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Multi-omics analysis identifies pathways and genes involved in diffuse-type gastric carcinogenesis induced by
Jun Won Park1,2, Min-Sik Kim3,4, Dominic C Voon5
1Department of Veterinary Pathology, College of Veterinary Medicine, Seoul National University, Seoul, Republic of Korea.
Abstract:
The molecular mechanisms underlying the pathogenesis of diffuse-type gastric cancer (DGC) have not been adequately explored due to a scarcity of appropriate animal models. A recently developed tool well suited for this line of investigation is the Pdx-1-Cre;Cdh1F/+ ;Trp53F/F ;Smad4F/F (pChe PS) mouse model that spontaneously develops metastatic DGC showing nearly complete E-cadherin loss. Here, we performed a proteogenomic analysis to uncover the molecular changes induced by the concurrent targeting of E-cadherin, p53, and Smad4 loss. The gene expression profiles of mouse DGCs and in vivo gastric phenotypes from various combinations of gene knockout demonstrated that these mutations collaborate to activate cancer-associated pathways to generate aggressive DGC. Of note, WNT-mediated epithelial-to-mesenchymal transition (EMT) and extracellular matrix (ECM)-cytokine receptor interactions were prominently featured. In particular, the WNT target gene osteopontin (OPN) that functions as an ECM cytokine is highly upregulated. In validation experiments, OPN contributed to DGC stemness by promoting cancer stem cell (CSC) survival and chemoresistance. It was further found that Bcl-xL acts as a targetable downstream effector of OPN in DGC CSC survival. In addition, Zeb2 and thymosin-β4 (Tβ4) were identified as prime candidates as suppressors of E-cadherin expression from the remaining Cdh1 allele during DGC development. Specifically, Tβ4 suppressed E-cadherin expression and anoikis while promoting cancer cell growth and migration. Collectively, these proteogenomic analyses broaden and deepen our understanding of the contribution of key driver mutations in the stepwise carcinogenesis of DGC through novel effectors, namely OPN and Tβ4.
Insights
This study reveals novel molecular drivers, osteopontin (OPN) and thymosin-β4 (Tβ4), in diffuse-type gastric cancer (DGC) development. These factors promote aggressive tumor growth, stemness, and chemoresistance, offering new therapeutic targets for this challenging cancer.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Diffuse-type gastric cancer (DGC) pathogenesis is poorly understood due to limited animal models.
- A novel mouse model (pC he PS) spontaneously develops metastatic DGC with E-cadherin loss, enabling mechanistic studies.
Purpose of the Study:
- To elucidate molecular changes in DGC driven by concurrent loss of E-cadherin, p53, and Smad4.
- To identify novel molecular effectors and pathways contributing to DGC progression.
Main Methods:
- Proteogenomic analysis of DGC in the pC he PS mouse model.
- Gene expression profiling and in vivo phenotypic analysis of various gene knockout combinations.
- Validation experiments for identified molecular targets.
Main Results:
- Concurrent mutations activate cancer-associated pathways, driving aggressive DGC.
- WNT signaling, epithelial-to-mesenchymal transition (EMT), and ECM-cytokine interactions are key.
- Osteopontin (OPN) is upregulated, promoting cancer stem cell (CSC) survival and chemoresistance via Bcl-xL.
- Thymosin-β4 (Tβ4) suppresses E-cadherin, anoikis, and promotes DGC growth and migration.
Conclusions:
- Proteogenomic analysis deepens understanding of DGC driver mutations.
- OPN and Tβ4 are identified as novel effectors in DGC carcinogenesis.
- Targeting OPN and Tβ4 may offer new therapeutic strategies for DGC.
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