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Published on: February 5, 2018
CPEB1, a novel gene silenced in gastric cancer: a Drosophila approach
Joana Caldeira1, Joana Simões-Correia, Joana Paredes
1Institute of Molecular Pathology and Immunology of University of Porto (IPATIMUP), Porto, Portugal.
Background:
Gastric cancer (GC) is a highly prevalent disease, being the fourth most common cancer and the second leading cause of cancer-associated deaths worldwide. Although many genes have been implicated in its development, many cases remain genetically unexplained. Hence, there is an urgent need to find new disease-related genes.
Methods:
A transgenic Drosophila model was used to screen for novel genes putatively involved in GC. The authors evaluated the expression of the most interesting candidates in GC cell lines and primary tumours by semi-quantitative reverse transcription PCR, dissected the molecular mechanisms responsible for the deregulation of the most relevant one, and analysed its functional role in vitro and in a chicken embryo model.
Results:
Six candidate genes were identified, of which cytoplasmic polyadenylation element binding protein 1 (CPEB1) was downregulated in all GC cell lines and in 11 of 12 primary GC tumours. The pivotal CPEB1 promoter CpG site was determined, and it was found that methylation at this 79th CpG site was associated with CPEB1 silencing in GC cell lines and primary tumours. It was also discovered that methylation of this site was significantly more prevalent in diffuse type GC (p=0.007) and in cases with lymph node metastases (p=0.042). In vitro, CPEB1 impaired invasion. Its antiangiogenic role was also discovered, which was associated with downregulation of MMP14 and VEGFA.
Conclusions:
The first evidence of CPEB1 involvement in GC is presented, along with the molecular mechanism underlying the regulation of its expression and its potential role in invasion and angiogenesis.
Insights
Researchers identified cytoplasmic polyadenylation element binding protein 1 (CPEB1) as a novel gene involved in gastric cancer (GC). CPEB1 is downregulated in GC due to promoter methylation, impairing invasion and angiogenesis.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Gastric cancer (GC) is a leading cause of cancer deaths globally.
- Genetic factors in GC are not fully understood, necessitating new gene discovery.
Purpose of the Study:
- To identify novel genes associated with gastric cancer using a transgenic Drosophila model.
- To investigate the molecular mechanisms and functional roles of candidate genes in GC.
Main Methods:
- Screening for novel GC-related genes in a transgenic Drosophila model.
- Analyzing candidate gene expression in GC cell lines and tumors via RT-PCR.
- Investigating molecular mechanisms, including promoter methylation, and functional roles in vitro and in a chicken embryo model.
Main Results:
- Six candidate genes were identified, with cytoplasmic polyadenylation element binding protein 1 (CPEB1) showing significant downregulation in GC.
- CPEB1 silencing was linked to methylation at a specific promoter CpG site, particularly in diffuse type GC and metastatic cases.
- In vitro studies demonstrated that CPEB1 inhibits invasion and possesses antiangiogenic properties, associated with reduced MMP14 and VEGFA expression.
Conclusions:
- This study provides the first evidence linking CPEB1 to gastric cancer.
- A novel mechanism involving promoter methylation regulates CPEB1 expression in GC.
- CPEB1 plays a potential role in inhibiting GC invasion and angiogenesis.
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