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Metabolic programming a lean phenotype by deregulation of RNA polymerase III.

Citation
Willis, I. M., et al. “Metabolic Programming A Lean Phenotype By Deregulation Of Rna Polymerase Iii.”. Proceedings Of The National Academy Of Sciences Of The United States Of America, pp. 12182-12187.
Center Albert Einstein College of Medicine
Author Ian M Willis, Robyn D Moir, Nouria Hernandez
Keywords Maf1, RNA polymerase III, futile cycle, metabolic inefficiency, metabolomics
Abstract

As a master negative regulator of RNA polymerase (Pol) III, Maf1 modulates transcription in response to nutrients and stress to balance the production of highly abundant tRNAs, 5S rRNA, and other small noncoding RNAs with cell growth and maintenance. This regulation of Pol III transcription is important for energetic economy as mice lacking are lean and resist weight gain on normal and high fat diets. The lean phenotype of knockout (KO) mice is attributed in part to metabolic inefficiencies which increase the demand for cellular energy and elevate catabolic processes, including autophagy/lipophagy and lipolysis. A futile RNA cycle involving increased synthesis and turnover of Pol III transcripts has been proposed as an important driver of these changes. Here, using targeted metabolomics, we find changes in the liver of fed and fasted KO mice consistent with the function of mammalian Maf1 as a chronic Pol III repressor. Differences in long-chain acylcarnitine levels suggest that energy demand is higher in the fed state of KO mice versus the fasted state. Quantitative metabolite profiling supports increased activity in the TCA cycle, the pentose phosphate pathway, and the urea cycle and reveals changes in nucleotide levels and the creatine system. Metabolite profiling also confirms key predictions of the futile RNA cycle hypothesis by identifying changes in many metabolites involved in nucleotide synthesis and turnover. Thus, constitutively high levels of Pol III transcription in KO mice reprogram central metabolic pathways and waste metabolic energy through a futile RNA cycle.

Year of Publication
2018
Journal
Proceedings of the National Academy of Sciences of the United States of America
Volume
115
Issue
48
Number of Pages
12182-12187
Date Published
12/2018
ISSN Number
1091-6490
DOI
10.1073/pnas.1815590115
Alternate Journal
Proc. Natl. Acad. Sci. U.S.A.
PMID
30429315
PMCID
PMC6275490
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