Metabolic convergence on lipogenesis in RAS, BCR-ABL, and MYC-driven lymphoid malignancies

Daniel F Liefwalker1,2,3, Meital Ryan4, Zhichao Wang5

  • 1Department of Molecular and Medical Genetics, Oregon Health and Science University, Portland, OR, 97201, USA. liefwalk@ohsu.edu.

Cancer & Metabolism
|August 17, 2021
PubMed
Abstract

Insights

Lymphoid malignancies converge on de novo lipogenesis, a metabolic pathway crucial for cancer cell survival. Inhibiting this process with TOFA effectively kills cancer cells while sparing normal cells, offering a promising therapeutic strategy.

Area of Science:

  • Cancer Biology
  • Metabolic Reprogramming
  • Lipid Metabolism

Background:

  • Metabolic reprogramming is a hallmark of cancer, with therapeutic strategies often limited by unintended side effects and the integrative nature of metabolic substrate sourcing.
  • Lymphoid malignancies, despite varying oncogenic drivers (MYC, RAS, BCR-ABL), exhibit similar metabolic profiles, particularly a convergence on de novo lipogenesis.
  • Understanding this shared metabolic vulnerability is key to developing targeted therapies for diverse lymphoid cancers.

Purpose of the Study:

  • To investigate the convergence of MYC-, RAS-, and BCR-ABL-driven lymphoid malignancies on de novo lipogenesis.
  • To explore the role of MYC in mediating lipogenesis using metabolic tracing and profiling.
  • To evaluate the therapeutic potential of inhibiting de novo lipogenesis in lymphoid malignancies.

Main Methods:

  • Analysis of RNA-seq data to identify common metabolic pathways in lymphoma and leukemia.
  • Utilized in vitro cell lines and preclinical murine models (including T-ALL) of MYC-, RAS-, and BCR-ABL-driven lymphoid malignancies.
  • Employed 13C glucose tracing, untargeted metabolic profiling, and sensitivity assays to lipogenesis inhibitors like TOFA (5-(tetradecloxy)-2-furic acid).

Main Results:

  • De novo lipogenesis is a shared feature across multiple lymphoma subtypes driven by MYC, RAS, or BCR-ABL.
  • Inhibition of lipogenesis using TOFA induced significant cell death in vitro and in vivo, delaying tumor progression in transplanted lymphoma and T-ALL models.
  • Importantly, TOFA treatment did not cause significant cell death in non-malignant splenocytes, indicating therapeutic selectivity.

Conclusions:

  • De novo lipogenesis represents a common survival strategy and a clinically exploitable metabolic liability in lymphoid malignancies.
  • Targeting lipogenesis offers a promising therapeutic avenue with potential for selective toxicity towards cancer cells.
  • Further research into lipogenesis inhibitors like TOFA is warranted for the treatment of MYC-, RAS-, and BCR-ABL-driven lymphoid cancers.

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