Iopanoic acid alters thyroid hormone-related gene expression, thyroid hormone levels, swim bladder inflation, and swimming performance in Japanese medaka

IF 3.9 3区 环境科学与生态学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Comparative Biochemistry and Physiology C-toxicology & Pharmacology Pub Date : 2024-04-23 DOI:10.1016/j.cbpc.2024.109930
Yoshifumi Horie , Ayaka Sawada , Uaciquete Dorcas , Babu Rajendran Ramaswamy , Taisen Iguchi
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Abstract

Disruption of the thyroid hormone system by synthetic chemicals is gaining attention owing to its potential negative effects on organisms. In this study, the effects of the dio-inhibitor iopanoic acid (IOP) on the levels of thyroid hormone and related gene expression, swim bladder inflation, and swimming performance were investigated in Japanese medaka. Iopanoic acid exposure suppressed thyroid-stimulating hormone β (tshβ), tshβ-like, iodotyronin deiodinase 1 (dio1), and dio2 expression, and increased T4 and T3 levels. In addition, IOP exposure inhibited swim bladder inflation, reducing swimming performance. Although adverse outcome pathways of thyroid hormone disruption have been developed using zebrafish, no adverse outcome pathways have been developed using Japanese medaka. This study confirmed that IOP inhibits dio expression (a molecular initiating event), affects T3 and T4 levels (a key event), and reduces swim bladder inflation (a key event) and swimming performance (an adverse outcome) in Japanese medaka.

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碘番酸改变日本青鳉的甲状腺激素相关基因表达、甲状腺激素水平、鳔膨胀和游泳性能
合成化学物质对甲状腺激素系统的干扰因其对生物体的潜在负面影响而日益受到关注。本研究调查了二元抑制剂异辛酸(IOP)对日本青鳉甲状腺激素水平及相关基因表达、鳔膨胀和游泳性能的影响。接触碘帕尼酸抑制了促甲状腺激素β(tshβ)、tshβ样、碘酪胺脱碘酶1(dio1)和dio2的表达,并增加了T4和T3的水平。此外,接触 IOP 会抑制膀胱充气,降低游泳成绩。虽然已经利用斑马鱼开发出了甲状腺激素干扰的不良后果途径,但还没有利用日本青鳉开发出不良后果途径。这项研究证实,眼压抑制了日本鳉的dio表达(分子启动事件),影响了T3和T4水平(关键事件),并降低了鳔的膨胀(关键事件)和游泳性能(不良结果)。
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来源期刊
CiteScore
7.50
自引率
5.10%
发文量
206
审稿时长
30 days
期刊介绍: Part C: Toxicology and Pharmacology. This journal is concerned with chemical and drug action at different levels of organization, biotransformation of xenobiotics, mechanisms of toxicity, including reactive oxygen species and carcinogenesis, endocrine disruptors, natural products chemistry, and signal transduction with a molecular approach to these fields.
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