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Dissecting the Gene Network of Dietary Restriction to Identify Evolutionarily Conserved Pathways and New Functional Genes

机译:剖析饮食限制的基因网络以识别进化保守的途径和新的功能基因

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摘要

Dietary restriction (DR), limiting nutrient intake from diet without causing malnutrition, delays the aging process and extends lifespan in multiple organisms. The conserved life-extending effect of DR suggests the involvement of fundamental mechanisms, although these remain a subject of debate. To help decipher the life-extending mechanisms of DR, we first compiled a list of genes that if genetically altered disrupt or prevent the life-extending effects of DR. We called these DR–essential genes and identified more than 100 in model organisms such as yeast, worms, flies, and mice. In order for other researchers to benefit from this first curated list of genes essential for DR, we established an online database called GenDR (). To dissect the interactions of DR–essential genes and discover the underlying lifespan-extending mechanisms, we then used a variety of network and systems biology approaches to analyze the gene network of DR. We show that DR–essential genes are more conserved at the molecular level and have more molecular interactions than expected by chance. Furthermore, we employed a guilt-by-association method to predict novel DR–essential genes. In budding yeast, we predicted nine genes related to vacuolar functions; we show experimentally that mutations deleting eight of those genes prevent the life-extending effects of DR. Three of these mutants (OPT2, FRE6, and RCR2) had extended lifespan under ad libitum, indicating that the lack of further longevity under DR is not caused by a general compromise of fitness. These results demonstrate how network analyses of DR using GenDR can be used to make phenotypically relevant predictions. Moreover, gene-regulatory circuits reveal that the DR–induced transcriptional signature in yeast involves nutrient-sensing, stress responses and meiotic transcription factors. Finally, comparing the influence of gene expression changes during DR on the interactomes of multiple organisms led us to suggest that DR commonly suppresses translation, while stimulating an ancient reproduction-related process.
机译:饮食限制(DR),限制饮食中的营养摄入而不会引起营养不良,延缓衰老过程并延长多种生物的寿命。 DR的延长寿命的保守作用提示了基本机制的参与,尽管这些仍然是争论的话题。为帮助破译DR的寿命延长机制,我们首先汇编了一系列基因,这些基因经遗传改变会破坏或阻止DR的寿命延长效应。我们称这些DR为必需基因,并在诸如酵母,蠕虫,果蝇和小鼠等模型生物中鉴定出100多个。为了使其他研究人员从DR的第一个精选基因列表中受益,我们建立了一个名为GenDR()的在线数据库。为了剖析DR必需基因的相互作用并发现潜在的寿命延长机制,我们然后使用了各种网络和系统生物学方法来分析DR的基因网络。我们显示,DR必需基因在分子水平上更保守,并且具有比偶然预期更多的分子相互作用。此外,我们采用了一种内的关联方法来预测新的DR必需基因。在发芽的酵母中,我们预测了与液泡功能相关的9个基因。我们通过实验证明,删除其中8个基因的突变可防止DR延长生命。这些突变体中的三个(OPT2,FRE6和RCR2)在任意情况下具有延长的寿命,这表明在DR下缺乏更长的寿命并不是由健康的普遍损害引起的。这些结果说明了如何使用GenDR对DR进行网络分析,以进行表型相关的预测。此外,基因调控回路揭示了DR诱导的酵母转录特征涉及营养感应,应激反应和减数分裂转录因子。最后,比较DR期间基因表达变化对多种生物的相互作用组的影响,我们认为DR通常会抑制翻译,同时刺激一个古老的繁殖相关过程。

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