糖酵解增强对心脏衰老的影响

IF 5.3 2区 医学 Q1 GERIATRICS & GERONTOLOGY
Anna Faakye, Kylene M. Harold, Satoshi Matsuzaki, Atul Pranay, Maria F. Mendez Garcia, Brooke L. Loveland, Sandra N. Rigsby, Frederick F. Peelor, Craig Eyster, Benjamin F. Miller, Timothy M. Griffin, Michael Kinter, Ying Ann Chiao, Kenneth M. Humphries
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引用次数: 0

摘要

心脏老化与代谢变化有关,包括对糖酵解的依赖增加,以及对心血管疾病的易感性增加。本研究利用糖hi小鼠模型探讨了心脏糖酵解增强与衰老之间的关系,其特征是糖酵解增强。我们比较了老龄小鼠(21 - 24月龄)和野生型小鼠(WT)的心功能、代谢、线粒体性能和衰老特征。我们的研究结果显示,与WT小鼠相比,老年糖hi小鼠的心功能略有下降,心脏大小和胶原蛋白浓度存在性别特异性差异。女性糖hi心脏表现为肥大但无纤维化,而男性则表现为胶原蛋白水平升高。全身代谢评估显示,不同基因型的能量消耗和呼吸模式相似,女性在代谢方面表现出较少的与昼夜节律相关的变化。线粒体分析显示,年老的糖hi心脏维持着有利于糖酵解的代谢适应,但没有表现出明显的生物能量功能障碍或氧化应激。丙酮酸脱氢酶活性,最初在年轻的糖hi心脏中升高,随着年龄的增长正常化到WT水平。蛋白质组学和代谢组学分析强调了基因型之间的不同特征,糖hi心脏表现出糖酵解酶水平升高和脂肪酸氧化蛋白丰度降低。尽管存在这些差异,但不同基因型之间的氧化应激、蛋白质停滞和细胞衰老指标是相似的,表明衰老相关功能障碍没有加速。这项研究表明,增加心脏糖酵解本身并不足以驱动加速心脏老化。相反,老年糖hi心脏的代谢和功能变化反映了适应性而不是病理性衰退,这为干预心脏衰老提供了潜在的代谢靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The effect of enhanced glycolysis on cardiac aging

Cardiac aging is associated with metabolic changes, including an increased reliance on glycolysis, and an increased susceptibility to cardiovascular diseases. This study explores the relationship between enhanced cardiac glycolysis and aging using the GlycoHi mouse model, characterized by constitutively elevated glycolysis. We compared cardiac function, metabolism, mitochondrial performance, and hallmarks of aging between aged (21 and 24 months) GlycoHi and wild-type (WT) mice across sexes. Our findings reveal modest reductions in cardiac function in aged GlycoHi mice compared to WT mice, with sex-specific differences in heart size and collagen concentration. Female GlycoHi hearts exhibited hypertrophy without fibrosis, while males showed elevated collagen levels. Whole-body metabolic assessments revealed similar energy expenditure and respiratory patterns across genotypes, with females displaying less circadian-associated variation in metabolism. Mitochondrial analyses showed that aged GlycoHi hearts maintained metabolic adaptations favoring glycolysis but did not exhibit significant bioenergetic dysfunction or oxidative stress. Pyruvate dehydrogenase activity, initially elevated in younger GlycoHi hearts, normalized to WT levels with age. Proteomic and metabolomic analyses highlighted distinct profiles between genotypes, with GlycoHi hearts exhibiting increased glycolytic enzyme levels and reduced abundance of fatty acid oxidation proteins. Despite these differences, indicators of oxidative stress, proteostasis, and cellular senescence were comparable between genotypes, suggesting no acceleration of aging-related dysfunction. This study demonstrates that increased cardiac glycolysis alone does not suffice to drive accelerated cardiac aging. Instead, metabolic and functional changes in aged GlycoHi hearts reflect adaptations rather than pathological declines, providing insights into potential metabolic targets for interventions against cardiac aging.

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来源期刊
GeroScience
GeroScience Medicine-Complementary and Alternative Medicine
CiteScore
10.50
自引率
5.40%
发文量
182
期刊介绍: GeroScience is a bi-monthly, international, peer-reviewed journal that publishes articles related to research in the biology of aging and research on biomedical applications that impact aging. The scope of articles to be considered include evolutionary biology, biophysics, genetics, genomics, proteomics, molecular biology, cell biology, biochemistry, endocrinology, immunology, physiology, pharmacology, neuroscience, and psychology.
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