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A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Androgen deprivation therapy for prostate cancer chemoprevention: current status and future directions for agent
1Prostate and Urologic Cancer Research Group, Division of Cancer Prevention, National Cancer Institute, Rockville, Maryland 20852, USA.
Abstract:
Prostate cancer chemoprevention is defined as the administration of natural and synthetic agents that inhibit >/=1 steps in the natural history of prostate carcinogenesis. The goal is to find agents that modulate the progression from normal epithelium to dysplasia to high-grade prostatic intraepithelial neoplasia (HGPIN) to locally invasive cancer and systemic disease. Another important goal for chemoprevention is the maintenance of an androgen-sensitive clinical state and delay of the emergence of androgen independence. There is a strong rationale for androgen deprivation therapy (ADT) as a chemoprevention strategy for prostate cancer based on evidence from epidemiologic, experimental, molecular pathophysiologic, and randomized, controlled clinical trials. This includes the fact that HGPIN, the most likely precursor of invasive cancer, is androgen dependent and responds to ADT. Although the large, phase-3 Prostate Cancer Prevention Trial (PCPT) of finasteride versus placebo has established the feasibility and role of ADT for primary prevention, nevertheless, limitations of the anticipated treatment-effect size (eg, 25% reduction) and the potential for selection of androgen resistance provide incentive for finding other effective chemopreventive agents. The availability of novel noncytotoxic pharmaceutical and natural products in clinical development create opportunities for improving the therapeutic index through the principles of combination therapy. The emergence of new powerful tools, such as gene chip complementary DNA microarrays for multiplex gene expression profiling, will accelerate the identification of new molecular targets and the design of rational combinations. Several agent classes have a strong basis for combination with ADT, including antiproliferatives, antioxidant micronutrients (selenium), antiestrogens, and nonsteroidal anti-inflammatory drugs (selective cyclooxygenase-2 inhibitors).
Insights
Prostate cancer chemoprevention aims to prevent cancer progression using agents that inhibit carcinogenesis. Androgen deprivation therapy (ADT) shows promise, but new combination therapies are needed to overcome resistance and improve outcomes.
Area of Science:
- Oncology
- Chemoprevention Research
Background:
- Prostate cancer chemoprevention involves agents inhibiting carcinogenesis stages.
- High-grade prostatic intraepithelial neoplasia (HGPIN) is a precursor to invasive cancer and is androgen-dependent.
- Androgen deprivation therapy (ADT) is a key strategy, supported by extensive evidence.
Purpose of the Study:
- To explore novel chemoprevention strategies for prostate cancer.
- To identify agents that delay androgen independence and improve treatment efficacy.
- To leverage new molecular tools for rational drug combination development.
Main Methods:
- Review of existing evidence for ADT in prostate cancer chemoprevention.
- Exploration of combination therapy principles using novel pharmaceutical and natural products.
- Utilizing gene chip complementary DNA microarrays for molecular target identification.
Main Results:
- The Prostate Cancer Prevention Trial (PCPT) established ADT feasibility but highlighted limitations like treatment-effect size and androgen resistance.
- Novel noncytotoxic agents offer opportunities for improved therapeutic index via combination therapy.
- Advancements in gene expression profiling accelerate the identification of new molecular targets.
Conclusions:
- Combination therapy with ADT holds significant potential for enhancing prostate cancer chemoprevention.
- Agents like antiproliferatives, selenium, antiestrogens, and COX-2 inhibitors are promising candidates for combination.
- Future research should focus on rational combinations to improve efficacy and overcome resistance.
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