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首页> 外文期刊>Molecular BioSystems >Deletion of btn1, an orthologue of CLN3, increases glycolysis and perturbs amino acid metabolism in the fission yeast model of Batten disease
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Deletion of btn1, an orthologue of CLN3, increases glycolysis and perturbs amino acid metabolism in the fission yeast model of Batten disease

机译:删除batn病裂变酵母模型中CLN3的直系同源基因btn1会增加糖酵解并扰乱氨基酸代谢

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摘要

The neuronal ceroid lipofuscinoses (NCLs) constitute a group of autosomal recessive neurodegenerative diseases affecting children. To date, the disease pathogenesis remains unknown, although the role of lysosomal impairment is widely recognized across the different diseases. Recently, the creation of simple models of juvenile NCL (Batten disease) has provided additional insights into the disease mechanism at the molecular level. We report defects in metabolism identified in the Schizosacchromyces pombe yeast model, where btnl, the orthologue of CLN3, has been deleted, using a metabolomics approach based on high resolution ~1H and ~(13)C NMR spectroscopy. Such changes represent the first documented metabolic changes associated with deletion of btn1. A decrease in extracellular glucose and increases in the concentration of extracellular ethanol and alanine labelling demonstrate increased glycolytic flux that may arise from vacuolar impairment, whilst amino acid changes were detected which were also in accordance with defective vacuolar functionality. That these changes were detected using a metabolomic based approach advocates its use to further analyse other yeast models of human disease to better understand the function of orthologue genes.
机译:神经元类固醇脂褐藻糖(NCL)构成影响儿童的常染色体隐性遗传性神经退行性疾病。迄今为止,尽管溶酶体损伤的作用已在不同疾病中得到广泛认可,但疾病的发病机理仍然未知。最近,少年NCL(巴顿病)的简单模型的创建提供了在分子水平上疾病机制的更多见解。我们报告了在裂殖酵母(Schizosacchromyces pombe)酵母模型中鉴定出的代谢缺陷,其中使用基于高分辨率〜1H和〜(13)C NMR光谱的代谢组学方法删除了CLN3直系同源物btnl。此类变化代表与btn1缺失相关的第一个已记录的代谢变化。细胞外葡萄糖的减少以及细胞外乙醇和丙氨酸标记浓度的增加表明可能由液泡损伤引起的糖酵解通量增加,而检测到的氨基酸变化也与液泡功能缺陷有关。使用基于代谢组学的方法检测到这些变化,提倡将其用于进一步分析人类疾病的其他酵母模型,以更好地了解直向同源基因的功能。

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  • 来源
    《Molecular BioSystems》 |2010年第6期|P.1093-1102|共10页
  • 作者单位

    Department of Biochemistry, University of Cambridge, Hopkins Building, Tennis Court Road, Cambridge, CB2 1QW, UK;

    rnMRC Laboratory for Molecular Cell Biology, University College London, Gower Street, London, WCIE 6BT, UK;

    rnMRC Laboratory for Molecular Cell Biology, University College London, Gower Street, London, WCIE 6BT, UK;

    rnMRC Laboratory for Molecular Cell Biology, University College London, Gower Street, London, WCIE 6BT, UK;

    Johnson & Johnson PR&D, Turnhoutseweg 30, Beerse B-2340, Belgium;

    MRC Laboratory for Molecular Cell Biology, University College London, Gower Street, London, WCIE 6BT, UK Molecular Medicine Unit, UCL Institute of Child Health, University College London, UK Department of Genetics, Evolution and Environment, University College London, Gower Street, London, WC1E 6BT, UK;

    Department of Biochemistry, University of Cambridge, Hopkins Building, Tennis Court Road, Cambridge, CB2 1QW, UK The Cambridge Centre for Systems Biology, University of Cambridge, Hopkins Building, Tennis Court Road, Cambridge, CB2 1GA, UK;

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