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Updated: Aug 30, 2026

miRNA Expression Analyses in Prostate Cancer Clinical Tissues
Published on: September 8, 2015
Regulation of beta1C and beta1A integrin expression in prostate carcinoma cells
Loredana Moro1, Elda Perlino, Ersilia Marra
1Institute of Biomembranes and Bioenergetics, National Research Council (C.N.R.), Via Amendola 165/A, 70126 Bari, Italy. csmmlm22@area.ba.cnr.it
Abstract:
beta(1C) and beta(1A) integrins are two splice variants of the human beta(1) integrin subfamily that act as an inhibitor and a stimulator of cell proliferation, respectively. In neoplastic prostate epithelium, both these variants are down-regulated at the mRNA level, but only beta(1C) protein levels are reduced. We used an experimental model consisting of PNT1A, a normal immortalized prostate cell line, and LNCaP and PC-3, two prostate carcinoma cell lines, to investigate both the transcription/post-transcription and translation/post-translation processes of beta(1C) and beta(1A). Transcriptional regulation played the key role for the reduction in beta(1C) and beta(1A) mRNA expression in cancer cells, as beta(1C) and beta(1A) mRNA half-lives were comparable in normal and cancer cells. beta(1C) translation rate decreased in cancer cells in agreement with the decrease in mRNA levels, whereas beta(1A) translation rate increased more than 2-fold, despite the reduction in mRNA levels. Both beta(1C) and beta(1A) proteins were degraded more rapidly in cancer than in normal cells, and pulse-chase experiments showed that intermediates and/or rates of beta(1C) and beta(1A) protein maturation differ in cancer versus normal cells. Inhibition of either calpain- or lysosomal-mediated proteolysis increased both beta(1C) and beta(1A) protein levels, the former in normal but not in cancer cells and the latter in both cell types, albeit at a higher extent in cancer than in normal cells. Interestingly, inhibition of the ubiquitin proteolytic pathway increased expression of ubiquitinated beta(1C) protein without affecting beta(1A) protein levels in cancer cells. These results show that transcriptional, translational, and post-translational processes, the last involving the ubiquitin proteolytic pathway, contribute to the selective loss of beta(1C) integrin, a very efficient inhibitor of cell proliferation, in prostate malignant transformation.
Insights
The study reveals that prostate cancer cells selectively lose beta(1C) integrin, a cell proliferation inhibitor, due to complex transcriptional, translational, and post-translational changes, including the ubiquitin pathway. Beta(1A) integrin shows different regulatory mechanisms.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Integrins are crucial cell surface receptors involved in cell adhesion and signaling.
- Beta(1) integrin subfamily has splice variants, including beta(1C) (inhibits proliferation) and beta(1A) (stimulates proliferation).
- Prostate cancer exhibits altered expression of these integrin variants, impacting tumor behavior.
Purpose of the Study:
- To investigate the transcriptional, translational, and post-translational regulation of beta(1C) and beta(1A) integrins in prostate cancer.
- To understand the mechanisms behind the selective loss of beta(1C) integrin during prostate malignant transformation.
Main Methods:
- Utilized prostate cell lines (normal PNT1A, cancer LNCaP, PC-3) as an experimental model.
- Analyzed mRNA and protein levels, mRNA half-lives, translation rates, and protein degradation.
- Employed proteolysis inhibition (calpain, lysosomal, ubiquitin pathways) and pulse-chase experiments.
Main Results:
- Transcriptional regulation primarily drives reduced mRNA for both beta(1C) and beta(1A) integrins in cancer cells.
- Beta(1C) translation decreases, while beta(1A) translation increases despite lower mRNA levels.
- Both integrin proteins exhibit faster degradation in cancer cells, with distinct maturation pathways and involvement of the ubiquitin pathway for beta(1C).
Conclusions:
- Multiple regulatory levels (transcription, translation, post-translation) contribute to beta(1C) integrin loss in prostate cancer.
- The ubiquitin proteolytic pathway plays a role in the selective downregulation of beta(1C) integrin.
- Understanding these mechanisms offers insights into prostate cancer progression and potential therapeutic targets.
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