Pandit Awadhesh, Jain Vaibhav, Kumar Neeraj, Mukhopadhyay Arnab
Molecular Aging Laboratory, National Institute of Immunology, Aruna Asaf Ali Marg, New Delhi 110067, India.
Aging (Albany NY). 2014 Oct;6(10):835-55. doi: 10.18632/aging.100697.
Dietary restriction (DR) increases life span and delays the onset of age-related diseases across species. However, the molecular mechanisms have remained relatively unexplored in terms of gene regulation. InC. elegans, a popular model for aging studies, the FOXA transcription factor PHA-4 is a robust genetic regulator of DR, although little is known about how it regulates gene expression. We profiled the transcriptome and miRNAome of an eat-2 mutant, a genetic surrogate of DR, by Next Generation sequencing and find that most of the miRNAs are upregulated in the young-adult worms, none significantly downregulated. Interestingly, PHA-4 can potentially regulate the expression of most of these miRNA genes. Remarkably, many of the PHA-4-regulated genes that are induced during DR are also targets of the PHA-4-upregulated miRNAs, forming a large feed-forward gene regulatory network. The genes targeted by the feed-forward loops (FFLs) are enriched for functions related to ubiquitin-mediated decay, lysosomal autophagy, cellular signalling, protein folding etc., processes that play critical roles in DR and longevity. Together our data provides a framework for understanding the complex and unique regulatory network employed during DR, suggesting that PHA-4 employs such FFLs to fine-tune gene expression and instil robustness in the system during energy crisis.
饮食限制(DR)可延长多种物种的寿命并延缓与年龄相关疾病的发生。然而,在基因调控方面,其分子机制仍相对未被探索。在秀丽隐杆线虫(C. elegans)这个常用的衰老研究模型中,叉头转录因子PHA - 4是饮食限制的一种强大的遗传调节因子,尽管人们对其如何调控基因表达知之甚少。我们通过下一代测序对饮食限制的遗传替代物eat - 2突变体的转录组和微小RNA组进行了分析,发现大多数微小RNA在年轻成虫中上调,没有显著下调的。有趣的是,PHA - 4可能潜在地调控大多数这些微小RNA基因的表达。值得注意的是,许多在饮食限制期间被诱导的PHA - 4调控基因也是PHA - 4上调的微小RNA的靶标,形成了一个庞大的前馈基因调控网络。前馈环(FFL)靶向的基因在与泛素介导的降解、溶酶体自噬、细胞信号传导、蛋白质折叠等相关的功能中富集,这些过程在饮食限制和长寿中起关键作用。我们的数据共同提供了一个框架,用于理解饮食限制期间所采用的复杂且独特的调控网络,表明PHA - 4利用这种前馈环来微调基因表达,并在能量危机期间使系统具有稳健性。