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铁对肝细胞铁调素信号传导的直接调节

Direct modulation of hepatocyte hepcidin signaling by iron.

作者信息

Yu Lin-Na, Wang Shi-Jin, Chen Cheng, Rausch Vanessa, Elshaarawy Omar, Mueller Sebastian

机构信息

Center for Alcohol Research and Salem Medical Center, University of Heidelberg, Heidelberg 69121, Germany.

Department of Hepatology, Gastroenterology and Liver Transplantation, National Liver Institute, Menoufia University, Shebine Elkom 35121, El Salvador.

出版信息

World J Hepatol. 2021 Oct 27;13(10):1378-1393. doi: 10.4254/wjh.v13.i10.1378.

Abstract

BACKGROUND

Liver-secreted hepcidin is the systemic master switch of iron homeostasis and decreased levels of hepcidin are considered to cause iron overload not only in hereditary hemochromatosis but also in hemolytic anemia and chronic liver diseases. The regulation of hepcidin is complex and its response to iron is still not completely understood.

AIM

To study the direct effect of iron on various established hepcidin signaling pathways in hepatoma cells or primary hepatocytes.

METHODS

Hepcidin mRNA expression was studied by quantitative real-time (qRT)-PCR in the presence of various forms of iron including ferric ammonium citrate (FAC) in hepatoma cells (Huh7), murine primary hepatocytes and an established co-culture model of phorbol myristate acetate-differentiated THP-1 monocytes and Huh7 cells. To analyze hepcidin signaling, the response to bone morphogenetic protein 6 (BMP6), interleukin (IL)-6, IL-1β, hypoxia and lipopolysaccharide (LPS) were studied. Hepcidin and small mothers against decapentaplegic 6 (SMAD6) mRNA levels were assessed by qRT-PCR and the expression of phosphorylated signal transducer and activator of transcription 3 (phospho-STAT3), STAT3, phospho-SMAD1/5/8 and SMAD1 proteins were analyzed by western blot.

RESULTS

All iron III forms including FAC efficiently blocked hepcidin mRNA expression at non-toxic dosages in Huh7 cells or primary hepatocytes in a time and dose-dependent manner ( 0.001; 0.05). Hepcidin blockage could be efficiently blunted by iron chelators salicylaldehyde isonicotinoyl hydrazone (SIH) and Desferal ( 0.001). FAC also inhibited BMP6, hypoxia, IL-1β and IL-6-mediated hepcidin induction ( 0.001; 0.001; 0.05; 0.001), and FAC also inhibited LPS-mediated hepatic hepcidin induction in co-culture model ( 0.001). Moreover, FAC reduced SMAD6 mRNA and p-SMAD1/5/8 protein expression at basal or upon stimulation by BMP6 ( 0.05; 0.01), and FAC also reduced SMAD6 and p-SMAD1/5/8 expression under hypoxia ( 0.01; 0.05). However, FAC has no significant effect on p-STAT3 protein expression at basal or upon stimulation by various stimuli. Notably, in the presence of the BMP/SMAD signaling pathway inhibitor LDN193189 Hydrochloride (LDN), FAC was unable to further decrease hepcidin, SMAD6 and p-SMAD1/5/8 expression compared with LDN alone.

CONCLUSION

Iron directly blocks hepatocellular hepcidin signaling through the BMP/SMAD pathway but independent of STAT3. This mechanism may contribute to continued iron overload in many pathophysiological conditions ultimately causing a vicious cycle of continued hepcidin suppression.

摘要

背景

肝脏分泌的铁调素是铁稳态的全身主要调节因子,铁调素水平降低不仅被认为是遗传性血色素沉着症,也是溶血性贫血和慢性肝病中铁过载的原因。铁调素的调节很复杂,其对铁的反应仍未完全了解。

目的

研究铁对肝癌细胞或原代肝细胞中各种已确立的铁调素信号通路的直接作用。

方法

通过定量实时(qRT)-PCR研究铁调素mRNA表达,实验中使用了多种形式的铁,包括柠檬酸铁铵(FAC),实验对象为肝癌细胞(Huh7)、小鼠原代肝细胞以及佛波酯分化的THP-1单核细胞与Huh7细胞建立的共培养模型。为分析铁调素信号,研究了对骨形态发生蛋白6(BMP6)、白细胞介素(IL)-6、IL-1β、缺氧和脂多糖(LPS)的反应。通过qRT-PCR评估铁调素和小的抗五聚体蛋白6(SMAD6)mRNA水平,并通过蛋白质印迹分析磷酸化信号转导和转录激活因子3(磷酸化-STAT3)、STAT3、磷酸化-SMAD1/5/8和SMAD1蛋白的表达。

结果

所有三价铁形式,包括FAC,在无毒剂量下能以时间和剂量依赖性方式有效阻断Huh7细胞或原代肝细胞中铁调素mRNA表达(P<0.001;P<0.05)。铁螯合剂水杨醛异烟酰腙(SIH)和去铁胺可有效减弱铁调素的阻断作用(P<0.001)。FAC还抑制BMP6、缺氧、IL-1β和IL-6介导的铁调素诱导(P<0.001;P<0.001;P<0.05;P<0.001),并且FAC在共培养模型中也抑制LPS介导的肝脏铁调素诱导(P<0.001)。此外,FAC在基础状态或BMP6刺激后降低SMAD6 mRNA和p-SMAD1/5/8蛋白表达(P<0.05;P<0.01),并且FAC在缺氧条件下也降低SMAD6和p-SMAD1/5/8表达(P<0.01;P<0.05)。然而,FAC对基础状态或各种刺激后磷酸化-STAT3蛋白表达无显著影响。值得注意的是,在存在BMP/SMAD信号通路抑制剂盐酸LDN193189(LDN)的情况下,与单独使用LDN相比,FAC无法进一步降低铁调素、SMAD6和p-SMAD1/5/8表达。

结论

铁通过BMP/SMAD途径直接阻断肝细胞铁调素信号,但独立于STAT3。这种机制可能在许多病理生理状况下导致持续的铁过载,最终导致铁调素持续受抑制的恶性循环。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8d2d/8568584/5f4250d852eb/WJH-13-1378-g001.jpg

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