转录因子
基因
癌症研究
表型
生物
锌指
化学
细胞生物学
遗传学
作者
Huabo Wang,NULL AUTHOR_ID,NULL AUTHOR_ID,Alexander Roberts,Clinton Van’t Land,Radhika Muzumdar,NULL AUTHOR_ID,Jerry Vockley,Edward V. Prochownik
标识
DOI:10.1002/advs.202401593
摘要
Abstract The “Mlx” and “Myc” transcription factor networks cross‐communicate and share many common gene targets. Myc's activity depends upon its heterodimerization with Max, whereas the Mlx Network requires that the Max‐like factor Mlx associate with the Myc‐like factors MondoA or ChREBP. The current work demonstrates that body‐wide Mlx inactivation, like that of Myc , accelerates numerous aging‐related phenotypes pertaining to body habitus and metabolism. The deregulation of numerous aging‐related Myc target gene sets is also accelerated. Among other functions, these gene sets often regulate ribosomal and mitochondrial structure and function, genomic stability, and aging. Whereas “ Myc KO” mice have an extended lifespan because of a lower cancer incidence, “ Mlx KO” mice have normal lifespans and a higher cancer incidence. Like Myc, the expression of Mlx, MondoA, and ChREBP and their control over their target genes deteriorate with age in both mice and humans. Collectively, these findings underscore the importance of lifelong and balanced cross‐talk between the two networks to maintain proper function and regulation of the many factors that can affect normal aging.
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