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E-Cadherin-Deficient Cells Are Sensitive to the Multikinase Inhibitor Dasatinib
Nicola Bougen-Zhukov1, Lyvianne Decourtye-Espiard1, Wilson Mitchell1
1Centre for Translational Cancer Research (Te Aho Matatū), Cancer Genetics Laboratory, Department of Biochemistry, University of Otago, Dunedin 9016, New Zealand.
Abstract:
The CDH1 gene, encoding the cell adhesion protein E-cadherin, is one of the most frequently mutated genes in gastric cancer and inactivating germline CDH1 mutations are responsible for the cancer syndrome hereditary diffuse gastric cancer (HDGC). CDH1-deficient gastric cancers exhibit high AKT serine/threonine kinase 3 (AKT3) expression, but specific drugs against this AKT isoform are not available. We therefore used two publicly available datasets to identify AKT3-associated genes which could be used to indirectly target AKT3. Reactome analysis identified an enrichment of extracellular matrix remodelling genes in AKT3-high gastric cancers. Of the 51 genes that were significantly correlated with AKT3 (but not AKT1), discoidin domain receptor tyrosine kinase 2 (DDR2) showed the strongest positive association. Treatment of isogenic human cells and mouse gastric and mammary organoids with dasatinib, a small molecule inhibitor of multiple kinases including SRC, BCR-ABL and DDR2, preferentially slowed the growth and induced apoptosis of E-cadherin-deficient cells. Dasatinib treatment also preferentially slowed the growth of gastric and mammary organoids harbouring both Cdh1 and Tp53 mutations. In organoid models, dasatinib treatment was associated with decreased phosphorylation of total AKT, with a stronger effect seen in Cdh1-deficient organoids. Treatment with combinations of dasatinib and an inhibitor of AKT, MK2206, enhanced the effect of dasatinib in breast MCF10A cells. In conclusion, targeting the DDR2-SRC-AKT3 axis with dasatinib represents a promising approach for the chemoprevention and chemotherapy of gastric and breast cancers lacking E-cadherin.
Insights
Targeting the DDR2-SRC-AKT3 pathway with dasatinib shows promise for treating E-cadherin-deficient gastric and breast cancers by slowing tumor growth and inducing apoptosis.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Germline CDH1 mutations cause hereditary diffuse gastric cancer (HDGC).
- CDH1-deficient gastric cancers show high AKT3 expression, lacking targeted therapies.
- Identifying AKT3-associated genes can enable indirect therapeutic targeting.
Purpose of the Study:
- To identify genes associated with AKT3 expression in CDH1-deficient cancers.
- To evaluate dasatinib as a therapeutic agent targeting the identified pathway.
- To assess the efficacy of dasatinib in preclinical models of gastric and breast cancer.
Main Methods:
- Analysis of public datasets to identify AKT3-associated genes.
- Reactome pathway analysis to identify enriched gene sets.
- Treatment of human cell lines and organoid models with dasatinib and AKT inhibitors.
- Assessment of cell growth, apoptosis, and AKT phosphorylation.
Main Results:
- Discoidin domain receptor tyrosine kinase 2 (DDR2) showed the strongest positive association with AKT3.
- Dasatinib preferentially inhibited growth and induced apoptosis in E-cadherin-deficient cells and organoids.
- Combined dasatinib and AKT inhibitor treatment enhanced therapeutic effects in breast cells.
Conclusions:
- Targeting the DDR2-SRC-AKT3 axis with dasatinib is a potential strategy for E-cadherin-deficient cancers.
- Dasatinib demonstrates efficacy in preclinical models of gastric and breast cancer.
- This approach offers a promising avenue for cancer chemoprevention and chemotherapy.
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