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Updated: Jun 29, 2026

miRNA Expression Analyses in Prostate Cancer Clinical Tissues
Published on: September 8, 2015
Transcription factor and microRNA regulation in androgen-dependent and -independent prostate cancer cells
Guohua Wang1, Yadong Wang, Weixing Feng
1School of Computer Science and Technology, Harbin Institute of Technology, Harbin, Heilongjiang 150001, PR China. ghwang@hit.edu.cn
Background:
Prostate cancer is one of the leading causes of cancer death in men. Androgen ablation, the most commonly-used therapy for progressive prostate cancer, is ineffective once the cancer cells become androgen-independent. The regulatory mechanisms that cause this transition (from androgen-dependent to androgen-independent) remain unknown. In this study, based on the microarray data comparing global gene expression patterns in the prostate tissue between androgen-dependent and -independent prostate cancer patients, we identify a set of transcription factors and microRNAs that potentially cause such difference, using a model-based computational approach.
Results:
From 335 position weight matrices in the TRANSFAC database and 564 microRNAs in the microRNA registry, our model identify 5 transcription factors and 7 microRNAs to be potentially responsible for the level of androgen dependency. Of these transcription factors and microRNAs, the estimated function of all the 5 transcription factors are predicted to be inhibiting transcription in androgen-independent samples comparing with the dependent ones. Six out of 7 microRNAs, however, demonstrated stimulatory effects. We also find that the expression levels of three predicted transcription factors, including AP-1, STAT3 (signal transducers and activators of transcription 3), and DBP (albumin D-box) are significantly different between androgen-dependent and -independent patients. In addition, microRNA microarray data from other studies confirm that several predicted microRNAs, including miR-21, miR-135a, and miR-135b, demonstrate differential expression in prostate cancer cells, comparing with normal tissues.
Conclusion:
We present a model-based computational approach to identify transcription factors and microRNAs influencing the progression of androgen-dependent prostate cancer to androgen-independent prostate cancer. This result suggests that the capability of transcription factors to initiate transcription and microRNAs to facilitate mRNA degradation are both decreased in androgen-independent prostate cancer. The proposed model-based approach indicates that considering combinatorial effects of transcription factors and microRNAs in a unified model provides additional transcriptional and post-transcriptional regulatory mechanisms on global gene expression in the prostate cancer with different hormone-dependency.
Insights
Researchers identified key transcription factors and microRNAs driving prostate cancer's transition to androgen independence. This discovery offers new insights into hormone-dependent and independent prostate cancer progression.
Area of Science:
- Molecular Biology
- Computational Biology
- Oncology
Background:
- Prostate cancer is a leading cause of cancer death in men.
- Androgen ablation therapy is ineffective for androgen-independent prostate cancer.
- Mechanisms driving the transition to androgen independence are unknown.
Purpose of the Study:
- Identify transcription factors and microRNAs involved in prostate cancer androgen dependency.
- Utilize microarray data and a computational approach to analyze gene expression patterns.
Main Methods:
- Applied a model-based computational approach to analyze microarray data.
- Integrated TRANSFAC database and microRNA registry for analysis.
- Compared gene expression between androgen-dependent and -independent prostate cancer tissues.
Main Results:
- Identified 5 transcription factors and 7 microRNAs potentially regulating androgen dependency.
- Predicted transcription factors inhibit transcription, while most microRNAs stimulate it in androgen-independent samples.
- Found significant expression differences for AP-1, STAT3, and DBP transcription factors.
- Confirmed differential expression of miR-21, miR-135a, and miR-135b in prostate cancer cells.
Conclusions:
- The study identified key regulatory molecules in prostate cancer hormone dependency.
- Decreased transcription factor activity and microRNA function characterize androgen-independent prostate cancer.
- A unified model considering combinatorial effects of TFs and miRNAs reveals regulatory mechanisms in prostate cancer progression.
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