A maternal high-fat diet induces fetal origins of NASH-HCC in mice

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作者
Takao Takiyama
Toshihiro Sera
Masanori Nakamura
Masato Hoshino
Kentaro Uesugi
Shin-ichi Horike
Makiko Meguro-Horike
Ryoichi Bessho
Yuri Takiyama
Hiroya Kitsunai
Yasutaka Takeda
Kazuki Sawamoto
Naoto Yagi
Yuji Nishikawa
Yumi Takiyama
机构
[1] Asahikawa Medical University,Division of Diabetes, Department of Medicine
[2] Kyushu University,Department of Mechanical Engineering, Faculty of Engineering
[3] Nagoya Institute of Technology,Department of Electrical and Mechanical Engineering
[4] Japan Synchrotron Radiation Research Institute,Advanced Science Research Center
[5] Kanazawa University,Department of Pathology
[6] Asahikawa Medical University,undefined
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Scientific Reports | / 12卷
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摘要
Maternal overnutrition affects offspring susceptibility to nonalcoholic steatohepatitis (NASH). Male offspring from high-fat diet (HFD)-fed dams developed a severe form of NASH, leading to highly vascular tumor formation. The cancer/testis antigen HORMA domain containing protein 1 (HORMAD1), one of 146 upregulated differentially expressed genes in fetal livers from HFD-fed dams, was overexpressed with hypoxia-inducible factor 1 alpha (HIF-1alpha) in hepatoblasts and in NASH-based hepatocellular carcinoma (HCC) in offspring from HFD-fed dams at 15 weeks old. Hypoxia substantially increased Hormad1 expression in primary mouse hepatocytes. Despite the presence of three putative hypoxia response elements within the mouse Hormad1 gene, the Hif-1alpha siRNA only slightly decreased hypoxia-induced Hormad1 mRNA expression. In contrast, N-acetylcysteine, but not rotenone, inhibited hypoxia-induced Hormad1 expression, indicating its dependency on nonmitochondrial reactive oxygen species production. Synchrotron-based phase-contrast micro-CT of the fetuses from HFD-fed dams showed significant enlargement of the liver accompanied by a consistent size of the umbilical vein, which may cause hypoxia in the fetal liver. Based on these findings, a maternal HFD induces fetal origins of NASH/HCC via hypoxia, and HORMAD1 is a potential therapeutic target for NASH/HCC.
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