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.

Cancer Discovery
|April 21, 2021
PubMed

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.

Related Concept Videos

Master Transcription Regulators02:23

Master Transcription Regulators

Master transcription regulators are regulatory proteins that are predominantly responsible for regulating the expression of multiple genes. Often these genes work in concert to drive a  complex process. Activation of a master transcription regulator can lead to a cascade of transcriptional activation necessary for that outcome. These regulators can directly bind to the regulatory sequences of the various genes involved, or they can indirectly regulate transcription by binding to regulatory...
7.3K
Negative Regulator Molecules01:23

Negative Regulator Molecules

Positive regulators allow a cell to advance through cell cycle checkpoints. Negative regulators have an equally important role as they terminate a cell’s progression through the cell cycle—or pause it—until the cell meets specific criteria.
37.2K
Mitogens and the Cell Cycle02:38

Mitogens and the Cell Cycle

Mitogens and their receptors play a crucial role in controlling the progression of the cell cycle. However, the loss of mitogenic control over cell division leads to tumor formation. Therefore, mitogens and mitogen receptors play an important role in cancer research. For instance, the epidermal growth factor (EGF) - a type of mitogen and its transmembrane receptor (EGFR), decides the fate of the cell's proliferation. When EGF binds to EGFR, a member of the ErbB family of tyrosine kinase...
7.3K
mTOR Signaling and Cancer Progression03:03

mTOR Signaling and Cancer Progression

The mammalian target of rapamycin or mTOR protein was discovered in 1994 due to its direct interaction with rapamycin. The protein gets its name from a yeast homolog called TOR. The mTOR protein complex in mammalian cells plays a major role in balancing anabolic processes such as the synthesis of proteins, lipids, and nucleotides and catabolic processes, such as autophagy in response to environmental cues, such as availability of nutrients and growth factors.
The mTOR pathway or the...
4.0K
Electron Transport Chain: Complex I and II01:46

Electron Transport Chain: Complex I and II

The mitochondrial electron transport chain (ETC) is the main energy generation system in the eukaryotic cells. However, mitochondria also produce cytotoxic reactive oxygen species (ROS) due to the large electron flow during oxidative phosphorylation. While Complex I is one of the primary sources of superoxide radicals, ROS production by Complex II is uncommon and may only be observed in cancer cells with mutated complexes.
ROS generation is regulated and maintained at moderate levels necessary...
16.5K
Adaptive Mechanisms in Cancer Cells02:53

Adaptive Mechanisms in Cancer Cells

Cancer cells accumulate genetic changes at an abnormally rapid rate due to the defects in the DNA repair mechanisms. From an evolutionary perspective, such genetic instability is advantageous for cancer development. Mutant cell lines accumulate a series of beneficial mutations that contribute to their progression into cancer.
Some of the advantages that cancer cells have on normal cells include - enhanced ability to divide without terminally differentiating, induce new blood vessel formation,...
6.1K