PO.TB03.02 · 肿瘤生物学

动态雄激素信号在前列腺癌中协调上皮-间充质转化和表观遗传记忆

Dynamic androgen signaling orchestrates epithelial-mesenchymal transitions and epigenetic memory in prostate cancer

编号 4828 展板 2 时间 4/21 09:00–12:00 区域 Section 27 主讲 Zhongchi Li, PhD
分会场 Epithelial-to-Mesenchymal Transition
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作者与单位 Authors & Affiliations

Zhongchi Li1, John Blenis2

1Pharmacology, Weill Cornell Medicine, New York, NY,2Professor of Pharmacology, Weill Cornell Medical College, New York, NY

摘要 Abstract

中文摘要
前列腺癌是最与衰老相关的恶性肿瘤之一,其发病率在老年男性中急剧上升。尽管雄激素受体(AR)的过度激活促进肿瘤生长并为雄激素剥夺疗法(ADT)提供了理论依据,但循环雄激素水平却矛盾地随年龄下降。这一矛盾凸显了需要以情境依赖的方式解读AR功能。上皮-间充质转化(EMT)是转移的核心驱动因素,也是一种常见的应激适应程序。AR靶向疗法,包括ADT和enzalutamide,可诱导部分EMT并促进侵袭性肿瘤状态,然而前列腺肿瘤细胞在此过程中如何动态调节AR信号仍不清楚。在此,我们将雄激素依赖性前列腺肿瘤细胞暴露于雄激素撤除、enzalutamide或TGFbeta刺激,并分析了应激适应不同阶段的AR活性、EMT标志物和转移行为。AR抑制和TGFbeta信号均触发EMT,其特征为AR活性的早期抑制。这一初始的AR下调是肿瘤细胞获得间充质特征和增强运动性所必需的。在移除TGFbeta后,类固醇生成恢复,逐渐重建AR信号。晚期AR再激活促进间充质-上皮转化(MET),重建上皮身份并稳定细胞状态。类固醇生成对这种EMT-MET再平衡至关重要,因为抑制它会诱导氧化还原氧化失衡并破坏适应循环的完成。完成这种EMT-MET转化的细胞对雄激素剥夺更具耐受性,在球体培养中增殖更快,并表现出全局性升高的组蛋白丙酰化,表明建立了强化肿瘤可塑性的表观遗传"记忆"。总之,这些发现界定了一个动态的AR-EMT-类固醇生成回路,其控制前列腺癌的可塑性和治疗适应。该模型为尽管雄激素水平随年龄下降但前列腺癌发病率却增加这一矛盾提供了潜在解释。它还提示恢复AR活性可能抑制EMT和转移,而靶向组蛋白丙酰化可预防治疗诱导的侵袭性并与AR导向疗法协同。
查看英文原文 English abstract
Prostate cancer is one of the most aging-associated malignancies, with incidence rising sharply in older men. Although hyperactivation of the androgen receptor (AR) promotes tumor growth and provides the rationale for androgen deprivation therapy (ADT), circulating androgen levels paradoxically decline with age. This contradiction underscores the need to interpret AR function in a context-dependent manner. Epithelial-mesenchymal transition (EMT) is a central driver of metastasis and a common stress-adaptation program. AR-targeted therapies, including ADT and enzalutamide, can induce partial EMT and promote aggressive tumor states, yet how prostate tumor cells dynamically modulate AR signaling during this process remains unclear. Here, we exposed androgen dependent prostate tumor cells to androgen withdrawal, enzalutamide, or TGFbeta stimulation and profiled AR activity, EMT markers, and metastatic behaviors across distinct stages of stress adaptation. Both AR inhibition and TGFbeta signaling triggered EMT, marked by early suppression of AR activity. This initial AR downregulation was required for tumor cells to acquire mesenchymal features and enhanced motility. After TGFbeta is removed, steroidogenesis was recovered, gradually restoring AR signaling. Late-phase AR reactivation promoted mesenchymal-epithelial transition (MET), re-establishing epithelial identity and stabilizing cell state. Steroidogenesis was essential for this EMT-MET rebalancing, as its inhibition induce redox oxidative imbalance and disrupted the completion of the adaptive cycle. Cells completing this EMT-MET transition became more resistant to androgen deprivation, proliferated more rapidly in spheroid culture, and exhibited globally elevated histone propionylation, indicating the establishment of an epigenetic “memory” that reinforces tumor plasticity. Together, these findings define a dynamic AR-EMT-steroidogenesis circuit that governs prostate cancer plasticity and therapeutic adaptation. This model provides a potential explanation for the paradox of increased prostate cancer incidence despite declining androgen levels with age. It also suggests that restoring AR activity may suppress EMT and metastasis, and that targeting histone propionylation could prevent therapy-induced aggressiveness and synergize with AR-directed therapies.
利益披露 Disclosure
Z. Li, None.

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