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磷酸酪氨酸信号的全球调查确定了肺癌中的致癌激酶。

Global survey of phosphotyrosine signaling identifies oncogenic kinases in lung cancer.

作者信息

Rikova Klarisa, Guo Ailan, Zeng Qingfu, Possemato Anthony, Yu Jian, Haack Herbert, Nardone Julie, Lee Kimberly, Reeves Cynthia, Li Yu, Hu Yerong, Tan Zhiping, Stokes Matthew, Sullivan Laura, Mitchell Jeffrey, Wetzel Randy, Macneill Joan, Ren Jian Min, Yuan Jin, Bakalarski Corey E, Villen Judit, Kornhauser Jon M, Smith Bradley, Li Daiqiang, Zhou Xinmin, Gygi Steven P, Gu Ting-Lei, Polakiewicz Roberto D, Rush John, Comb Michael J

机构信息

Cell Signaling Technology, 3 Trask Lane, Danvers, MA 01923, USA.

出版信息

Cell. 2007 Dec 14;131(6):1190-203. doi: 10.1016/j.cell.2007.11.025.

Abstract

Despite the success of tyrosine kinase-based cancer therapeutics, for most solid tumors the tyrosine kinases that drive disease remain unknown, limiting our ability to identify drug targets and predict response. Here we present the first large-scale survey of tyrosine kinase activity in lung cancer. Using a phosphoproteomic approach, we characterize tyrosine kinase signaling across 41 non-small cell lung cancer (NSCLC) cell lines and over 150 NSCLC tumors. Profiles of phosphotyrosine signaling are generated and analyzed to identify known oncogenic kinases such as EGFR and c-Met as well as novel ALK and ROS fusion proteins. Other activated tyrosine kinases such as PDGFRalpha and DDR1 not previously implicated in the genesis of NSCLC are also identified. By focusing on activated cell circuitry, the approach outlined here provides insight into cancer biology not available at the chromosomal and transcriptional levels and can be applied broadly across all human cancers.

摘要

尽管基于酪氨酸激酶的癌症治疗取得了成功,但对于大多数实体瘤来说,驱动疾病的酪氨酸激酶仍然未知,这限制了我们识别药物靶点和预测反应的能力。在此,我们展示了对肺癌中酪氨酸激酶活性的首次大规模调查。我们采用磷酸化蛋白质组学方法,对41种非小细胞肺癌(NSCLC)细胞系和150多个NSCLC肿瘤中的酪氨酸激酶信号传导进行了表征。生成并分析了磷酸酪氨酸信号图谱,以识别已知的致癌激酶,如表皮生长因子受体(EGFR)和c-Met,以及新的间变性淋巴瘤激酶(ALK)和ROS融合蛋白。还鉴定出了其他先前未被认为与NSCLC发生有关的活化酪氨酸激酶,如血小板衍生生长因子受体α(PDGFRalpha)和盘状结构域受体1(DDR1)。通过关注活化的细胞通路,本文概述的方法提供了在染色体和转录水平无法获得的癌症生物学见解,并且可以广泛应用于所有人类癌症。

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