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Published on: April 12, 2024
Multi-Omic Analysis of Esophageal Adenocarcinoma Uncovers Candidate Therapeutic Targets and Cancer-Selective
J Robert O'Neill1, Marcos Yébenes Mayordomo2, Goran Mitulović3
1Cambridge Oesophagogastric Centre, Addenbrooke's Hospital, Cambridge, United Kingdom; Institute of Genetics and Cancer (IGC), University of Edinburgh, Edinburgh, Scotland.
Abstract:
Efforts to address the poor prognosis associated with esophageal adenocarcinoma (EAC) have been hampered by a lack of biomarkers to identify early disease and therapeutic targets. Despite extensive efforts to understand the somatic mutations associated with EAC over the past decade, a gap remains in understanding how the atlas of genomic aberrations in this cancer impacts the proteome and which somatic variants are of importance for the disease phenotype. We performed a quantitative proteomic analysis of 23 EACs and matched adjacent normal esophageal and gastric tissues. We explored the correlation of transcript and protein abundance using tissue-matched RNA-seq and proteomic data from seven patients and further integrated these data with a cohort of EAC RNA-seq data (n = 264 patients), EAC whole-genome sequencing (n = 454 patients), and external published datasets. We quantified protein expression from 5879 genes in EAC and patient-matched normal tissues. Several biomarker candidates with EAC-selective expression were identified, including the transmembrane protein GPA33. We further verified the EAC-enriched expression of GPA33 in an external cohort of 115 patients and confirm this as an attractive diagnostic and therapeutic target. To further extend the insights gained from our proteomic data, an integrated analysis of protein and RNA expression in EAC and normal tissues revealed several genes with poorly correlated protein and RNA abundance, suggesting posttranscriptional regulation of protein expression. These outlier genes, including SLC25A30, TAOK2, and AGMAT, only rarely demonstrated somatic mutation, suggesting post-transcriptional drivers for this EAC-specific phenotype. AGMAT was demonstrated to be overexpressed at the protein level in EAC compared to adjacent normal tissues with an EAC-selective, post-transcriptional mechanism of regulation of protein abundance proposed. Integrated analysis of proteome, transcriptome, and genome in EAC has revealed several genes with tumor-selective, posttranscriptional regulation of protein expression, which may be an exploitable vulnerability.
Insights
Researchers identified new protein biomarkers, like GPA33, for esophageal adenocarcinoma (EAC) diagnosis and therapy. They also found post-transcriptional regulation plays a key role in EAC development, offering potential new treatment strategies.
Area of Science:
- Oncology
- Proteomics
- Genomics
Background:
- Esophageal adenocarcinoma (EAC) has a poor prognosis due to limited early detection biomarkers and therapeutic targets.
- Understanding the impact of genomic aberrations on the proteome in EAC is crucial for identifying disease drivers and vulnerabilities.
Purpose of the Study:
- To identify novel protein biomarkers for early detection and therapeutic targeting of EAC.
- To investigate the relationship between genomic alterations, transcript abundance, and protein expression in EAC.
- To uncover mechanisms of post-transcriptional regulation driving EAC phenotypes.
Main Methods:
- Quantitative proteomic analysis of EAC and matched normal tissues.
- Integration of proteomic data with RNA-seq and whole-genome sequencing data from EAC cohorts.
- Validation of biomarker candidates in independent patient cohorts.
Main Results:
- Identified several EAC-selective protein biomarkers, including GPA33, with potential for diagnostic and therapeutic applications.
- Revealed significant post-transcriptional regulation of protein expression for genes like SLC25A30, TAOK2, and AGMAT in EAC.
- Demonstrated GPA33 is enriched in EAC tissues and AGMAT is overexpressed at the protein level via post-transcriptional mechanisms.
Conclusions:
- Integrated proteomic and genomic analyses provide novel insights into EAC pathogenesis.
- GPA33 is a promising biomarker candidate for EAC diagnosis and therapy.
- Post-transcriptional regulatory mechanisms represent potential therapeutic vulnerabilities in EAC.
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