Biological sex and DNA repair deficiency drive Alzheimer's disease via systemic metabolic remodeling and brain mitochondrial dysfunction

被引:52
作者
Demarest, Tyler G. [1 ,2 ]
Varma, Vijay R. [3 ]
Estrada, Darlene [1 ]
Babbar, Mansi [1 ]
Basu, Sambuddha [1 ]
Mahajan, Uma, V [3 ]
Moaddel, Ruin [4 ]
Croteau, Deborah L. [1 ]
Thambisetty, Madhav [3 ]
Mattson, Mark P. [2 ]
Bohr, Vilhelm A. [1 ]
机构
[1] NIA, Lab Mol Gerontol, NIH, Baltimore, MD 21224 USA
[2] NIA, Lab Neurosci, NIH, Baltimore, MD 21224 USA
[3] NIA, Unit Clin & Translat Neurosci, Lab Behav Neurosci, NIH, Baltimore, MD 21224 USA
[4] NIA, Lab Clin Invest, NIH, Baltimore, MD 21224 USA
基金
美国国家卫生研究院;
关键词
Mitochondria; Metabolism; Oxidative phosphorylation; Pentose phosphate pathway; Glycolysis; Tricarboxylic acid cycle; Ketone; Lipid; Glucose-6-phosphate; Hexokinase; BASE EXCISION-REPAIR; INSULIN-RESISTANCE; GENDER-DIFFERENCES; POLYMERASE BETA; MOUSE MODEL; RISK; DEHYDROGENASE; DEMENTIA; AGE; PATHOLOGY;
D O I
10.1007/s00401-020-02152-8
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Alzheimer's disease (AD) is an incurable neurodegenerative disease that is more prevalent in women. The increased risk of AD in women is not well understood. It is well established that there are sex differences in metabolism and that metabolic alterations are an early component of AD. We utilized a cross-species approach to evaluate conserved metabolic alterations in the serum and brain of human AD subjects, two AD mouse models, a human cell line, and two Caenorhabditis elegans AD strains. We found a mitochondrial complex I-specific impairment in cortical synaptic brain mitochondria in female, but not male, AD mice. In the hippocampus, Pol beta haploinsufficiency caused synaptic complex I impairment in male and female mice, demonstrating the critical role of DNA repair in mitochondrial function. In non-synaptic, glial-enriched, mitochondria from the cortex and hippocampus, complex II-dependent respiration increased in female, but not male, AD mice. These results suggested a glial upregulation of fatty acid metabolism to compensate for neuronal glucose hypometabolism in AD. Using an unbiased metabolomics approach, we consistently observed evidence of systemic and brain metabolic remodeling with a shift from glucose to lipid metabolism in humans with AD, and in AD mice. We determined that this metabolic shift is necessary for cellular and organismal survival in C. elegans, and human cell culture AD models. We observed sex-specific, systemic, and brain metabolic alterations in humans with AD, and that these metabolite changes significantly correlate with amyloid and tau pathology. Among the most significant metabolite changes was the accumulation of glucose-6-phosphate in AD, an inhibitor of hexokinase and rate-limiting metabolite for the pentose phosphate pathway (PPP). Overall, we identified novel mechanisms of glycolysis inhibition, PPP, and tricarboxylic acid cycle impairment, and a neuroprotective augmentation of lipid metabolism in AD. These findings support a sex-targeted metabolism-modifying strategy to prevent and treat AD.
引用
收藏
页码:25 / 47
页数:23
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