Comprehensive Analysis of Metabolic Isozyme Targets in Cancer

Michal Marczyk1,2, Vignesh Gunasekharan1, David Casadevall3,4

  • 1Yale Cancer Center, Yale School of Medicine, New Haven, Connecticut.

Cancer Research
|March 5, 2022
PubMed

Insights

Cancer cells exhibit loss of isozyme diversity, creating vulnerabilities. Targeting cancer-dominant isozymes, like ACC1, offers a promising strategy for developing new anticancer therapies and repurposing existing drugs.

Area of Science:

  • Metabolic reprogramming in cancer
  • Cancer metabolism and isozyme diversity
  • Oncogenesis and metabolic plasticity

Background:

  • Metabolic reprogramming is a key feature of cancer development.
  • Loss of isozyme diversity (LID) contributes to metabolic alterations in cancer.
  • Isozymes, catalyzing identical reactions with distinct properties, can become cancer-dominant, representing therapeutic targets.

Purpose of the Study:

  • To systematically analyze isozyme expression patterns across multiple cancer types.
  • To identify cancer-dominant isozymes resulting from LID.
  • To assess the functional importance and therapeutic potential of these identified isozymes.

Main Methods:

  • Utilized The Cancer Genome Atlas (TCGA) mRNA expression data for 1,319 enzymatic reactions in 14 cancer types and matched normal tissues.
  • Analyzed Cancer Cell Line Encyclopedia (CCLE) data for over 600 cell lines to confirm expression patterns.
  • Performed genome-wide CRISPR and RNAi loss-of-function screens to evaluate functional importance.

Main Results:

  • Identified 357 reactions with LID in at least one cancer type.
  • Observed that 50% of LID-affected isozymes showed cancer-dominant expression in cell lines.
  • Found that 17% of cancer-dominant isozymes were critical for cell proliferation, with acetyl-CoA carboxylase 1 (ACC1) being a broadly shared and validated target.
  • Demonstrated that ACC1 inhibition reduced breast cancer cell viability and tumor growth in vivo, causing significant metabolic and transcriptional changes.

Conclusions:

  • The study systematically reveals cancer-specific metabolic plasticity driven by LID.
  • Identified numerous novel metabolic targets and validated ACC1 as a promising therapeutic target.
  • Highlights the potential for repurposing existing inhibitors for anticancer therapy by exploiting metabolic vulnerabilities.

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