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雄激素受体(AR)与热休克蛋白27之间的协同相互作用促进了AR的转录活性。

Cooperative interactions between androgen receptor (AR) and heat-shock protein 27 facilitate AR transcriptional activity.

作者信息

Zoubeidi Amina, Zardan Anousheh, Beraldi Eliana, Fazli Ladan, Sowery Richard, Rennie Paul, Nelson Colleen, Gleave Martin

机构信息

The Prostate Centre, Vancouver General Hospital, and Department of Urological Sciences, University of British Columbia, Vancouver, British Columbia, Canada.

出版信息

Cancer Res. 2007 Nov 1;67(21):10455-65. doi: 10.1158/0008-5472.CAN-07-2057.

DOI:10.1158/0008-5472.CAN-07-2057
PMID:17974989
Abstract

Androgen receptor (AR) transactivation is known to enhance prostate cancer cell survival. However, the precise effectors by which the prosurvival effects of androgen and AR drive prostate cancer progression are poorly defined. Here, we identify a novel feed-forward loop involving cooperative interactions between ligand-activated AR and heat-shock protein 27 (Hsp27) phospho-activation that enhance AR stability, shuttling, and transcriptional activity, thereby increasing prostate cancer cell survival. Androgen-bound AR induces rapid Hsp27 phosphorylation on Ser(78) and Ser(82) residues in an AR- and p38 kinase-dependent manner. After this androgen-induced, non-nuclear phospho-activation, Hsp27 displaces Hsp90 from a complex with AR to chaperone AR into the nucleus and interact with its response elements to enhance its genomic activity. Inhibition of Hsp27 phosphorylation, or knockdown using the antisense drug OGX-427, shifted the association of AR with Hsp90 to MDM2, increased proteasome-mediated AR degradation, decreased AR transcriptional activity, and increased prostate cancer LNCaP cell apoptotic rates. OGX-427 treatment of mice bearing LNCaP xenografts transfected with an androgen-regulated, probasin-luciferase reporter construct resulted in decreased bioluminescence and serum PSA levels as pharmacodynamic readouts of AR activity, as well as AR, Hsp27, and Hsp90 protein levels in LNCaP tumor tissue. These data identify novel nongenomic mechanisms involving androgen, AR, and Hsp27 activation that cooperatively interact to regulate the genomic activity of AR and justify further investigation of Hsp27 knockdown as an AR disrupting therapeutic strategy in prostate cancer.

摘要

已知雄激素受体(AR)反式激活可增强前列腺癌细胞的存活能力。然而,雄激素和AR的促存活作用驱动前列腺癌进展的确切效应分子尚不清楚。在此,我们发现了一个新的前馈回路,该回路涉及配体激活的AR与热休克蛋白27(Hsp27)磷酸化激活之间的协同相互作用,这种相互作用增强了AR的稳定性、穿梭和转录活性,从而提高前列腺癌细胞的存活率。雄激素结合的AR以AR和p38激酶依赖性方式诱导Hsp27在Ser(78)和Ser(82)残基上快速磷酸化。在这种雄激素诱导的非核磷酸化激活后,Hsp27将Hsp90从与AR的复合物中置换出来,陪伴AR进入细胞核并与其反应元件相互作用,以增强其基因组活性。抑制Hsp27磷酸化或使用反义药物OGX-427敲低Hsp27,会使AR与Hsp90的结合转向MDM2,增加蛋白酶体介导的AR降解,降低AR转录活性,并提高前列腺癌LNCaP细胞的凋亡率。用OGX-427处理携带用雄激素调节的前列腺素荧光素酶报告构建体转染的LNCaP异种移植物的小鼠,导致生物发光和血清PSA水平降低,作为AR活性的药效学读数,以及LNCaP肿瘤组织中AR、Hsp27和Hsp90蛋白水平降低。这些数据确定了涉及雄激素、AR和Hsp27激活的新的非基因组机制相互协同作用以调节AR的基因组活性,并证明进一步研究敲低Hsp27作为前列腺癌中破坏AR的治疗策略是合理的。

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