AXL/WRNIP1 mediates replication stress response and promotes therapy resistance and metachronous metastasis in HER2+ breast cancer.
Mauricio Marquez-PalenciaLuis Reza HerreraPravat Kumar ParidaSuvranil GhoshKangsan KimNikitha M DasPaula I Gonzalez EricssonMelinda E SandersBret C MobleySebastian DiegelerTodd A AguileraYan PengCheryl M LewisCarlos L ArteagaAriella B HankerAngelique W WhitehurstJames B LorensRolf A BrekkenAnthony J DavisSrinivas MalladiPublished in: Cancer research (2024)
Therapy resistance and metastatic progression are primary causes of cancer-related mortality. Disseminated tumor cells possess adaptive traits that enable them to reprogram their metabolism, maintain stemness, and resist cell death, facilitating their persistence to drive recurrence. The survival of disseminated tumor cells also depends on their ability to modulate replication stress in response to therapy while colonizing inhospitable microenvironments. In this study, we discovered that the nuclear translocation of AXL, a TAM receptor tyrosine kinase, and its interaction with WRNIP1, a DNA replication stress response factor, promotes the survival of HER2+ breast cancer cells that are resistant to HER2-targeted therapy and metastasize to the brain. In preclinical models, knocking down or pharmacologically inhibiting AXL or WRNIP1 attenuated protection of stalled replication forks. Furthermore, deficiency or inhibition of AXL and WRNIP1 also prolonged metastatic latency and delayed relapse. Together, these findings suggest that targeting the replication stress response, which is a shared adaptive mechanism in therapy-resistant and metastasis-initiating cells, could reduce metachronous metastasis and enhance the response to standard-of-care therapies.
Keyphrases
- tyrosine kinase
- epidermal growth factor receptor
- cancer therapy
- cell death
- free survival
- squamous cell carcinoma
- small cell lung cancer
- healthcare
- breast cancer cells
- stem cells
- cell cycle arrest
- drug delivery
- cardiovascular disease
- multiple sclerosis
- cell therapy
- gene expression
- coronary artery disease
- epithelial mesenchymal transition
- white matter
- dna methylation
- genome wide
- endoplasmic reticulum stress
- cell proliferation
- affordable care act
- smoking cessation
- cancer stem cells