A second-generation eIF4A RNA helicase inhibitor exploits translational reprogramming as a vulnerability in triple-negative breast cancer.
Regina CencicYoung K ImSai Kiran NaineniMohamed Moustafa-KamalPredrag JovanovicValerie SabourinMatthew G AnnisFrancis RobertT Martin SchmeingAntonis E KoromilasMarilène PaquetJose G TeodoroSidong HuangPeter M SiegelIvan TopisirovicJosie Ursini-SiegelJerry PelletierPublished in: Proceedings of the National Academy of Sciences of the United States of America (2024)
In this study, we aimed to address the current limitations of therapies for macro-metastatic triple-negative breast cancer (TNBC) and provide a therapeutic lead that overcomes the high degree of heterogeneity associated with this disease. Specifically, we focused on well-documented but clinically underexploited cancer-fueling perturbations in mRNA translation as a potential therapeutic vulnerability. We therefore developed an orally bioavailable rocaglate-based molecule, MG-002, which hinders ribosome recruitment and scanning via unscheduled and non-productive RNA clamping by the eukaryotic translation initiation factor (eIF) 4A RNA helicase. We demonstrate that MG-002 potently inhibits mRNA translation and primary TNBC tumor growth without causing overt toxicity in mice. Importantly, given that metastatic spread is a major cause of mortality in TNBC, we show that MG-002 attenuates metastasis in pre-clinical models. We report on MG-002, a rocaglate that shows superior properties relative to existing eIF4A inhibitors in pre-clinical models. Our study also paves the way for future clinical trials exploring the potential of MG-002 in TNBC and other oncological indications.
Keyphrases
- clinical trial
- small cell lung cancer
- squamous cell carcinoma
- climate change
- oxidative stress
- prostate cancer
- cardiovascular disease
- type diabetes
- nucleic acid
- randomized controlled trial
- rectal cancer
- cardiovascular events
- single cell
- binding protein
- risk assessment
- human health
- high fat diet induced
- oxide nanoparticles
- wild type