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Universal and Efficient Electroporation Protocol for Genetic Engineering of Gastrointestinal Organoids
Published on: February 18, 2020
Generation and multiomic profiling of a TP53/CDKN2A double-knockout gastroesophageal junction organoid model
Hua Zhao1,2,3, Yulan Cheng2, Andrew Kalra2
1Center for Craniofacial Molecular Biology, Herman Ostrow School of Dentistry, and Norris Comprehensive Cancer Center, University of Southern California, Los Angeles, CA 90033, USA.
Abstract:
Inactivation of the tumor suppressor genes tumor protein p53 (TP53) and cyclin-dependent kinase inhibitor 2A (CDKN2A) occurs early during gastroesophageal junction (GEJ) tumorigenesis. However, because of a paucity of GEJ-specific disease models, cancer-promoting consequences of TP53 and CDKN2A inactivation at the GEJ have not been characterized. Here, we report the development of a wild-type primary human GEJ organoid model and a CRISPR-edited transformed GEJ organoid model. CRISPR-Cas9-mediated TP53 and CDKN2A knockout (TP53/CDKN2AKO) in GEJ organoids induced morphologic dysplasia and proneoplastic features in vitro and tumor formation in vivo. Lipidomic profiling identified several platelet-activating factors (PTAFs) among the most up-regulated lipids in CRISPR-edited organoids. PTAF/PTAF receptor (PTAFR) abrogation by siRNA knockdown or a pharmacologic inhibitor (WEB2086) reduced proliferation and other proneoplastic features of TP53/CDKN2AKO GEJ organoids in vitro and tumor formation in vivo. In addition, murine xenografts of Eso26, an established human esophageal adenocarcinoma cell line, were suppressed by WEB2086. Mechanistically, TP53/CDKN2A dual inactivation disrupted both the transcriptome and the DNA methylome, likely mediated by key transcription factors, particularly forkhead box M1 (FOXM1). FOXM1 activated PTAFR transcription by binding to the PTAFR promoter, further amplifying the PTAF-PTAFR pathway. Together, these studies established a robust model system for investigating early GEJ neoplastic events, identified crucial metabolic and epigenomic changes occurring during GEJ model tumorigenesis, and revealed a potential cancer therapeutic strategy. This work provides insights into proneoplastic mechanisms associated with TP53/CDKN2A inactivation in early GEJ neoplasia, which may facilitate early diagnosis and prevention of GEJ neoplasms.
Insights
Inactivating tumor suppressor genes tumor protein p53 (TP53) and cyclin-dependent kinase inhibitor 2A (CDKN2A) promotes gastroesophageal junction cancer. Targeting the platelet-activating factor pathway with WEB2086 suppressed tumor growth in novel organoid models.
Area of Science:
- Gastroenterology and Oncology
- Cancer Biology
- Molecular Therapeutics
Background:
- Inactivation of tumor suppressor genes TP53 and CDKN2A is an early event in gastroesophageal junction (GEJ) tumorigenesis.
- Lack of GEJ-specific models has hindered understanding of TP53 and CDKN2A roles in GEJ cancer development.
Purpose of the Study:
- To develop and characterize GEJ organoid models to study the consequences of TP53 and CDKN2A inactivation.
- To identify molecular mechanisms and therapeutic targets in early GEJ neoplasia.
Main Methods:
- Development of wild-type and CRISPR-edited (TP53/CDKN2A knockout) human GEJ organoid models.
- In vitro and in vivo assessment of organoid tumorigenesis.
- Lipidomic profiling, siRNA knockdown, pharmacologic inhibition (WEB2086), and transcriptomic/methylomic analysis.
Main Results:
- TP53/CDKN2A knockout GEJ organoids exhibited dysplasia, proneoplastic features, and tumor formation.
- Upregulation of platelet-activating factors (PTAFs) was identified in knockout organoids.
- Inhibition of the PTAF/PTAF receptor (PTAFR) pathway, particularly via FOXM1, reduced tumor growth and proneoplastic features.
- WEB2086 suppressed tumor growth in murine xenografts of esophageal adenocarcinoma.
Conclusions:
- Established GEJ organoid models provide a platform for studying early neoplastic events.
- TP53/CDKN2A inactivation drives GEJ tumorigenesis through metabolic and epigenomic alterations, involving the PTAF-PTAFR pathway and FOXM1.
- Targeting the PTAF-PTAFR pathway presents a potential therapeutic strategy for GEJ neoplasms.

