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Force, J.

Publications and source records attributed to Force, J..

2 recordsLinked to original sources

Discovery of oncogenic ROS1 missense mutations with sensitivity to tyrosine kinase inhibitors

Chromosomal rearrangements of ROS1 generate ROS1 tyrosine kinase fusion proteins that are established oncogenes predicting effectiveness of tyrosine kinase inhibitors (TKI) treatment. The cancer genome reveals nonsynonymous missense mutations in ROS1, however, their oncogenic potential remains unknown. We nominated thirty-four tumor-associated missense mutations in ROS1 kinase domain for functional interrogation. Immunoblotting revealed diverse impact of the mutations on the kinase, ranging from loss of function to significant increase in catalytic activity. Notably, Asn and Gly substitutions at the Asp-2113 position in ROS1 kinase domain were TKI- sensitive hyper-activating mutations, and transformative oncogenes in independent cell models. Molecular modeling revealed drastic alterations in the activation loop of ROS1D2113N compared to wildtype kinase. Proteomics studies showed that ROS1D2113N increases phosphorylation of known effectors akin to ROS1 fusions, and upregulates pathways not previously linked to ROS1, including mTORC2, JNK1/2, AP-1, TGFB1 and CCN1/2. In vivo, ROS1D2113N drove tumor formation that was sensitive to inhibition by crizotinib and lorlatinib. Taken together, these data show that select point mutations within ROS1 RTK are oncogenic, and maybe therapeutically targetable with FDA-approved TKI.

cancer biology↗

APOBEC mutagenesis inhibits breast cancer growth through induction of a T cell-mediated antitumor immune response

The APOBEC family of cytidine deaminases is one of the most common endogenous sources of mutations in human cancer. Genomic studies of tumors have found that APOBEC mutational signatures are particularly enriched in the HER2 subtype of breast cancer and have been associated with immunotherapy response in diverse cancer types. However, the direct consequences of APOBEC mutagenesis on the tumor immune microenvironment have not been thoroughly investigated. To address this, we developed syngeneic murine mammary tumor models with inducible expression of APOBEC3B. We found that APOBEC activity induces an antitumor adaptive immune response and CD4+ T cell-mediated tumor growth inhibition. While polyclonal APOBEC tumors had a moderate growth defect, clonal APOBEC tumors were almost completely rejected by the immune system, suggesting that APOBEC-mediated genetic heterogeneity limits the antitumor adaptive immune response. Consistent with the observed immune infiltration in APOBEC tumors, APOBEC activity sensitized HER2-driven breast tumors to checkpoint inhibition. In human breast cancers, the relationship between APOBEC mutagenesis and immunogenicity varied by breast cancer subtype and the frequency of subclonal mutations. This work provides a mechanistic basis for the sensitivity of APOBEC tumors to checkpoint inhibitors and suggests a rationale for using APOBEC mutational signatures as a biomarker predicting immunotherapy response in HER2-positive breast cancers. SIGNIFICANCEAPOBEC mutational signatures are observed in many cancers, yet the consequences of these mutations on the tumor immune microenvironment are not well understood. Using a novel mouse model, we show that APOBEC activity sensitizes HER2-driven mammary tumors to checkpoint inhibition and could inform immunotherapy treatment strategies for HER2-positive breast cancer patients.

cancer biology↗