Targeting MET and mTOR Synergistically Overcomes Adaptive Resistance in Glioblastoma
Glioblastoma (GBM) is the most aggressive primary brain tumor with limited therapeutic options and extremely poor prognosis. Aberrant activation of the receptor tyrosine kinase MET drives tumor progression, therapeutic resistance, and reduced survival, particularly in the mesenchymal GBM subtype. Given its crucial role in GBM recurrence and progression, we investigated the mechanisms of resistance to MET inhibition using patient-derived glioma-initiating cells (GICs) and orthotopic xenograft mouse models. GICs were treated with the MET inhibitor crizotinib to elucidate the mechanism of adaptive resistance. Prolonged MET inhibition induced a senescent-like phenotype in GICs, associated with downregulation of BNIP3, a mitochondrial protein regulating mitophagy. We showed that BNIP3 downregulation led to activation of mTOR signaling, promoting cellular survival and adaptive resistance. Combining crizotinib with the mTOR inhibitor everolimus effectively suppressed mTOR activity, reduced cell viability, and induced mitochondrial alterations, apoptosis, and necroptosis. In orthotopic GBM xenograft models, combined MET and mTOR inhibition significantly prolonged survival compared with single-agent treatments. Notably, sequential treatment—crizotinib followed by everolimus—further enhanced therapeutic efficacy. These effects were achieved without significant weight loss, supporting tolerability of the treatment regimen. Our findings identify the BNIP3-mTOR axis as a critical mediator of resistance to MET inhibition and demonstrate that combined inhibition of MET and mTOR exhibits significant synergy against GBM.