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Quantitative subcellular acyl-CoA analysis reveals distinct nuclear metabolism and isoleucine-dependent histone propionylation.

Publication ,  Journal Article
Trefely, S; Huber, K; Liu, J; Noji, M; Stransky, S; Singh, J; Doan, MT; Lovell, CD; von Krusenstiern, E; Jiang, H; Bostwick, A; Pepper, HL ...
Published in: Molecular cell
January 2022

Quantitative subcellular metabolomic measurements can explain the roles of metabolites in cellular processes but are subject to multiple confounding factors. We developed stable isotope labeling of essential nutrients in cell culture-subcellular fractionation (SILEC-SF), which uses isotope-labeled internal standard controls that are present throughout fractionation and processing to quantify acyl-coenzyme A (acyl-CoA) thioesters in subcellular compartments by liquid chromatography-mass spectrometry. We tested SILEC-SF in a range of sample types and examined the compartmentalized responses to oxygen tension, cellular differentiation, and nutrient availability. Application of SILEC-SF to the challenging analysis of the nuclear compartment revealed a nuclear acyl-CoA profile distinct from that of the cytosol, with notable nuclear enrichment of propionyl-CoA. Using isotope tracing, we identified the branched chain amino acid isoleucine as a major metabolic source of nuclear propionyl-CoA and histone propionylation, thus revealing a new mechanism of crosstalk between metabolism and the epigenome.

Duke Scholars

Published In

Molecular cell

DOI

EISSN

1097-4164

ISSN

1097-2765

Publication Date

January 2022

Volume

82

Issue

2

Start / End Page

447 / 462.e6

Related Subject Headings

  • Spectrometry, Mass, Electrospray Ionization
  • Protein Processing, Post-Translational
  • Oxygen
  • Mitochondria
  • Mice
  • Metabolomics
  • Metabolome
  • Isoleucine
  • Humans
  • Histones
 

Citation

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Trefely, S., Huber, K., Liu, J., Noji, M., Stransky, S., Singh, J., … Snyder, N. W. (2022). Quantitative subcellular acyl-CoA analysis reveals distinct nuclear metabolism and isoleucine-dependent histone propionylation. Molecular Cell, 82(2), 447-462.e6. https://doi.org/10.1016/j.molcel.2021.11.006
Trefely, Sophie, Katharina Huber, Joyce Liu, Michael Noji, Stephanie Stransky, Jay Singh, Mary T. Doan, et al. “Quantitative subcellular acyl-CoA analysis reveals distinct nuclear metabolism and isoleucine-dependent histone propionylation.Molecular Cell 82, no. 2 (January 2022): 447-462.e6. https://doi.org/10.1016/j.molcel.2021.11.006.
Trefely S, Huber K, Liu J, Noji M, Stransky S, Singh J, et al. Quantitative subcellular acyl-CoA analysis reveals distinct nuclear metabolism and isoleucine-dependent histone propionylation. Molecular cell. 2022 Jan;82(2):447-462.e6.
Trefely, Sophie, et al. “Quantitative subcellular acyl-CoA analysis reveals distinct nuclear metabolism and isoleucine-dependent histone propionylation.Molecular Cell, vol. 82, no. 2, Jan. 2022, pp. 447-462.e6. Epmc, doi:10.1016/j.molcel.2021.11.006.
Trefely S, Huber K, Liu J, Noji M, Stransky S, Singh J, Doan MT, Lovell CD, von Krusenstiern E, Jiang H, Bostwick A, Pepper HL, Izzo L, Zhao S, Xu JP, Bedi KC, Rame JE, Bogner-Strauss JG, Mesaros C, Sidoli S, Wellen KE, Snyder NW. Quantitative subcellular acyl-CoA analysis reveals distinct nuclear metabolism and isoleucine-dependent histone propionylation. Molecular cell. 2022 Jan;82(2):447-462.e6.
Journal cover image

Published In

Molecular cell

DOI

EISSN

1097-4164

ISSN

1097-2765

Publication Date

January 2022

Volume

82

Issue

2

Start / End Page

447 / 462.e6

Related Subject Headings

  • Spectrometry, Mass, Electrospray Ionization
  • Protein Processing, Post-Translational
  • Oxygen
  • Mitochondria
  • Mice
  • Metabolomics
  • Metabolome
  • Isoleucine
  • Humans
  • Histones