多胺
前列腺癌
雄激素
癌症研究
内分泌学
雄激素剥夺疗法
雄激素受体
内科学
癌症
医学
代谢途径
抗雄激素
新陈代谢
生物
CYP17A1型
药理学
雄激素抑制
前列腺
化学
雄激素过量
癌细胞
肿瘤进展
鸟氨酸脱羧酶
代谢紊乱
作者
Mohammadreza Alizadeh-Ghodsi,A M Goldstein
出处
期刊:Cancer Research
[American Association for Cancer Research]
日期:2026-03-02
卷期号:86 (5): 1095-1097
标识
DOI:10.1158/0008-5472.can-25-4807
摘要
Prostate cancer progression is predominantly driven by androgen receptor (AR) signaling, and despite initial benefits of androgen deprivation therapy (ADT), most patients eventually develop lethal castration-resistant disease. Cyclic administration of supraphysiologic androgen (SPA) with ADT paradoxically suppresses tumor growth; however, responses are heterogeneous, and the mechanisms underlying the antitumor effects of SPA remain incompletely understood. In this issue of Cancer Research, Kumar and colleagues demonstrate that SPA induces a distinct metabolic response, characterized by AR-dependent induction of polyamine biosynthesis via ODC1 and AMD1. This metabolic rewiring elevates polyamine synthesis while concurrently depleting the methyl donor S-adenosylmethionine (SAM). Although increased polyamine metabolism by SPA may promote adaptive resistance, genetic or pharmacologic inhibition of ODC1 using difluoromethylornithine (DFMO) enhances SPA-induced growth suppression by disrupting protective polyamine pools and further exacerbating SAM depletion, revealing a metabolic vulnerability in SPA-treated prostate cancer cells. Supporting these findings, a clinical trial combining DFMO with bipolar androgen therapy (BAT) demonstrated reduced circulating polyamines in patients, confirming polyamine pathway suppression in patients with different genomic features. Together, this study uncovers a mechanistic link among androgen signaling, polyamine metabolism, and therapeutic response, providing a rationale for targeting metabolic dependencies to improve SPA efficacy. See related article by Kumar et al., p. 1148.
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