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Reversed expression of GRIM-1 and GRP78 in human non-small cell lung cancer.GRIM-1与GRP78在人非小细胞肺癌中的表达相反。
Hum Pathol. 2014 Sep;45(9):1936-43. doi: 10.1016/j.humpath.2014.04.023. Epub 2014 Jun 18.
2
RapidCaP, a novel GEM model for metastatic prostate cancer analysis and therapy, reveals myc as a driver of Pten-mutant metastasis.RapidCaP,一种用于转移性前列腺癌分析和治疗的新型 GEM 模型,揭示了 myc 作为 Pten 突变型转移的驱动因素。
Cancer Discov. 2014 Mar;4(3):318-33. doi: 10.1158/2159-8290.CD-13-0346. Epub 2014 Jan 20.
3
Tracking the clonal origin of lethal prostate cancer.追踪致命性前列腺癌的克隆起源。
J Clin Invest. 2013 Nov;123(11):4918-22. doi: 10.1172/JCI70354. Epub 2013 Oct 25.
4
Recurrent deletion of 3p13 targets multiple tumour suppressor genes and defines a distinct subgroup of aggressive ERG fusion-positive prostate cancers.3p13 缺失重现可靶向多个肿瘤抑制基因,并定义了一组具有独特特征的 ERG 融合阳性前列腺癌亚群。
J Pathol. 2013 Sep;231(1):130-41. doi: 10.1002/path.4223.
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Animal models of human prostate cancer: the consensus report of the New York meeting of the Mouse Models of Human Cancers Consortium Prostate Pathology Committee.人类前列腺癌动物模型:人类癌症小鼠模型联盟前列腺病理学委员会纽约会议共识报告。
Cancer Res. 2013 May 1;73(9):2718-36. doi: 10.1158/0008-5472.CAN-12-4213. Epub 2013 Apr 22.
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Regulation of snoRNAs in cancer: close encounters with interferon.snoRNA 在癌症中的调控:与干扰素的近距离接触。
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Integrative analysis of complex cancer genomics and clinical profiles using the cBioPortal.利用 cBioPortal 进行复杂癌症基因组学和临床特征的综合分析
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Identification of eight candidate target genes of the recurrent 3p12-p14 loss in cervical cancer by integrative genomic profiling.整合基因组分析鉴定宫颈癌中反复出现的 3p12-p14 缺失的 8 个候选靶基因。
J Pathol. 2013 May;230(1):59-69. doi: 10.1002/path.4168. Epub 2013 Mar 14.
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The mutational landscape of lethal castration-resistant prostate cancer.致命性去势抵抗性前列腺癌的突变全景。
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The genomic landscape of prostate cancer.前列腺癌的基因组景观。
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源自PTEN突变型前列腺转移基因组的候选驱动基因的快速体内验证。

Rapid in vivo validation of candidate drivers derived from the PTEN-mutant prostate metastasis genome.

作者信息

Cho Hyejin, Herzka Tali, Stahlhut Carlos, Watrud Kaitlin, Robinson Brian D, Trotman Lloyd C

机构信息

Cold Spring Harbor Laboratory, One Bungtown Road, Cold Spring Harbor, NY 11724, USA.

Department of Pathology & Laboratory Medicine, New York-Presbyterian Hospital, Weill Cornell Medical College, 1300 York Avenue, 525 East 68th Street, New York, NY 10065, USA.

出版信息

Methods. 2015 May;77-78:197-204. doi: 10.1016/j.ymeth.2014.12.022. Epub 2015 Jan 12.

DOI:10.1016/j.ymeth.2014.12.022
PMID:25592467
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4429512/
Abstract

Human genome analyses have revealed that increasing gene copy number alteration is a driving force of incurable cancer of the prostate (CaP). Since most of the affected genes are hidden within large amplifications or deletions, there is a need for fast and faithful validation of drivers. However, classic genetic CaP engineering in mouse makes this a daunting task because generation, breeding based combination of alterations and non-invasive monitoring of disease are too time consuming and costly. To address the unmet need, we recently developed RapidCaP mice, which endogenously recreate human PTEN-mutant metastatic CaP based on Cre/Luciferase expressing viral infection, that is guided to Pten(loxP)/Trp53(loxP) prostate. Here we use a sensitized, non-metastatic Pten/Trp53-mutant RapidCaP system for functional validation of human metastasis drivers in a much accelerated time frame of only 3-4months. We used in vivo RNAi to target three candidate tumor suppressor genes FOXP1, RYBP and SHQ1, which reside in a frequent deletion on chromosome 3p and show that Shq1 cooperates with Pten and p53 to suppress metastasis. Our results thus demonstrate that the RapidCaP system forms a much needed platform for in vivo screening and validation of genes that drive endogenous lethal CaP.

摘要

人类基因组分析表明,基因拷贝数改变的增加是前列腺癌(CaP)难以治愈的驱动因素。由于大多数受影响的基因隐藏在大片段扩增或缺失中,因此需要快速且准确地验证驱动基因。然而,经典的小鼠前列腺癌基因工程使得这项任务艰巨,因为基因改变的产生、基于繁殖的组合以及疾病的非侵入性监测都非常耗时且成本高昂。为满足这一未被满足的需求,我们最近开发了快速前列腺癌(RapidCaP)小鼠,其通过表达Cre/荧光素酶的病毒感染内源性重现人类PTEN突变的转移性前列腺癌,并将其引导至Pten(loxP)/Trp53(loxP)前列腺。在此,我们使用一种敏感的、非转移性的Pten/Trp53突变RapidCaP系统,在仅3 - 4个月的加速时间框架内对人类转移驱动基因进行功能验证。我们使用体内RNA干扰靶向三个候选肿瘤抑制基因FOXP1、RYBP和SHQ1,它们位于3号染色体短臂的常见缺失区域,并表明Shq1与Pten和p53协同作用以抑制转移。因此,我们的结果表明,RapidCaP系统形成了一个急需的平台,用于体内筛选和验证驱动内源性致命前列腺癌的基因。