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Updated: Jan 13, 2026

miRNA Expression Analyses in Prostate Cancer Clinical Tissues
Published on: September 8, 2015
APOBEC3C Suppresses Prostate Cancer by Regulating Key Molecules Involved in Cellular Inflammation, Cell Cycle Arrest,
Zhongqi Pang1,2, Jianshe Wang1,3, Yidan Xu4
1Department of Urology, First Affiliated Hospital of Harbin Medical University, Harbin 150001, China.
Abstract:
Background: Prostate cancer (PCa) is a prevalent malignancy with a rising incidence. Advanced PCa, often resistant to therapy, remains a major clinical challenge, underscoring the need to identify novel molecular drivers. Methods: Utilizing transcriptomic data from the TCGA and GEO databases, we identified APOBEC3C (A3C) as a key candidate through WGCNA, differential expression analysis, and LASSO regression. Its clinical relevance was assessed via Kaplan-Meier survival analysis. Then, we validated A3C expression patterns using immunohistochemistry and Western blot in normal and malignant prostate cell lines. The functional effects of A3C on proliferation, migration, and invasion and mechanisms of such were evaluated through in vitro gain- and loss-of-function assays (CCK-8, Ki67 staining, wound healing, Transwell, Western blot, etc.). Results:A3C was significantly downregulated in PCa, and this low expression strongly correlated with adverse clinicopathological features, including advanced T stage, higher Gleason scores, and worse survival. Bioinformatically, high A3C expression was associated with an activated anti-tumor immune microenvironment, characterized by enhanced CD8+ T cell infiltration, reduced M2 macrophage abundance, and upregulation of the immune checkpoint CD40. In vitro, A3C overexpression effectively suppressed PCa cell proliferation, migration, and invasion, while its knockdown promoted these malignant phenotypes. Mechanistically, A3C enhances the expression of the STING1 and its downstream related molecules Caspase-1, IL-18, and IL-1β; upregulates DNA damage-protective genes (GSTP1 and GPX3); and enhances the expression of cell cycle regulator GAS1. Conclusions: This study establishes A3C as a suppressor in PCa, which impedes tumor progression by regulating key molecules involved in cellular inflammation, cell cycle arrest, and DNA damage response.
Insights
APOBEC3C (A3C) is downregulated in prostate cancer (PCa), suppressing tumor growth. Low A3C correlates with poor prognosis and impacts immune response, cell cycle, and DNA damage pathways.
Area of Science:
- Oncology
- Molecular Biology
- Immunology
Background:
- Prostate cancer (PCa) incidence is rising, with advanced, therapy-resistant stages posing significant clinical challenges.
- Identifying novel molecular drivers is crucial for understanding and treating advanced PCa.
- The need for new therapeutic targets in PCa necessitates research into its underlying molecular mechanisms.
Purpose of the Study:
- To identify and characterize novel molecular drivers in prostate cancer.
- To investigate the role of APOBEC3C (A3C) in PCa progression and its clinical significance.
- To elucidate the functional mechanisms by which A3C influences PCa cell behavior and the tumor microenvironment.
Main Methods:
- Transcriptomic data analysis (TCGA, GEO) using WGCNA, differential expression, and LASSO regression to identify candidate genes.
- Kaplan-Meier survival analysis to assess clinical relevance of candidate genes.
- In vitro gain- and loss-of-function assays (cell proliferation, migration, invasion) and molecular analyses (Western blot, IHC) to validate A3C function and mechanisms.
Main Results:
- APOBEC3C (A3C) was significantly downregulated in PCa, correlating with advanced stage, higher Gleason scores, and worse survival.
- High A3C expression was linked to an activated anti-tumor immune microenvironment (increased CD8+ T cells, decreased M2 macrophages, upregulated CD40).
- In vitro, A3C suppressed PCa cell proliferation, migration, and invasion, while A3C knockdown promoted these malignant phenotypes.
Conclusions:
- APOBEC3C (A3C) functions as a tumor suppressor in prostate cancer.
- A3C impedes PCa progression by modulating inflammation (STING1 pathway), cell cycle arrest (GAS1), and DNA damage response (GSTP1, GPX3).
- A3C represents a potential therapeutic target for managing advanced prostate cancer.
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