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Published on: September 18, 2018
Disruption of Abi1/Hssh3bp1 expression induces prostatic intraepithelial neoplasia in the conditional Abi1/Hssh3bp1
X Xiong1, A Chorzalska, P M Dubielecka
1Laboratory of Cell Signaling, New York Blood Center, New York, NY, USA.
Abstract:
Prostate cancer is one of the leading causes of cancer-related deaths in the United States and a leading diagnosed non-skin cancer in American men. Genetic mutations underlying prostate tumorigenesis include alterations of tumor suppressor genes. We tested the tumor suppressor hypothesis for ABI1/hSSH3BP1 by searching for gene mutations in primary prostate tumors from patients, and by analyzing the consequences of prostate-specific disruption of the mouse Abi1/Hssh3bp1 ortholog. We sequenced the ABI1/hSSH3BP1 gene and identified recurring mutations in 6 out of 35 prostate tumors. Moreover, complementation and anchorage-independent growth, proliferation, cellular adhesion and xenograft assays using the LNCaP cell line, which contains a loss-of-function Abi1 mutation, and a stably expressed wild-type or mutated ABI gene, were consistent with the tumor suppressor hypothesis. To test the hypothesis further, we disrupted the gene in the mouse prostate by breeding the Abi1 floxed strain with the probasin promoter-driven Cre recombinase strain. Histopathological evaluation of mice indicated development of prostatic intraepithelial neoplasia (PIN) in Abi1/Hssh3bp1 knockout mouse as early as the eighth month, but no progression beyond PIN was observed in mice as old as 12 months. Observed decreased levels of E-cadherin, β-catenin and WAVE2 in mouse prostate suggest abnormal cellular adhesion as the mechanism underlying PIN development owing to Abi1 disruption. Analysis of syngeneic cell lines point to the possibility that upregulation of phospho-Akt underlies the enhanced cellular proliferation phenotype of cells lacking Abi1. This study provides proof-of-concept for the hypothesis that Abi1 downregulation has a role in the development of prostate cancer.
Insights
ABI1/hSSH3BP1 acts as a tumor suppressor in prostate cancer. Mutations in ABI1 were found in human tumors, and its disruption in mice led to prostatic intraepithelial neoplasia (PIN), suggesting ABI1 downregulation contributes to prostate cancer development.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Prostate cancer is a leading cause of cancer death in the US.
- Tumor suppressor gene alterations are implicated in prostate cancer.
- The role of ABI1/hSSH3BP1 in prostate tumorigenesis requires further investigation.
Purpose of the Study:
- To investigate the tumor suppressor role of ABI1/hSSH3BP1 in prostate cancer.
- To identify ABI1/hSSH3BP1 mutations in human prostate tumors.
- To analyze the functional consequences of ABI1/hSSH3BP1 disruption in mouse models.
Main Methods:
- Sequencing of the ABI1/hSSH3BP1 gene in primary prostate tumors.
- Functional assays (complementation, proliferation, adhesion, xenografts) using LNCaP cells with altered ABI1 expression.
- Prostate-specific gene disruption of Abi1/Hssh3bp1 in a mouse model.
- Histopathological evaluation and molecular analysis (E-cadherin, β-catenin, WAVE2, phospho-Akt) of mouse prostates.
Main Results:
- Recurring ABI1/hSSH3BP1 mutations were identified in 6 out of 35 prostate tumors.
- LNCaP cells with ABI1 loss-of-function exhibited phenotypes consistent with tumor suppression.
- Abi1/Hssh3bp1 knockout mice developed prostatic intraepithelial neoplasia (PIN) but not invasive cancer.
- Decreased E-cadherin, β-catenin, and WAVE2 levels suggest impaired cellular adhesion in knockout mice.
- Upregulation of phospho-Akt may contribute to increased proliferation in Abi1-deficient cells.
Conclusions:
- ABI1/hSSH3BP1 functions as a tumor suppressor in prostate cancer.
- ABI1 downregulation is implicated in the development of prostatic intraepithelial neoplasia.
- Mechanisms include altered cellular adhesion and potentially enhanced proliferation via phospho-Akt signaling.
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