The SIRT2/cMYC Pathway Inhibits Peroxidation-Related Apoptosis In Cholangiocarcinoma Through Metabolic Reprogramming

Lei Xu1, Lei Wang2, Lixing Zhou3

  • 1Department of Gastroenterology, Drum Tower Clinical Medical College of Nanjing Medical University, Nanjing 210008, China.

Neoplasia (New York, N.Y.)
|April 2, 2019
PubMed

Insights

The SIRT2/cMYC pathway drives cholangiocarcinoma (CCA) cell growth by altering glucose metabolism to produce serine and antioxidants, promoting tumor survival and poor prognosis. Targeting this pathway offers a potential therapeutic strategy for CCA.

Area of Science:

  • Oncology
  • Cancer Metabolism
  • Molecular Biology

Background:

  • Cholangiocarcinoma (CCA) is an aggressive cancer with poor prognosis, often diagnosed at advanced stages.
  • Metabolic reprogramming, including the Warburg effect, fuels tumor growth and survival.
  • The role of the SIRT2/cMYC pathway in CCA's metabolic alterations is not well understood.

Purpose of the Study:

  • To investigate the metabolic reprogramming function of the SIRT2/cMYC pathway in CCA.
  • To identify downstream targets of SIRT2/cMYC signaling in CCA.
  • To evaluate the therapeutic potential of targeting the SIRT2/cMYC pathway in CCA.

Main Methods:

  • Analysis of CCA RNA-Seq data from TCGA and patient samples.
  • Immunohistochemical detection, gene expression manipulation (suppression/overexpression), and apoptosis assays.
  • Seahorse analysis, metabolite tracing, and in vivo experiments to assess metabolic function and tumor proliferation.

Main Results:

  • The SIRT2/cMYC pathway promotes CCA cell proliferation.
  • PHDA1 and the serine synthesis pathway were identified as downstream targets.
  • Upregulated SIRT2/cMYC leads to reduced mitochondrial oxidative phosphorylation, increased glucose-to-serine conversion, and enhanced antioxidant production, contributing to poor survival.

Conclusions:

  • The SIRT2/cMYC pathway is crucial for metabolic reprogramming in CCA, shifting glucose metabolism towards serine synthesis for antioxidant production and stress resistance.
  • This pathway's role in promoting CCA cell survival and proliferation highlights it as a potential therapeutic target.

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