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Activation of Thyroid Hormone Is Transcriptionally Regulated by Epidermal Growth Factor in Human Placenta-Derived JEG3 Cells

机译:甲状腺激素的激活由人类胎盘衍生的JEG3细胞中的表皮生长因子转录调控。

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摘要

Human type II deiodinase is a master regulator of thyroid hormone activation in several tissues. In placenta, type II deiodinase mRNA levels and enzymatic activity are elevated only during the first trimester of pregnancy and then progressively decline. During this early stage, mitogens such as epidermal growth factor (EGF) have been shown to promote the proliferation of the trophoblast by acting through multiple mechanisms. Here we show that EGF modulates transcription of human type II deiodinase gene (Dio2) through distinct signaling pathways, leading to the assembly of a heterogeneous transcription factor complex. Gene expression and deiodination assays have shown that EGF promptly induces a short-lived Dio2 mRNA and enzymatic activity. The induction is mediated by ERK and p38 kinases, as demonstrated by selective inhibition or overexpression of different mitogen-activated kinases. Reporter assays of mutant constructs indicate that EGF-induced transcriptional activity on Dio2 promoter is mediated by the cAMP response element (CRE) and does not involve the activating protein 1 site. With functional and biochemical approaches, we have demonstrated that the EGF stimulation culminates with the assembly and recruitment over the Dio2 CRE of a composite complex, which consists of c-Jun, c-Fos, and CRE-binding protein. These results further support the hypothesis that placental iodothyronine metabolism is critical during early pregnancy.
机译:人类II型脱碘酶是几种组织中甲状腺激素激活的主要调节剂。在胎盘中,II型脱碘酶mRNA水平和酶活性仅在妊娠的头三个月才升高,然后逐渐下降。在此早期阶段,已证明有丝分裂原(例如表皮生长因子(EGF))通过多种机制促进滋养层细胞的增殖。在这里,我们显示EGF通过不同的信号通路调节人类II型脱碘酶基因(Dio2)的转录,从而导致异源转录因子复合体的装配。基因表达和去碘化验表明,EGF可迅速诱导短寿命的Dio2 mRNA和酶促活性。诱导是由ERK和p38激酶介导的,如选择性抑制或过度表达不同的促分裂原活化的激酶所证明的。突变体构建体的报告基因检测表明,EGF诱导的Dio2启动子转录活性是由cAMP反应元件(CRE)介导的,并且不涉及激活蛋白1位点。通过功能和生化方法,我们已经证明,EGF刺激达到了由c-Jun,c-Fos和CRE结合蛋白组成的复合复合物的Dio2 CRE的组装和募集的高潮。这些结果进一步支持了在怀孕初期胎盘碘甲状腺素代谢至关重要的假说。

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