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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.
Background:
Metabolic reprogramming is a central feature in many cancer subtypes and a hallmark of cancer. Many therapeutic strategies attempt to exploit this feature, often having unintended side effects on normal metabolic programs and limited efficacy due to integrative nature of metabolic substrate sourcing. Although the initiating oncogenic lesion may vary, tumor cells in lymphoid malignancies often share similar environments and potentially similar metabolic profiles. We examined cells from mouse models of MYC-, RAS-, and BCR-ABL-driven lymphoid malignancies and find a convergence on de novo lipogenesis. We explore the potential role of MYC in mediating lipogenesis by 13C glucose tracing and untargeted metabolic profiling. Inhibition of lipogenesis leads to cell death both in vitro and in vivo and does not induce cell death of normal splenocytes.
Methods:
We analyzed RNA-seq data sets for common metabolic convergence in lymphoma and leukemia. Using in vitro cell lines derived in from conditional MYC, RAS, and BCR-ABL transgenic murine models and oncogene-driven human cell lines, we determined gene regulation, metabolic profiles, and sensitivity to inhibition of lipogenesis in lymphoid malignancies. We utilize preclinical murine models and transgenic primary model of T-ALL to determine the effect of lipogenesis blockade across BCR-ABL-, RAS-, and c-MYC-driven lymphoid malignancies. Statistical significance was calculated using unpaired t-tests and one-way ANOVA.
Results:
This study illustrates that de novo lipid biogenesis is a shared feature of several lymphoma subtypes. Using cell lines derived from conditional MYC, RAS, and BCR-ABL transgenic murine models, we demonstrate shared responses to inhibition of lipogenesis by the acetyl-coA carboxylase inhibitor 5-(tetradecloxy)-2-furic acid (TOFA), and other lipogenesis inhibitors. We performed metabolic tracing studies to confirm the influence of c-MYC and TOFA on lipogenesis. We identify specific cell death responses to TOFA in vitro and in vivo and demonstrate delayed engraftment and progression in vivo in transplanted lymphoma cell lines. We also observe delayed progression of T-ALL in a primary transgenic mouse model upon TOFA administration. In a panel of human cell lines, we demonstrate sensitivity to TOFA treatment as a metabolic liability due to the general convergence on de novo lipogenesis in lymphoid malignancies driven by MYC, RAS, or BCR-ABL. Importantly, cell death was not significantly observed in non-malignant cells in vivo.
Conclusions:
These studies suggest that de novo lipogenesis may be a common survival strategy for many lymphoid malignancies and may be a clinically exploitable metabolic liability.
Trial Registration:
This study does not include any clinical interventions on human subjects.
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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