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Dietary restriction of individual amino acids stimulates unique molecular responses in mouse liver.

Spencer A Haws | Yang Liu | Cara L Green | Reji Babygirija | Eric A Armstrong | Anusha T Mehendale | Dudley W Lamming | John M Denu
bioRxiv : the preprint server for biology | 2023

Dietary protein and essential amino acid (EAA) restriction promotes favorable metabolic reprogramming, ultimately resulting in improvements to both health and lifespan. However, as individual EAAs have distinct catabolites and engage diverse downstream signaling pathways, it remains unclear to what extent shared or AA-specific molecular mechanisms promote diet-associated phenotypes. Here, we investigated the physiological and molecular effects of restricting either dietary methionine, leucine, or isoleucine (Met-R, Leu-R, and Ile-R) for 3 weeks in C57BL/6J male mice. While all 3 AA-depleted diets promoted fat and lean mass loss and slightly improved glucose tolerance, the molecular responses were more diverse; while hepatic metabolites altered by Met-R and Leu-R were highly similar, Ile-R led to dramatic changes in metabolites, including a 3-fold reduction in the oncometabolite 2-hydroxyglutarate. Pathways regulated in an EAA-specific manner included glycolysis, the pentose phosphate pathway (PPP), nucleotide metabolism, the TCA cycle and amino acid metabolism. Transcriptiome analysis and global profiling of histone post-translational modifications (PTMs) revealed different patterns of responses to each diet, although Met-R and Leu-R again shared similar transcriptional responses. While the pattern of global histone PTMs were largely unique for each dietary intervention, Met-R and Ile-R had similar changes in histone-3 methylation/acetylation PTMs at lysine-9. Few similarities were observed between the physiological or molecular responses to EAA restriction and treatment with rapamycin, an inhibitor of the mTORC1 AA-responsive protein kinase, indicating the response to EAA restriction may be largely independent of mTORC1. Together, these results demonstrate that dietary restriction of individual EAAs has unique, EAA-specific effects on the hepatic metabolome, epigenome, and transcriptome, and suggests that the specific EAAs present in dietary protein may play a key role at regulating health at the molecular level.

Pubmed ID: 38106163

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Associated grants

  • Agency: NIA NIH HHS, United States
    Id: F31 AG081115
  • Agency: NCI NIH HHS, United States
    Id: P30 CA014520
  • Agency: NIA NIH HHS, United States
    Id: R01 AG084156
  • Agency: NIA NIH HHS, United States
    Id: RF1 AG056771
  • Agency: NIDDK NIH HHS, United States
    Id: R01 DK125859
  • Agency: NIA NIH HHS, United States
    Id: U01 AG081482

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Wisconsin-Madison University Biotechnology Center Gene Expression Center Core Facility (service resource)

RRID:SCR_017757

Core provides RNA library preparation services for Illumina, PacBio and Oxford Nanopore sequencing platforms. Single Cell RNA and Spatial Transcriptomics services are available with 10X Genomics technology. Provides RNA extraction, RNA QC and SNP genotyping and methylation bead array services. Provides support from project design through downstream analysis.Service facility, from hypothesis to publication.Microarray: expression and genotyping Affymetrix, Agilent, Nimblegen. Sequencing: RNA, gDNA, ChIP, Capture, 16SNovaSeq, HiSeq 2500, 3000, MiSeq.

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