Natural variation of chronological aging in the Saccharomyces cerevisiae species reveals diet-dependent mechanisms of life span control.

IF 5.4 Q1 GERIATRICS & GERONTOLOGY NPJ Aging and Mechanisms of Disease Pub Date : 2018-03-12 eCollection Date: 2018-01-01 DOI:10.1038/s41514-018-0022-6
Paul P Jung, Zhi Zhang, Nicole Paczia, Christian Jaeger, Tomasz Ignac, Patrick May, Carole L Linster
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引用次数: 22

Abstract

Aging is a complex trait of broad scientific interest, especially because of its intrinsic link with common human diseases. Pioneering work on aging-related mechanisms has been made in Saccharomyces cerevisiae, mainly through the use of deletion collections isogenic to the S288c reference strain. In this study, using a recently published high-throughput approach, we quantified chronological life span (CLS) within a collection of 58 natural strains across seven different conditions. We observed a broad aging variability suggesting the implication of diverse genetic and environmental factors in chronological aging control. Two major Quantitative Trait Loci (QTLs) were identified within a biparental population obtained by crossing two natural isolates with contrasting aging behavior. Detection of these QTLs was dependent upon the nature and concentration of the carbon sources available for growth. In the first QTL, the RIM15 gene was identified as major regulator of aging under low glucose condition, lending further support to the importance of nutrient-sensing pathways in longevity control under calorie restriction. In the second QTL, we could show that the SER1 gene, encoding a conserved aminotransferase of the serine synthesis pathway not previously linked to aging, is causally associated with CLS regulation, especially under high glucose condition. These findings hint toward a new mechanism of life span control involving a trade-off between serine synthesis and aging, most likely through modulation of acetate and trehalose metabolism. More generally it shows that genetic linkage studies across natural strains represent a promising strategy to further unravel the molecular basis of aging.

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酿酒酵母菌的自然年龄变化揭示了饮食依赖的寿命控制机制。
衰老是一个具有广泛科学兴趣的复杂特征,特别是因为它与人类常见疾病的内在联系。研究衰老相关机制的开创性工作主要是通过使用与S288c参考菌株等基因的缺失收集。在这项研究中,我们使用最近发表的一种高通量方法,量化了58种自然菌株在7种不同条件下的时间顺序寿命(CLS)。我们观察到广泛的衰老变异性,表明不同的遗传和环境因素在时间衰老控制中的含义。通过对两个具有不同衰老行为的天然分离株杂交获得的双亲本群体,鉴定出两个主要的数量性状位点(qtl)。这些qtl的检测取决于生长所需碳源的性质和浓度。在第一个QTL中,RIM15基因被确定为低糖条件下衰老的主要调节因子,进一步支持了营养感应途径在热量限制下长寿控制中的重要性。在第二个QTL中,我们可以证明编码丝氨酸合成途径的保守转氨酶的SER1基因与CLS调控有因果关系,特别是在高糖条件下。这些发现暗示了一种新的控制寿命的机制,涉及丝氨酸合成和衰老之间的权衡,最有可能通过调节醋酸盐和海藻糖代谢。更普遍的是,它表明跨自然菌株的遗传连锁研究代表了进一步揭示衰老的分子基础的有希望的策略。
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NPJ Aging and Mechanisms of Disease
NPJ Aging and Mechanisms of Disease Medicine-Geriatrics and Gerontology
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期刊介绍: npj Aging and Mechanisms of Disease is an online open access journal that provides a forum for the world’s most important research in the fields of aging and aging-related disease. The journal publishes papers from all relevant disciplines, encouraging those that shed light on the mechanisms behind aging and the associated diseases. The journal’s scope includes, but is not restricted to, the following areas (not listed in order of preference): • cellular and molecular mechanisms of aging and aging-related diseases • interventions to affect the process of aging and longevity • homeostatic regulation and aging • age-associated complications • translational research into prevention and treatment of aging-related diseases • mechanistic bases for epidemiological aspects of aging-related disease.
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