Paradoxical activation of oncogenic signaling as a cancer treatment strategy.
Matheus Henrique DiasAnoek FriskesSiying WangJoão M Fernandes NetoFrank van GemertSoufiane M C MourraguiChrysa PapagianniHendrik J KuikenSara MainardiDaniel Alvarez-VillanuevaCor LieftinkBen MorrisAnna DekkerEmma van DijkLieke H S WilmsMarcelo Santos da SilvaRobin A JansenAntonio Mulero-SanchezElke MalzerAugust Vidal BelCristina SantosRamón SalazarRosangela A M WailemannThompson E P TorresGiulia De ContiJonne A RaaijmakersPetur SnaebjornssonSheng-Xian YuanWenxin QinJohn S KovachHugo Aguirre ArmelinHein Te RieleAlexander van OudernaardenHaojie JinRoderick L BeijersbergenAlberto VillanuevaRené H MedemaRené BernardsPublished in: Cancer discovery (2024)
Cancer homeostasis depends on a balance between activated oncogenic pathways driving tumorigenesis and engagement of stress-response programs that counteract the inherent toxicity of such aberrant signaling. While inhibition of oncogenic signaling pathways has been explored extensively, there is increasing evidence that overactivation of the same pathways can also disrupt cancer homeostasis and cause lethality. We show here that inhibition of Protein Phosphatase 2A (PP2A) hyperactivates multiple oncogenic pathways and engages stress responses in colon cancer cells. Genetic and compound screens identify combined inhibition of PP2A and WEE1 as synergistic in multiple cancer models by collapsing DNA replication and triggering premature mitosis followed by cell death. This combination also suppressed the growth of patient-derived tumors in vivo. Remarkably, acquired resistance to this drug combination suppressed the ability of colon cancer cells to form tumors in vivo. Our data suggest that paradoxical activation of oncogenic signaling can result in tumor suppressive resistance.
Keyphrases
- papillary thyroid
- transcription factor
- cell death
- squamous cell
- signaling pathway
- public health
- lymph node metastasis
- squamous cell carcinoma
- emergency department
- high throughput
- epithelial mesenchymal transition
- machine learning
- artificial intelligence
- protein protein
- single cell
- cancer therapy
- amino acid
- pi k akt
- protein kinase