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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
Gene Expression Profiling Analysis Reveals Putative Phytochemotherapeutic Target for Castration-Resistant Prostate
Solomon Oladapo Rotimi1, Oluwakemi Anuoluwapo Rotimi1, Abdulkadir Ayo Salako2
1Department of Biochemistry and Molecular Biology Research Laboratory, Covenant University, Ota, Nigeria.
Abstract:
Prostate cancer is the leading cause of cancer death among men globally, with castration development resistant contributing significantly to treatment failure and death. By analyzing the differentially expressed genes between castration-induced regression nadir and castration-resistant regrowth of the prostate, we identified soluble guanylate cyclase 1 subunit alpha as biologically significant to driving castration-resistant prostate cancer. A virtual screening of the modeled protein against 242 experimentally-validated anti-prostate cancer phytochemicals revealed potential drug inhibitors. Although, the identified four non-synonymous somatic point mutations of the human soluble guanylate cyclase 1 gene could alter its form and ligand binding ability, our analysis identified compounds that could effectively inhibit the mutants together with wild-type. Of the identified phytochemicals, (8'R)-neochrome and (8'S)-neochrome derived from the Spinach (Spinacia oleracea) showed the highest binding energies against the wild and mutant proteins. Our results identified the neochromes and other phytochemicals as leads in pharmacotherapy and as nutraceuticals in management and prevention of castration-resistance prostate cancers.
Insights
Researchers identified spinach compounds, neochromes, as potential treatments for castration-resistant prostate cancer. These phytochemicals show promise in inhibiting key proteins driving this aggressive cancer, offering new therapeutic and nutraceutical options.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Prostate cancer is a leading global cause of cancer death in men.
- Castration resistance significantly contributes to treatment failure and mortality in prostate cancer patients.
Purpose of the Study:
- To identify key genes involved in castration-resistant prostate cancer (CRPC).
- To discover novel phytochemical inhibitors for CRPC treatment.
Main Methods:
- Differential gene expression analysis between regressed and resistant prostate tissue.
- Virtual screening of anti-prostate cancer phytochemicals against identified target proteins.
- Analysis of phytochemical binding affinities to wild-type and mutant target proteins.
Main Results:
- Soluble guanylate cyclase 1 (sGCα1) was identified as a significant driver of CRPC.
- Virtual screening identified several potential phytochemical inhibitors of sGCα1.
- (8'R)-neochrome and (8'S)-neochrome from spinach exhibited high binding energies against wild-type and mutant sGCα1.
Conclusions:
- Neo-chromes and other identified phytochemicals are promising leads for CRPC pharmacotherapy.
- These compounds may serve as nutraceuticals for managing and preventing castration-resistant prostate cancer.
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