| Literature DB >> 24759590 |
Mark N Stein1, Neal Patel, Alexander Bershadskiy, Alisa Sokoloff, Eric A Singer.
Abstract
Suppression of gonadal testosterone synthesis represents the standard first line therapy for treatment of metastatic prostate cancer. However, in the majority of patients who develop castration-resistant prostate cancer (CRPC), it is possible to detect persistent activation of the androgen receptor (AR) through androgens produced in the adrenal gland or within the tumor itself. Abiraterone acetate was developed as an irreversible inhibitor of the dual functional cytochrome P450 enzyme CYP17 with activity as a 17α-hydroxylase and 17,20-lyase. CYP17 is necessary for production of nongonadal androgens from cholesterol. Regulatory approval of abiraterone in 2011, based on a phase III trial showing a significant improvement in overall survival (OS) with abiraterone and prednisone versus prednisone, represented proof of principle that targeting AR is essential for improving outcomes in men with CRPC. Inhibition of 17α-hydroxylase by abiraterone results in accumulation of upstream mineralocorticoids due to loss of cortisol-mediated suppression of pituitary adrenocorticotropic hormone (ACTH), providing a rationale for development of CYP17 inhibitors with increased specificity for 17,20-lyase (orteronel, galeterone and VT-464) that can potentially be administered without exogenous corticosteroids. In this article, we review the development of abiraterone and other CYP17 inhibitors; recent studies with abiraterone that inform our understanding of clinical parameters such as drug effects on quality-of-life, potential early predictors of response, and optimal sequencing of abiraterone with respect to other agents; and results of translational studies providing insights into resistance mechanisms to CYP17 inhibitors leading to clinical trials with drug combinations designed to prolong abiraterone benefit or restore abiraterone activity.Entities:
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Year: 2014 PMID: 24759590 PMCID: PMC4023364 DOI: 10.4103/1008-682X.129133
Source DB: PubMed Journal: Asian J Androl ISSN: 1008-682X Impact factor: 3.285
Figure 1Steroid synthesis pathways. Mineralocorticoid, glucocorticoid, dehydroepiandrosterone, and androstenediol synthesis take place in the adrenal gland. Testosterone is converted to dihydrotestosterone (DHT) in peripheral tissue. Abiraterone inhibits both the 17α-hydroxylase and 17,20-lyase activity of the cytochrome p450 enzyme CYP17. Orteronel and galeterone have increased specificity for 17,20-lyase relative to 17α–hydroxylase. VT-464 has 10-fold in vitro specificity for the 17,20-lyase reaction over 17α-hydroxylase. Androgens in the 5α-androstanedione pathway for production of DHT are noted with*. 3βHSD: 3β-hydroxysteroid dehydrogenase; SRD5A: steroid 5 alpha reductase; DHT: dihydrotestosterone; DHEA: dehydroepiandrosterone.
Figure 2Mechanisms of resistance to CYP17 inhibitors. Androgen receptor (AR) ligand dependent mechanisms of resistance include increase of intratumoral androgen concentrations through increase in CYP17, increase in cholesterol import into the cell, acquired mutation in the androgen synthesis enzyme 3BHSD. Ligand independent activation may occur through induction of AR splice variants, through alterations of co-factors modulating AR function and potentially through activity of the GR. N: N-terminal domain of androgen receptor; C: C-terminal domain of androgen receptor; DBD: DNA binding domain.
Planned/ongoing clinical trials to optimize use or overcome resistance to Abiraterone in patients with metastatic CRPC (or in other disease states as noted with*)