Search bioRxiv⌕ Search

Biology subjects

Ponz-Sarvise, M.

Publications and source records attributed to Ponz-Sarvise, M..

2 recordsLinked to original sources

Concurrent AXL inhibition enhances RAS and ERK inhibitor efficacy in KRAS-mutant pancreatic and lung cancer

Resistance limits the clinical efficacy of RAS inhibitors. We applied chemical and genetic screens and identified the AXL receptor tyrosine kinase as a driver of resistance to RAS-ERK inhibition. We determined that combination treatment with the AXL inhibitor bemcentinib (AXLi) together with the RAS(ON) multi-selective tri-complex inhibitor RMC-7977 (RASi) or the ERK-selective inhibitor SCH772984 (ERKi) significantly enhanced growth suppression in human KRAS-mutant pancreatic and lung cancer models. Combined AXLi and RASi treatment of human KRAS-mutant pancreatic cell line-derived xenograft tumors synergistically suppressed ERK activation and MYC expression, and caused tumor regression. Analyses of immunocompetent mouse allograft pancreatic tumor models revealed a largely tumor cell-intrinsic response to inhibitor treatment. We identified an unexpected mechanism whereby KRAS inhibition upregulated the AXL ligand GAS6, activating AXL but inducing an AXL-dependent adaptive resistance mechanism wherein AXL antagonizes RASi efficacy. Our observations support concurrent AXL inhibition as a strategy to enhance RAS inhibitor clinical efficacy. STATEMENT OF SIGNIFICANCEOur findings identify AXL as a driver of resistance to RAS inhibitors, establishing a combination strategy to overcome resistance and enhance RAS inhibitor therapeutic efficacy in KRAS-mutant cancer by maximally inhibiting oncogenic RAS signaling.

cancer biology↗

Quantitative evaluation of the role of the microenvironment in the phenotype, metabolism, and drug resistance of PDAC tumor organoids

Tumor organoids are powerful tools to study cancer. However, the clinical translation of organoid-based studies depends on how closely the organoid scaffolding material recapitulates the tumor extracellular matrix (ECM). We present a quantitative analysis of the effect of scaffold composition on the phenotype, tissue remodeling, metabolism, and drug resistance of pancreatic ductal adenocarcinoma (PDAC) organoids. We grew PDAC organoids within hydrogels made of Matrigel, collagen-I, or a mixture of collagen-I and Matrigel. Our results show that 1) PDAC organoids grown in Matrigel-only are phenotypically and metabolically similar to low-physiological two-dimensional PDAC cultures; 2) collagen-containing hydrogels, and especially so those grown in hydrogels of mixed collagen-Matrigel composition, accurately reproduce invasive tumors that underwent epithelial-to-mesenchymal transition (EMT) regarding phenotype, tissue remodeling, metabolic activity, and drug resistance. In summary, our work illustrates the importance of three-dimensional (3D) matrix composition for PDAC growth and postulates that organoids grown in collagen-Matrigel hydrogels are the most adequate for studying the biology of invasive PDAC tumors.

bioengineering↗