Prostate Cancer: Transition to Androgen - Independence (CA77739)
Prostate Cancer: Transition to Androgen - Independence (CA77739)
批准号:
8470550
负责人:
FRANK S FRENCH
金额:
$59.07万
依托单位国家:
美国
项目类别:
财政年份:
1998
资助国家:
美国
项目状态:
已结题
起止时间:
1998-08-01 至 2015-03-31
关键词:
AdenovirusesAdultAnabolismAndrogen MetabolismAndrogen ReceptorAndrogensCancer Cell GrowthCastrationCaveolaeCell CycleCell Cycle ProteinsCell Cycle RegulationCell ProliferationCell Surface ReceptorsCell physiologyClinical TrialsDependenceDisease remissionEndocytosisEndothelial CellsEnzyme Inhibitor DrugsEnzyme InhibitorsEpigenetic ProcessEpithelial CellsFresh TissueGenesGrowthHumanLigandsLinkMaintenanceMalignant neoplasm of prostateMediatingMetabolismPathway interactionsPhenotypePrincipal InvestigatorPropertyProstateRadical ProstatectomyReceptor CellReceptor SignalingRecurrenceRegulationResearchRetinoblastomaRetinoblastoma ProteinSignal TransductionSpecimenStem cellsSteroidsStimulation of Cell ProliferationTestingTissuesTumor Suppressor ProteinsXenograft Modelbasecancer stem cellcell growthcyclin-dependent kinase inhibitor 1Bdeprivationnon-genomicoverexpressionpreventprogramsprostate cancer cellreceptor functionstem cell nichetranscytosistumor progression
中文摘要
正在进行的研究表明雄激素受体(AR)信号对雄激素剥夺期间前列腺癌(CaP)复发至关重要。首先,发现复发性CaP的组织雄激素水平足以刺激AR的生长,阻断AR功能会抑制生长。最近的临床试验很好地支持了这些观察结果,表明复发性CaP对类固醇酶抑制剂治疗有反应,该抑制剂可阻断CaP组织中雄激素的合成。其次,随着MAGE-11的发现,在理解AR刺激细胞增殖方面取得了重大进展。MAGE-11是一种在复发性CaP中过表达的AR共调节因子,通过与关键细胞周期调节蛋白和肿瘤抑制因子的相互作用,将AR与细胞生长联系起来。初步研究表明MAGE-11对AR刺激细胞增殖至关重要。第三,在前列腺微血管内皮细胞中发现AR。一种独特的人类前列腺异种移植模型,利用根治性前列腺切除术标本的新鲜组织,允许研究AR在前列腺微血管中的作用,以及雄激素通过内皮屏障运输的调节。该POI应用的统一假设是,雄激素剥夺疗法结合针对AR的新策略可以更有效地治疗晚期CaP。项目1将采用阻止雄激素合成、导致AR配体或其前体降解和/或消除AR功能的策略,在去势后期间消除AR转录活性。项目2将描述MAGE-11作为抑制ar刺激细胞生长的靶标。本研究将建立MAGE-11表达的细胞周期依赖性和MAGE-11敲低对细胞增殖的影响,鉴定MAGE-11灭活视网膜母细胞瘤袋蛋白Rb和p107的腺病毒eia样特性,并通过降解p27-Kip1抑瘤因子,确定MAGE-11和Rb/p107对Skp2刺激细胞增殖的影响。项目3将确定雄激素剥夺对前列腺微血管内皮细胞功能的影响,包括雄激素的内吞作用、代谢和运输,识别CaP干细胞中HNF-4a的异常功能,并在雄激素剥夺治疗期间使用与内皮类固醇屏障扰动相关的策略来靶向CaP干细胞。
英文摘要
Ongoing research in this POI has contributed significantly to the concept that androgen receptor (AR) signaling is essential to the recurrence of prostate cancer (CaP) during androgen deprivation. First, it was discovered that tissue androgen levels in recurrent CaP are sufficient for AR stimulation of growth, and that blocking AR function inhibits growth. These observations are well supported by recent clinical trials showing that recurrent CaP responds to treatment with a steroidogenic enzyme inhibitor that blocks the synthesis of androgens in CaP tissue. Second, with the discovery of MAGE-11, major progress has been made towards understanding AR stimulation of cell proliferation. MAGE-11, an AR coregulator overexpressed in recurrent CaP, links AR to cell growth through interactions with key cell cycle regulatory proteins and tumor suppressors. Initial studies indicate that MAGE-11 is vital to AR stimulation of cell proliferation. Third, AR was identified in endothelial cells of the prostate microvasculature. A unique human prostate xenograft model that utilizes fresh tissue from radical prostatectomy specimens has been developed that allows for the study of AR action in the prostate microvasculature, and the regulation of androgen transport across the endothelial barrier. The unifying hypothesis of this POI application is that advanced CaP can be treated more effectively by androgen deprivation therapy combined with new strategies that target the AR. Project 1 will pursue the elimination ofAR transcriptional activity during the post-castration period using strategies that prevent the synthesis of androgen, cause the degradation of AR ligands or their precursors and/or eliminate AR function. Project 2 will characterize MAGE-11 as a target for inhibition of AR-stimulated cell growth. It will establish the cell cycle dependence of MAGE-11 expression and the effect of MAGE-11 knockdown on cell proliferation, identify the adenovirus EIA-Iike properties of MAGE-11 that inactivate the retinoblastoma pocket proteins, Rb and p107, and determine the influence of MAGE-11 and Rb/p107 on Skp2 stimulation of cell proliferation through the degradation of the p27-Kip1 tumor suppressor. Project 3 will determine the effects of androgen deprivation on endothelial cell functions ofthe prostate microvasculature including androgen endocytosis, metabolism and transport, identify aberrant functions of HNF-4a in CaP stem cells, and target CaP stem cells using strategies related to perturbation of the endothelial steroid barrier during androgen deprivation therapy.
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