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Prostate Organoid Cultures as Tools to Translate Genotypes and Mutational Profiles to Pharmacological Responses
Published on: October 24, 2019
Proteomics analyses of prostate cancer cells reveal cellular pathways associated with androgen resistance
Naseruddin Höti1, Punit Shah1, Yingwei Hu1
1Department of Pathology, Johns Hopkins University, Baltimore, MD, USA.
Abstract:
While significant advances have been made in the diagnosis and treatment of prostate cancer, each year tens of thousands of men still die from prostate cancer in the United States. Thus, greater understanding of cellular pathways and molecular basis of prostate cancer progression in the development of androgen resistance is needed to treat these lethal phenotypes. To dissect the mechanism of androgen resistance, we utilize a proteomics approach to study the development of androgen resistance in LNCaP prostate cancer cells. Our results showed the predominant involvement of metabolic pathways that were elevated in androgen resistance phenotype. We further found the amplification of PI3K/AKT pathway and the overexpression of proteasome proteins while the mitochondrial oxidation phosphorylation was severely hampered in castration-resistant LNCaP-95 cells compared to LNCaP cells. Interestingly, we also found the induction of Dicer, a cytoplasmic endoribonuclease microRNA regulator in the androgen-ablated LNCaP-95 prostate cancer cells. We verified some of these data by orthogonal methods including Western blot analysis and in castrated animal xenograft studies. To our knowledge, this is the first report showing induced expression of proteasome proteins in androgen ablation prostate cancer cells. If validated in clinical studies, the findings will have significant implications in understanding the complexity of biochemical recurrence in prostate cancer.
Insights
Prostate cancer cells develop resistance to androgen deprivation therapy by altering metabolic pathways, amplifying the PI3K/AKT pathway, and increasing proteasome proteins. This study reveals key molecular changes driving lethal prostate cancer phenotypes.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Prostate cancer remains a leading cause of cancer death in the US.
- Androgen resistance is a critical factor in lethal prostate cancer progression.
- Understanding the molecular basis of androgen resistance is crucial for developing new therapies.
Purpose of the Study:
- To investigate the molecular mechanisms underlying androgen resistance in prostate cancer.
- To identify key cellular pathways and proteins involved in the development of castration-resistant prostate cancer.
Main Methods:
- Proteomics approach using LNCaP prostate cancer cells.
- Analysis of androgen-sensitive (LNCaP) and castration-resistant (LNCaP-95) cell lines.
- Orthogonal validation using Western blot and animal xenograft studies.
Main Results:
- Elevated metabolic pathways were predominant in the androgen resistance phenotype.
- Amplification of the PI3K/AKT pathway and overexpression of proteasome proteins were observed.
- Mitochondrial oxidative phosphorylation was significantly reduced, and Dicer was induced in castration-resistant cells.
Conclusions:
- Proteomics analysis reveals significant metabolic and pathway alterations in androgen-resistant prostate cancer.
- The findings highlight the role of proteasome protein overexpression and PI3K/AKT pathway amplification.
- This study is the first to report induced proteasome protein expression in androgen-ablated prostate cancer cells, with potential clinical implications for biochemical recurrence.
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