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首页> 外文期刊>Human Molecular Genetics >Disruption of adaptive energy metabolism and elevated ribosomal p-S6K1 levels contribute to INCL pathogenesis: partial rescue by resveratrol
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Disruption of adaptive energy metabolism and elevated ribosomal p-S6K1 levels contribute to INCL pathogenesis: partial rescue by resveratrol

机译:适应性能量代谢的中断和核糖体p-S6K1水平升高与INCL发病机理有关:白藜芦醇可部分缓解

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The infantile neuronal ceroid lipofuscinosis (INCL) is a devastating neurodegenerative lysosomal storage disease. Despite our knowledge that palmitoyl-protein thioesterase-1 (PPT1)-deficiency causes INCL, the molecular mechanism(s) of neurodegeneration and the drastically reduced lifespan of these patients remain poorly understood. Consequently, an effective treatment for this disease is currently unavailable. We previously reported that oxidative stress-mediated abnormality in mitochondria activates caspases-9 pathway of apoptosis in INCL fibroblasts and in neurons of Ppt1-knockout (Ppt1-KO) mice, which mimic INCL. Since mitochondria play critical roles in maintaining cellular energy homeostasis, we hypothesized that oxidative stress-mediated disruption of energy metabolism and homeostasis may contribute to INCL pathogenesis. We report here that, in cultured INCL fibroblasts and in the brain tissues of Ppt1-KO mice, the NAD+/NADH ratio, the levels of phosphorylated-AMPK (p-AMPK), peroxisome proliferator-activated receptor-γ (PPARγ) coactivator-1α (PGC-1α) and Silent Information Regulator T1 (SIRT1) are markedly down-regulated. This suggested an abnormality in AMPK/SIRT1/PGC-1α signaling pathway of energy metabolism. Moreover, we found that, in INCL fibroblasts and in the Ppt1-KO mice, phosphorylated-S6K-1 (p-S6K1) levels, which inversely correlate with lifespan, are markedly elevated. Most importantly, resveratrol (RSV), an antioxidant polyphenol, elevated the NAD+/NADH ratio, levels of ATP, p-AMPK, PGC-1α and SIRT1 while decreasing the level of p-S6K1 in both INCL fibroblasts and in Ppt1-KO mice, which showed a modest increase in lifespan. Our results show that disruption of adaptive energy metabolism and increased levels of p-S6K1 are contributing factors in INCL pathogenesis and provide the proof of principle that small molecules such as RSV, which alleviate these abnormalities, may have therapeutic potential.
机译:婴儿神经元类脂褐藻病(INCL)是一种破坏性神经变性溶酶体贮积病。尽管我们知道棕榈酰蛋白硫酯酶-1(PPT1)缺乏会引起INCL,但对这些患者神经退行性变的分子机制和寿命的急剧减少仍然知之甚少。因此,目前尚无对该疾病的有效治疗方法。我们以前曾报道过,线粒体中氧化应激介导的异常激活了INCL成纤维细胞和模仿INCL的Ppt1-敲除(Ppt1-KO)小鼠神经元中凋亡的caspases-9途径。由于线粒体在维持细胞能量稳态中起着至关重要的作用,因此我们假设氧化应激介导的能量代谢和稳态破坏可能是INCL发病机制的原因。我们在这里报告,在培养的INCL成纤维细胞和Ppt1-KO小鼠的脑组织中,NAD + / NADH比值,磷酸化的AMPK(p-AMPK),过氧化物酶体增殖物激活的水平受体-γ(PPARγ)共激活因子-1α(PGC-1α)和沉默信息调节剂T1(SIRT1)明显下调。这提示能量代谢的AMPK / SIRT1 /PGC-1α信号通路异常。此外,我们发现,在INCL成纤维细胞和Ppt1-KO小鼠中,与寿命成反比的磷酸化S6K-1(p-S6K1)水平明显升高。最重要的是,抗氧化剂多酚白藜芦醇(RSV)可提高NAD + / NADH比,ATP,p-AMPK,PGC-1α和SIRT1的水平,同时降低两者中的p-S6K1的水平INCL成纤维细胞和Ppt1-KO小鼠体内,其寿命适度增加。我们的结果表明,适应性能量代谢的破坏和p-S6K1的水平升高是INCL发病机制的因素,并提供了原理性证据,证明减轻这些异常的小分子如RSV可能具有治疗潜力。

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  • 来源
    《Human Molecular Genetics 》 |2011年第6期| p.1111-1121| 共11页
  • 作者单位

    Section on Developmental Genetics, Program on Developmental Endocrinology and Genetics, Eunice Kennedy Shriver National Institute of Child Health and Human Development and;

    Section on Developmental Genetics, Program on Developmental Endocrinology and Genetics, Eunice Kennedy Shriver National Institute of Child Health and Human Development and;

    Section on Developmental Genetics, Program on Developmental Endocrinology and Genetics, Eunice Kennedy Shriver National Institute of Child Health and Human Development and;

    Section on Developmental Genetics, Program on Developmental Endocrinology and Genetics, Eunice Kennedy Shriver National Institute of Child Health and Human Development and;

    Section on Developmental Genetics, Program on Developmental Endocrinology and Genetics, Eunice Kennedy Shriver National Institute of Child Health and Human Development and;

    Department of Anesthesia and Surgical Services, NIH Clinical Center, National Institutes of Health, Bethesda, MD 20892-1830, USA;

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