Jiangxi Academy of Sciences, Nanchang, 330012, China; Research Institute of Microbiology, Jiangxi Academy of Sciences, Nanchang, 330012, China.

Research Institute of Poyang Lake, Jiangxi Academy of Sciences, Nanchang, 330012, China; Research Institute of Microbiology, Jiangxi Academy of Sciences, Nanchang, 330012, China.

出版信息

Chemosphere. 2023 Nov;341:140068. doi: 10.1016/j.chemosphere.2023.140068. Epub 2023 Sep 4.

Abstract

The extensive use of the perfluorooctane sulfonate (PFOS) alternative sodium p-perfluorous nonenoxybenzene sulfonate (OBS) has resulted in its widespread detection in the environment and enrichment in wildlife and humans. However, little is known about its potential toxicity, particularly in terms of body development. In this study, zebrafish embryos were acutely exposed to PFOS and OBS for a comparative developmental toxicity assessment. Both PFOS and OBS led to lower body weight and shorter body length, and the damaging effects of PFOS were more severe than those of OBS at the same exposure concentration. Biochemical assays of THs and transcription profiles correlated to the HPT axis demonstrated that OBS-induced body development inhibition resulted mainly from interference in THs synthesis, transfer, coupling with receptors, and conversion from T4 to T3, which was similar to the case of PFOS, except that the disruptive effects of OBS on thyroid function were more intense. Further transcriptome analysis showed that PFOS and OBS also promoted osteoclast differentiation, aggravating the inhibitory effects on body growth, and that PFOS had more obvious inhibitory effects than OBS. This study systematically explored the inhibitory effects of PFOS and OBS exposure on body development and tightly linked the toxic effects to thyroid function disorder and osteoclast differentiation. Our findings highlight that the health risks associated with OBS, an emerging substitute for PFOS, should not be ignored.

摘要

全氟辛烷磺酸 (PFOS) 的替代品——正-过氟壬基苯磺酸钠 (OBS) 的广泛使用导致其在环境中广泛存在,并在野生动物和人类体内富集。然而,人们对其潜在毒性知之甚少,特别是在身体发育方面。在这项研究中,我们急性暴露于 PFOS 和 OBS 以进行比较发育毒性评估。PFOS 和 OBS 均导致体重降低和体长缩短,且在相同暴露浓度下,PFOS 的损伤作用比 OBS 更为严重。THs 的生化检测和与 HPT 轴相关的转录谱表明,OBS 诱导的身体发育抑制主要归因于对 THs 合成、转运、与受体结合以及从 T4 向 T3 的转化的干扰,这与 PFOS 的情况相似,只是 OBS 对甲状腺功能的破坏作用更为强烈。进一步的转录组分析表明,PFOS 和 OBS 还促进破骨细胞分化,加重对身体生长的抑制作用,且 PFOS 的抑制作用比 OBS 更为明显。本研究系统地探讨了 PFOS 和 OBS 暴露对身体发育的抑制作用,并将毒性作用与甲状腺功能障碍和破骨细胞分化紧密联系起来。我们的研究结果强调,不应忽视 OBS 这种 PFOS 的新兴替代品所带来的健康风险。

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