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Chin, Lynda

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Chin

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Lynda

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Chin, Lynda

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  • Publication

    BRAF Activation Initiates but Does Not Maintain Invasive Prostate Adenocarcinoma

    (Public Library of Science, 2008) Jeong, Joseph H.; Wang, Zhenxiong; Ouyang, Xuesong; Jiang, Shan; Guney, Isil; Kang, Gyeong Hoon; Abate-Shen, Cory; Guimaraes, Alexander Savio Ramos; Figueiredo, Jose L.; Ding, Zhihu; Shin, Eyoung; Hahn, William; Loda, Massimo; Weissleder, Ralph; Chin, Lynda

    Prostate cancer is the second leading cause of cancer-related deaths in men. Activation of MAP kinase signaling pathway has been implicated in advanced and androgen-independent prostate cancers, although formal genetic proof has been lacking. In the course of modeling malignant melanoma in a tyrosinase promoter transgenic system, we developed a genetically-engineered mouse (GEM) model of invasive prostate cancers, whereby an activating mutation of BRAFV600E–a mutation found in ∼10% of human prostate tumors–was targeted to the epithelial compartment of the prostate gland on the background of Ink4a/Arf deficiency. These GEM mice developed prostate gland hyperplasia with progression to rapidly growing invasive adenocarcinoma without evidence of AKT activation, providing genetic proof that activation of MAP kinase signaling is sufficient to drive prostate tumorigenesis. Importantly, genetic extinction of BRAFV600E in established prostate tumors did not lead to tumor regression, indicating that while sufficient to initiate development of invasive prostate adenocarcinoma, BRAFV600E is not required for its maintenance.

  • Publication

    Targeting EGFR Induced Oxidative Stress by PARP1 Inhibition in Glioblastoma Therapy

    (Public Library of Science, 2010) Nitta, Masayuki; Stommel, Jayne; Ng, Kimberly; Kesari, Santosh; Furnari, Frank; Hoadley, Katherine A.; Cavenee, Webster K.; Kozono, David; Kennedy, Richard; Zinn, Pascal Olivier; Kushwaha, Deepa S; Chin, Lynda; DePinho, Ronald A.; D'Andrea, Alan; Chen, Clark Chin-Chung

    Despite the critical role of Epidermal Growth Factor Receptor (EGFR) in glioblastoma pathogenesis [1], [2], EGFR targeted therapies have achieved limited clinical efficacy [3]. Here we propose an alternate therapeutic strategy based on the conceptual framework of non-oncogene addiction [4], [5]. A directed RNAi screen revealed that glioblastoma cells over-expressing EGFRvIII [6], an oncogenic variant of EGFR, become hyper-dependent on a variety of DNA repair genes. Among these, there was an enrichment of Base Excision Repair (BER) genes required for the repair of Reactive Oxygen Species (ROS)-induced DNA damage, including poly-ADP ribose polymerase 1 (PARP1). Subsequent studies revealed that EGFRvIII over-expression in glioblastoma cells caused increased levels of ROS, DNA strand break accumulation, and genome instability. In a panel of primary glioblastoma lines, sensitivity to PARP1 inhibition correlated with the levels of EGFR activation and oxidative stress. Gene expression analysis indicated that reduced expression of BER genes in glioblastomas with high EGFR expression correlated with improved patient survival. These observations suggest that oxidative stress secondary to EGFR hyper-activation necessitates increased cellular reliance on PARP1 mediated BER, and offer critical insights into clinical trial design.