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Published on: June 9, 2020
An RNA Damage Response Network Mediates the Lethality of 5-FU in Clinically Relevant Tumor Types
Jung-Kuei Chen1, Karl A Merrick1, Yi Wen Kong1
1David H. Koch Institute for Integrative Cancer Research, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Abstract:
5-fluorouracil (5-FU) is a successful and broadly used anti-cancer therapeutic. A major mechanism of action of 5-FU is thought to be through thymidylate synthase (TYMS) inhibition resulting in dTTP depletion and activation of the DNA damage response. This suggests that 5-FU should synergize with other DNA damaging agents. However, we found that combinations of 5-FU and oxaliplatin or irinotecan failed to display any evidence of synergy in clinical trials, and resulted in sub-additive killing in a panel of colorectal cancer (CRC) cell lines. In seeking to understand this antagonism, we unexpectedly found that an RNA damage response during ribosome biogenesis dominates the drug's efficacy in tumor types for which 5-FU shows clinical benefit. 5-FU has an inherent bias for RNA incorporation, and blocking this greatly reduced drug-induced lethality, indicating that accumulation of damaged RNA is more deleterious than the lack of new RNA synthesis. Using 5-FU metabolites that specifically incorporate into either RNA or DNA revealed that CRC cell lines and patient-derived colorectal cancer organoids are inherently more sensitive to RNA damage. This difference held true in cell lines from other tissues in which 5-FU has shown clinical utility, whereas cell lines from tumor tissues that lack clinical 5-FU responsiveness typically showed greater sensitivity to the drug's DNA damage effects. Analysis of changes in the phosphoproteome and ubiquitinome shows RNA damage triggers the selective ubiquitination of multiple ribosomal proteins leading to autophagy-dependent rRNA catabolism and proteasome-dependent degradation of ubiquitinated ribosome proteins. Further, RNA damage response to 5-FU is selectively enhanced by compounds that promote ribosome biogenesis, such as KDM2A inhibitors. These results demonstrate the presence of a strong RNA damage response linked to apoptotic cell death, with clear utility of combinatorially targeting this response in cancer therapy.
Insights
5-fluorouracil (5-FU) primarily kills cancer cells by damaging RNA, not DNA, triggering an RNA damage response that leads to cell death. This finding challenges previous understanding and suggests new therapeutic strategies.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- 5-fluorouracil (5-FU) is a widely used chemotherapy drug, primarily thought to act by inhibiting thymidylate synthase (TYMS) and causing DNA damage.
- Clinical trials show a lack of synergy between 5-FU and DNA-damaging agents like oxaliplatin or irinotecan, suggesting alternative mechanisms of action.
- Tumor types responsive to 5-FU exhibit an unexpected RNA damage response that dominates the drug's efficacy.
Approach:
- Investigated the mechanism of 5-FU antagonism with DNA-damaging agents in colorectal cancer (CRC) models.
- Utilized 5-FU metabolites to differentiate between RNA and DNA incorporation and their effects on cell lethality.
- Analyzed phosphoproteomic and ubiquitinomic changes to elucidate the RNA damage response pathway.
Key Points:
- 5-FU preferentially incorporates into RNA, and blocking this incorporation significantly reduces its lethality.
- Colorectal cancer cells and organoids are more sensitive to RNA damage than DNA damage induced by 5-FU.
- RNA damage triggers ribosomal protein ubiquitination, rRNA catabolism, and proteasomal degradation, leading to apoptosis.
- Compounds enhancing ribosome biogenesis, like KDM2A inhibitors, potentiate the 5-FU RNA damage response.
Conclusions:
- The primary anti-cancer efficacy of 5-FU in certain tumors stems from an RNA damage response, not DNA damage.
- This RNA-centric mechanism offers a new therapeutic target for enhancing 5-FU effectiveness.
- Targeting the RNA damage response pathway presents a promising strategy for combination cancer therapy.
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