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RB/E2F1 as a Master Regulator of Cancer Cell Metabolism in Advanced Disease
Amy C Mandigo1, Wei Yuan2,3, Kexin Xu4
1Department of Cancer Biology, Thomas Jefferson University, Philadelphia, Pennsylvania.
Abstract:
Loss of the retinoblastoma (RB) tumor suppressor protein is a critical step in reprogramming biological networks that drive cancer progression, although mechanistic insight has been largely limited to the impact of RB loss on cell-cycle regulation. Here, isogenic modeling of RB loss identified disease stage-specific rewiring of E2F1 function, providing the first-in-field mapping of the E2F1 cistrome and transcriptome after RB loss across disease progression. Biochemical and functional assessment using both in vitro and in vivo models identified an unexpected, prominent role for E2F1 in regulation of redox metabolism after RB loss, driving an increase in the synthesis of the antioxidant glutathione, specific to advanced disease. These E2F1-dependent events resulted in protection from reactive oxygen species in response to therapeutic intervention. On balance, these findings reveal novel pathways through which RB loss promotes cancer progression and highlight potentially new nodes of intervention for treating RB-deficient cancers. SIGNIFICANCE: This study identifies stage-specific consequences of RB loss across cancer progression that have a direct impact on tumor response to clinically utilized therapeutics. The study herein is the first to investigate the effect of RB loss on global metabolic regulation and link RB/E2F1 to redox control in multiple advanced diseases.This article is highlighted in the In This Issue feature, p. 2113.
Insights
Loss of the retinoblastoma (RB) tumor suppressor protein drives cancer progression by altering E2F1 function. This rewiring increases antioxidant glutathione synthesis, protecting tumors from therapies in advanced disease.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Metabolism
Background:
- Loss of the retinoblastoma (RB) tumor suppressor protein is crucial in cancer progression.
- Mechanistic understanding of RB loss has primarily focused on cell-cycle regulation, neglecting other biological networks.
Purpose of the Study:
- To investigate the stage-specific functional rewiring of E2F1 following RB loss across cancer progression.
- To identify novel roles of E2F1 in metabolic regulation and tumor response to therapy after RB loss.
Main Methods:
- Utilized isogenic modeling for RB loss.
- Performed comprehensive mapping of the E2F1 cistrome and transcriptome.
- Conducted biochemical and functional assessments using in vitro and in vivo models.
Main Results:
- Identified disease stage-specific rewiring of E2F1 function post-RB loss.
- Discovered a significant role for E2F1 in regulating redox metabolism, specifically increasing glutathione synthesis in advanced disease.
- Demonstrated that E2F1-driven events confer protection against reactive oxygen species and therapeutic interventions.
Conclusions:
- RB loss promotes cancer progression through novel pathways involving E2F1-mediated redox control.
- E2F1-dependent glutathione synthesis in advanced cancers impacts therapeutic response.
- These findings highlight potential new therapeutic targets for RB-deficient cancers.
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