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Biology subjects

McGee, L. E.

Publications and source records attributed to McGee, L. E..

2 recordsLinked to original sources

YAP signaling promotes resistance to MEK and AKT inhibition in NF1-related MPNSTs

Neurofibromatosis type 1 (NF1) is a tumor predisposition syndrome caused by loss of function of the neurofibromin protein. Malignant peripheral nerve sheath tumors (MPNSTs) are a rare and deadly sarcoma with few therapeutic options that are the leading cause of death for patients with NF1. To date, no targeted therapies have been approved for MPNST treatment, highlighting the need for an understanding of adaptive signaling mechanisms that drive resistance. We developed a preclinical model of drug resistance using a cross-over drug holiday design and evaluated patterns of response and resistance to MEK and AKT inhibitors, two pathways that are dysregulated by loss of neurofibromin. We show that the mTOR and YAP/TEAD pathways are activated by MEK inhibitor exposure, yet blockade of these pathways in resistant MPNST PDX models does not significantly reduce tumor growth, despite strong in vitro synergy between trametinib and the novel TEAD inhibitor, GNE-7883. Using spatial transcriptomics, we uncovered phenotypic inertia as a key mechanism of drug resistance in MPNST, in addition to signaling plasticity. Further, we found that resistance is mediated by sustained ERK, YAP, and MYC driven transcriptional programs. In the future, preclinical studies should focus on addressing intratumoral heterogeneity and how it evolves over time.

cancer biology↗

p53 modulates kinase inhibitor resistance and lineage plasticity in NF1-related MPNSTs

Malignant peripheral nerve sheath tumors (MPNSTs) are chemotherapy resistant sarcomas that are a leading cause of death in neurofibromatosis type 1 (NF1). Although NF1-related MPNSTs derive from neural crest cell origin, they also exhibit intratumoral heterogeneity. TP53 mutations are associated with significantly decreased survival in MPNSTs, however the mechanisms underlying TP53-mediated therapy responses are unclear in the context of NF1-deficiency. We evaluated the role of two commonly altered genes, MET and TP53, in kinome reprograming and cellular differentiation in preclinical MPNST mouse models. We previously showed that MET amplification occurs early in human MPNST progression and that Trp53 loss abrogated MET-addiction resulting in MET inhibitor resistance. Here we demonstrate a novel mechanism of therapy resistance whereby p53 alters MET stability, localization, and downstream signaling leading to kinome reprogramming and lineage plasticity. Trp53 loss also resulted in a shift from RAS/ERK to AKT signaling and enhanced sensitivity to MEK and mTOR inhibition. In response to MET, MEK and mTOR inhibition, we observed broad and heterogeneous activation of key differentiation genes in Trp53-deficient lines suggesting Trp53 loss also impacts lineage plasticity in MPNSTs. These results demonstrate the mechanisms by which p53 loss alters MET dependency and therapy resistance in MPNSTS through kinome reprogramming and phenotypic flexibility.

cancer biology↗