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Paradoxical activation of transcription factor SREBP1c and de novo lipogenesis by hepatocyte-selective ATP-citrate lyase depletion in obese mice.

Publication ,  Journal Article
Yenilmez, B; Kelly, M; Zhang, G-F; Wetoska, N; Ilkayeva, OR; Min, K; Rowland, L; DiMarzio, C; He, W; Raymond, N; Lifshitz, L; Pan, M; Han, X ...
Published in: J Biol Chem
October 2022

Hepatic steatosis associated with high-fat diet, obesity, and type 2 diabetes is thought to be the major driver of severe liver inflammation, fibrosis, and cirrhosis. Cytosolic acetyl CoA (AcCoA), a central metabolite and substrate for de novo lipogenesis (DNL), is produced from citrate by ATP-citrate lyase (ACLY) and from acetate through AcCoA synthase short chain family member 2 (ACSS2). However, the relative contributions of these two enzymes to hepatic AcCoA pools and DNL rates in response to high-fat feeding are unknown. We report here that hepatocyte-selective depletion of either ACSS2 or ACLY caused similar 50% decreases in liver AcCoA levels in obese mice, showing that both pathways contribute to the generation of this DNL substrate. Unexpectedly however, the hepatocyte ACLY depletion in obese mice paradoxically increased total DNL flux measured by D2O incorporation into palmitate, whereas in contrast, ACSS2 depletion had no effect. The increase in liver DNL upon ACLY depletion was associated with increased expression of nuclear sterol regulatory element-binding protein 1c and of its target DNL enzymes. This upregulated DNL enzyme expression explains the increased rate of palmitate synthesis in ACLY-depleted livers. Furthermore, this increased flux through DNL may also contribute to the observed depletion of AcCoA levels because of its increased conversion to malonyl CoA and palmitate. Together, these data indicate that in fat diet-fed obese mice, hepatic DNL is not limited by its immediate substrates AcCoA or malonyl CoA but rather by activities of DNL enzymes.

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Published In

J Biol Chem

DOI

EISSN

1083-351X

Publication Date

October 2022

Volume

298

Issue

10

Start / End Page

102401

Location

United States

Related Subject Headings

  • Sterol Regulatory Element Binding Protein 1
  • Palmitates
  • Mice, Obese
  • Mice
  • Malonyl Coenzyme A
  • Liver
  • Lipogenesis
  • Hepatocytes
  • Diabetes Mellitus, Type 2
  • Biochemistry & Molecular Biology
 

Citation

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Chicago
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Yenilmez, B., Kelly, M., Zhang, G.-F., Wetoska, N., Ilkayeva, O. R., Min, K., … Czech, M. P. (2022). Paradoxical activation of transcription factor SREBP1c and de novo lipogenesis by hepatocyte-selective ATP-citrate lyase depletion in obese mice. J Biol Chem, 298(10), 102401. https://doi.org/10.1016/j.jbc.2022.102401
Yenilmez, Batuhan, Mark Kelly, Guo-Fang Zhang, Nicole Wetoska, Olga R. Ilkayeva, Kyounghee Min, Leslie Rowland, et al. “Paradoxical activation of transcription factor SREBP1c and de novo lipogenesis by hepatocyte-selective ATP-citrate lyase depletion in obese mice.J Biol Chem 298, no. 10 (October 2022): 102401. https://doi.org/10.1016/j.jbc.2022.102401.
Yenilmez B, Kelly M, Zhang G-F, Wetoska N, Ilkayeva OR, Min K, et al. Paradoxical activation of transcription factor SREBP1c and de novo lipogenesis by hepatocyte-selective ATP-citrate lyase depletion in obese mice. J Biol Chem. 2022 Oct;298(10):102401.
Yenilmez, Batuhan, et al. “Paradoxical activation of transcription factor SREBP1c and de novo lipogenesis by hepatocyte-selective ATP-citrate lyase depletion in obese mice.J Biol Chem, vol. 298, no. 10, Oct. 2022, p. 102401. Pubmed, doi:10.1016/j.jbc.2022.102401.
Yenilmez B, Kelly M, Zhang G-F, Wetoska N, Ilkayeva OR, Min K, Rowland L, DiMarzio C, He W, Raymond N, Lifshitz L, Pan M, Han X, Xie J, Friedline RH, Kim JK, Gao G, Herman MA, Newgard CB, Czech MP. Paradoxical activation of transcription factor SREBP1c and de novo lipogenesis by hepatocyte-selective ATP-citrate lyase depletion in obese mice. J Biol Chem. 2022 Oct;298(10):102401.

Published In

J Biol Chem

DOI

EISSN

1083-351X

Publication Date

October 2022

Volume

298

Issue

10

Start / End Page

102401

Location

United States

Related Subject Headings

  • Sterol Regulatory Element Binding Protein 1
  • Palmitates
  • Mice, Obese
  • Mice
  • Malonyl Coenzyme A
  • Liver
  • Lipogenesis
  • Hepatocytes
  • Diabetes Mellitus, Type 2
  • Biochemistry & Molecular Biology