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剖析长期葡萄糖代谢可确定老年小鼠代谢功能障碍的新易感期。

Dissecting Long-Term Glucose Metabolism Identifies New Susceptibility Period for Metabolic Dysfunction in Aged Mice.

作者信息

Chauhan Anuradha, Weiss Heike, Koch Franziska, Ibrahim Saleh M, Vera Julio, Wolkenhauer Olaf, Tiedge Markus

机构信息

Department of Systems Biology and Bioinformatics, Institute of Computer Science, University of Rostock, Rostock, Germany. Stellenbosch Institute for Advanced Study (STIAS), Wallenberg Research Centre at Stellenbosch University, Stellenbosch, South Africa.

Department of Medical Biochemistry and Molecular Biology, University of Rostock, Rostock, Germany.

出版信息

PLoS One. 2015 Nov 5;10(11):e0140858. doi: 10.1371/journal.pone.0140858. eCollection 2015.

Abstract

Metabolic disorders, like diabetes and obesity, are pathogenic outcomes of imbalance in glucose metabolism. Nutrient excess and mitochondrial imbalance are implicated in dysfunctional glucose metabolism with age. We used conplastic mouse strains with defined mitochondrial DNA (mtDNA) mutations on a common nuclear genomic background, and administered a high-fat diet up to 18 months of age. The conplastic mouse strain B6-mtFVB, with a mutation in the mt-Atp8 gene, conferred β-cell dysfunction and impaired glucose tolerance after high-fat diet. To our surprise, despite of this functional deficit, blood glucose levels adapted to perturbations with age. Blood glucose levels were particularly sensitive to perturbations at the early age of 3 to 6 months. Overall the dynamics consisted of a peak between 3-6 months followed by adaptation by 12 months of age. With the help of mathematical modeling we delineate how body weight, insulin and leptin regulate this non-linear blood glucose dynamics. The model predicted a second rise in glucose between 15 and 21 months, which could be experimentally confirmed as a secondary peak. We therefore hypothesize that these two peaks correspond to two sensitive periods of life, where perturbations to the basal metabolism can mark the system for vulnerability to pathologies at later age. Further mathematical modeling may perspectively allow the design of targeted periods for therapeutic interventions and could predict effects on weight loss and insulin levels under conditions of pre-diabetic obesity.

摘要

代谢紊乱,如糖尿病和肥胖症,是葡萄糖代谢失衡的致病后果。随着年龄增长,营养过剩和线粒体失衡与功能失调的葡萄糖代谢有关。我们使用了在共同核基因组背景上具有特定线粒体DNA(mtDNA)突变的同核异质小鼠品系,并在18个月龄之前给予高脂饮食。同核异质小鼠品系B6-mtFVB,其mt-Atp8基因发生突变,在高脂饮食后出现β细胞功能障碍和糖耐量受损。令我们惊讶的是,尽管存在这种功能缺陷,但血糖水平会随着年龄的增长而适应干扰。血糖水平在3至6个月的早期对干扰特别敏感。总体而言,动态变化包括3至6个月之间的一个峰值,随后在12个月龄时适应。借助数学模型,我们描绘了体重、胰岛素和瘦素如何调节这种非线性血糖动态变化。该模型预测在15至21个月之间血糖会再次升高,这可以通过实验确认为第二个峰值。因此,我们假设这两个峰值对应于生命中的两个敏感期,在此期间基础代谢的干扰可能会使系统在晚年易患疾病。进一步的数学模型可能有望为治疗干预设计有针对性的时期,并可以预测在糖尿病前期肥胖情况下对体重减轻和胰岛素水平的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/488b/4634931/0508822c4d94/pone.0140858.g001.jpg

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