Tabrez Syed Shamsh, Sharma Ravi Datta, Jain Vaibhav, Siddiqui Atif Ahmed, Mukhopadhyay Arnab
Molecular Aging Laboratory, National Institute of Immunology, Aruna Asaf Ali Marg, New Delhi, 10067, India.
Amity Institute of Biotechnology (AIB), Amity University Haryana, Panchgaon, Manesar, Haryana, 122413, India.
Nat Commun. 2017 Aug 21;8(1):306. doi: 10.1038/s41467-017-00370-5.
Alternative splicing (AS) coupled to nonsense-mediated decay (AS-NMD) is a conserved mechanism for post-transcriptional gene regulation. Here we show that, during dietary restriction (DR), AS is enhanced in Caenorhabditis elegans and mice. A splicing mediator hrpu-1 regulates a significant part of these AS events in C. elegans; knocking it down suppresses DR-mediated longevity. Concurrently, due to increased AS, NMD pathway genes are upregulated and knocking down UPF1 homologue smg-2 suppresses DR lifespan. Knockdown of NMD during DR significantly increases the inclusion of PTC-containing introns and the lengths of the 3'UTRs. Finally, we demonstrate that PHA-4/FOXA transcriptionally regulates the AS-NMD genes. Our study suggests that DR uses AS to amplify the proteome, supporting physiological remodelling required for enhanced longevity. This increases the dependence on NMD, but also helps fine-tune the expression of metabolic and splicing mediators. AS-NMD may thus provide an energetically favourable level of dynamic gene expression control during dietary restriction.Alternative splicing coupled to nonsense-mediated decay (AS-NMD) is a conserved mechanism for post-transcriptional gene regulation. Here, the authors provide evidence that AS-NMD is enhanced during dietary restriction (DR) and is required for DR-mediated longevity assurance in C. elegans.
与无义介导的衰变偶联的可变剪接(AS-NMD)是一种保守的转录后基因调控机制。我们在此表明,在饮食限制(DR)期间,秀丽隐杆线虫和小鼠中的可变剪接增强。剪接调节因子hrpu-1调控秀丽隐杆线虫中这些可变剪接事件的很大一部分;敲低它会抑制饮食限制介导的寿命延长。同时,由于可变剪接增加,无义介导的衰变途径基因上调,敲低UPF1同源物smg-2会抑制饮食限制下的寿命。在饮食限制期间敲低无义介导的衰变会显著增加含提前终止密码子的内含子的包含率以及3'非翻译区的长度。最后,我们证明PHA-4/FOXA转录调控AS-NMD基因。我们的研究表明,饮食限制利用可变剪接来扩大蛋白质组,支持延长寿命所需的生理重塑。这增加了对无义介导的衰变的依赖性,但也有助于微调代谢和剪接调节因子的表达。因此,在饮食限制期间,AS-NMD可能提供了一种能量上有利的动态基因表达控制水平。与无义介导的衰变偶联的可变剪接(AS-NMD)是一种保守的转录后基因调控机制。在此,作者提供证据表明,在饮食限制(DR)期间AS-NMD增强,并且是秀丽隐杆线虫中饮食限制介导的寿命保证所必需的。