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Hepatic ketogenic insufficiency reprograms hepatic glycogen metabolism and the lipidome

机译:肝生酮功能不全重新编程肝糖原代谢和脂质组

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摘要

While several molecular targets are under consideration, mechanistic underpinnings of the transition from uncomplicated nonalcoholic fatty liver disease (NAFLD) to nonalcoholic steatohepatitis (NASH) remain unresolved. Here we apply multiscale chemical profiling technologies to mouse models of deranged hepatic ketogenesis to uncover potential NAFLD driver signatures. Use of stable-isotope tracers, quantitatively tracked by nuclear magnetic resonance (NMR) spectroscopy, supported previous observations that livers of wild-type mice maintained long term on a high-fat diet (HFD) exhibit a marked increase in hepatic energy charge. Fed-state ketogenesis rates increased nearly 3-fold in livers of HFD-fed mice, a greater proportionate increase than that observed for tricarboxylic acid (TCA) cycle flux, but both of these contributors to overall hepatic energy homeostasis fueled markedly increased hepatic glucose production (HGP). Thus, to selectively determine the role of the ketogenic conduit on HGP and oxidative hepatic fluxes, we studied a ketogenesis-insufficient mouse model generated by knockdown of the mitochondrial isoform of 3-hydroxymethylglutaryl-CoA synthase (HMGCS2). In response to ketogenic insufficiency, TCA cycle flux in the fed state doubled and HGP increased more than 60%, sourced by a 3-fold increase in glycogenolysis. Finally, high-resolution untargeted metabolomics and shotgun lipidomics performed using ketogenesis-insufficient livers in the fed state revealed accumulation of bis(monoacylglycero)phosphates, which also accumulated in livers of other models commonly used to study NAFLD. In summary, natural and interventional variations in ketogenesis in the fed state strongly influence hepatic energy homeostasis, glucose metabolism, and the lipidome. Importantly, HGP remains tightly linked to overall hepatic energy charge, which includes both terminal fat oxidation through the TCA cycle and partial oxidation via ketogenesis.
机译:虽然几个分子靶标正在考虑中,但从简单的非酒精性脂肪肝疾病(NAFLD)到非酒精性脂肪性肝炎(NASH)过渡的机制基础仍未解决。在这里,我们将多尺度化学谱分析技术应用于失常的肝脏生酮的小鼠模型,以发现潜在的NAFLD驱动程序签名。通过核磁共振(NMR)光谱定量跟踪的稳定同位素示踪剂的使用,支持了先前的观察,即野生型小鼠的肝脏长期维持高脂饮食(HFD)表现出肝能量电荷的显着增加。饲喂HFD的小鼠肝脏中的摄食状态生酮率增加了近3倍,比三羧酸(TCA)循环通量观察到的成比例的增加更大,但是这两个因素都是总体肝能量稳态的重要推动因素,肝葡萄糖生成量显着增加(HGP)。因此,为了选择性地确定生酮导管在HGP和氧化性肝通量中的作用,我们研究了通过敲低3-羟甲基戊二酰辅酶A合酶(HMGCS2)的线粒体同工型而生成的生酮不足的小鼠模型。响应于生酮功能不全,在进食状态下,TCA循环通量增加了一倍,HGP增加了60%以上,这源于糖原分解的3倍增加。最后,在进食状态下使用生酮不足的肝脏进行的高分辨率非靶向代谢组学和shot弹枪脂质组学揭示了双(单酰基甘油)磷酸酯的蓄积,其也蓄积在通常用于研究NAFLD的其他模型的肝脏中。总之,在进食状态下生酮的自然变化和干预变化强烈影响肝能量稳态,葡萄糖代谢和脂质组。重要的是,HGP与整个肝脏能量电荷保持紧密联系,包括通过TCA循环进行的最终脂肪氧化和通过生酮作用进行的部分氧化。

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