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氧化还原介导的进化上保守的转录因子 HLH-2/Tcf3/E2A 对衰老和健康寿命的调节。

Redox-mediated regulation of aging and healthspan by an evolutionarily conserved transcription factor HLH-2/Tcf3/E2A.

机构信息

Energy Metabolism Laboratory, Institute of Translational Medicine, Department of Health Sciences and Technology, Swiss Federal Institute of Technology (ETH) Zurich, Schwerzenbach, CH-8603, Switzerland.

Albert Einstein College of Medicine, Departments of Genetics and of Medicine, Bronx, NY, 10461, USA.

出版信息

Redox Biol. 2020 May;32:101448. doi: 10.1016/j.redox.2020.101448. Epub 2020 Feb 4.

Abstract

Physiological aging is a complex process, influenced by a plethora of genetic and environmental factors. While being far from fully understood, a number of common aging hallmarks have been elucidated in recent years. Among these, transcriptomic alterations are hypothesized to represent a crucial early manifestation of aging. Accordingly, several transcription factors (TFs) have previously been identified as important modulators of lifespan in evolutionarily distant model organisms. Based on a set of TFs conserved between nematodes, zebrafish, mice, and humans, we here perform a RNA interference (RNAi) screen in C. elegans to discover evolutionarily conserved TFs impacting aging. We identify a basic helix-loop-helix TF, named HLH-2 in nematodes (Tcf3/E2A in mammals), to exert a pronounced lifespan-extending effect in C. elegans upon impairment. We further show that its impairment impacts cellular energy metabolism, increases parameters of healthy aging, and extends nematodal lifespan in a ROS-dependent manner. We then identify arginine kinases, orthologues of mammalian creatine kinases, as a target of HLH-2 transcriptional regulation, serving to mediate the healthspan-promoting effects observed upon impairment of hlh-2 expression. Consistently, HLH-2 is shown to epistatically interact with core components of known lifespan-regulating pathways, i.e. AAK-2/AMPK and LET-363/mTOR, as well as the aging-related TFs SKN-1/Nrf2 and HSF-1. Lastly, single-nucelotide polymorphisms (SNPs) in Tcf3/E2A are associated with exceptional longevity in humans. Together, these findings demonstrate that HLH-2 regulates energy metabolism via arginine kinases and thereby affects the aging phenotype dependent on ROS-signaling and established canonical effectors.

摘要

生理衰老过程复杂,受到众多遗传和环境因素的影响。尽管目前尚未完全了解衰老过程,但近年来已经阐明了一些常见的衰老标志。其中,转录组改变被认为是衰老的一个关键早期表现。因此,先前已经确定了几种转录因子(TFs)作为进化上不同的模式生物中寿命的重要调节剂。基于线虫、斑马鱼、小鼠和人类之间保守的一组 TFs,我们在此在秀丽隐杆线虫中进行 RNA 干扰(RNAi)筛选,以发现影响衰老的进化保守 TFs。我们鉴定了一种基本螺旋-环-螺旋 TF,线虫中称为 HLH-2(哺乳动物中称为 Tcf3/E2A),在受损时对线虫的寿命有显著的延长作用。我们进一步表明,其受损会影响细胞能量代谢,增加健康衰老的参数,并以 ROS 依赖的方式延长线虫的寿命。然后,我们确定精氨酸激酶是 HLH-2 转录调节的靶标,是哺乳动物肌酸激酶的同源物,可介导受损 hlh-2 表达时观察到的健康寿命促进作用。一致地,HLH-2 与已知寿命调节途径的核心成分,即 AAK-2/AMPK 和 LET-363/mTOR,以及与衰老相关的 TFs SKN-1/Nrf2 和 HSF-1,表现出上位相互作用。最后,Tcf3/E2A 中的单核苷酸多态性(SNPs)与人类的异常长寿有关。总之,这些发现表明 HLH-2 通过精氨酸激酶调节能量代谢,从而影响依赖 ROS 信号和既定经典效应物的衰老表型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f6fb/7096751/a07a277c4c02/gr1.jpg

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