ABCB10 exports mitochondrial biliverdin, driving metabolic maladaptation in obesity

胆绿素 胆绿素还原酶 胆红素 生物化学 线粒体 脂肪变性 血红素 内分泌学 生物 化学 细胞生物学 血红素加氧酶
作者
Michaël Shum,C.A. Shintre,Thorsten Althoff,Vincent Gutierrez,Mayuko Segawa,Alexandra D. Saxberg,Melissa Martinez,R.J. Adamson,Margaret Young,Belinda Faust,Raffi Gharakhanian,Shi Su,Karthickeyan Chella Krishnan,Kiana Mahdaviani,Michaela Veliova,Dane M. Wolf,Jennifer Ngo,Laura Nocito,Linsey Stiles,Jeff Abramson
出处
期刊:Science Translational Medicine [American Association for the Advancement of Science]
卷期号:13 (594) 被引量:45
标识
DOI:10.1126/scitranslmed.abd1869
摘要

Although the role of hydrophilic antioxidants in the development of hepatic insulin resistance and nonalcoholic fatty liver disease has been well studied, the role of lipophilic antioxidants remains poorly characterized. A known lipophilic hydrogen peroxide scavenger is bilirubin, which can be oxidized to biliverdin and then reduced back to bilirubin by cytosolic biliverdin reductase. Oxidation of bilirubin to biliverdin inside mitochondria must be followed by the export of biliverdin to the cytosol, where biliverdin is reduced back to bilirubin. Thus, the putative mitochondrial exporter of biliverdin is expected to be a major determinant of bilirubin regeneration and intracellular hydrogen peroxide scavenging. Here, we identified ABCB10 as a mitochondrial biliverdin exporter. ABCB10 reconstituted into liposomes transported biliverdin, and ABCB10 deletion caused accumulation of biliverdin inside mitochondria. Obesity with insulin resistance up-regulated hepatic ABCB10 expression in mice and elevated cytosolic and mitochondrial bilirubin content in an ABCB10-dependent manner. Revealing a maladaptive role of ABCB10-driven bilirubin synthesis, hepatic ABCB10 deletion protected diet-induced obese mice from steatosis and hyperglycemia, improving insulin-mediated suppression of glucose production and decreasing lipogenic SREBP-1c expression. Protection was concurrent with enhanced mitochondrial function and increased inactivation of PTP1B, a phosphatase disrupting insulin signaling and elevating SREBP-1c expression. Restoration of cellular bilirubin content in ABCB10 KO hepatocytes reversed the improvements in mitochondrial function and PTP1B inactivation, demonstrating that bilirubin was the maladaptive effector linked to ABCB10 function. Thus, we identified a fundamental transport process that amplifies intracellular bilirubin redox actions, which can exacerbate insulin resistance and steatosis in obesity.
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