SU14813: a novel multiple receptor tyrosine kinase inhibitor with potent antiangiogenic and antitumor activity
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- Shem Patyna
- 1Pfizer Global Research and Development;
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- A. Douglas Laird
- 3Exelixis, Inc.;
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- Dirk B. Mendel
- 5Chiron Corp., Emeryville, California;
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- Anne-Marie O'Farrell
- 2Phenomix Corp., San Diego, California;
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- Chris Liang
- 6The Scripps Research Institute;
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- Huiping Guan
- 8AstraZeneca PLC, Waltham, Massachusetts;
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- Tomas Vojkovsky
- 6The Scripps Research Institute;
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- Stefan Vasile
- 7The Burnham Institute, La Jolla, California;
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- Xueyan Wang
- 9Metabolex, Inc., Hayward, California; and
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- Jeffrey Chen
- 1Pfizer Global Research and Development;
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- Maren Grazzini
- 1Pfizer Global Research and Development;
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- Cheng Y. Yang
- 10Gilead Sciences, Inc., Foster City, California
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- Joshua Ö. Haznedar
- 5Chiron Corp., Emeryville, California;
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- Juthamas Sukbuntherng
- 4Celera Genomics, Inc., South San Francisco, California;
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- Wei-Zhu Zhong
- 1Pfizer Global Research and Development;
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- Julie M. Cherrington
- 2Phenomix Corp., San Diego, California;
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- Dana Hu-Lowe
- 1Pfizer Global Research and Development;
書誌事項
- 公開日
- 2006-07-01
- DOI
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- 10.1158/1535-7163.mct-05-0333
- 公開者
- American Association for Cancer Research (AACR)
この論文をさがす
説明
<jats:title>Abstract</jats:title><jats:p>Receptor tyrosine kinases (RTK), such as vascular endothelial growth factor receptor (VEGFR), platelet-derived growth factor receptor (PDGFR), stem cell factor receptor (KIT), and fms-like tyrosine kinase 3 (FLT3), are expressed in malignant tissues and act in concert, playing diverse and major roles in angiogenesis, tumor growth, and metastasis. With the exception of a few malignancies, seemingly driven by a single genetic mutation in a signaling protein, most tumors are the product of multiple mutations in multiple aberrant signaling pathways. Consequently, simultaneous targeted inhibition of multiple signaling pathways could be more effective than inhibiting a single pathway in cancer therapies. Such a multitargeted strategy has recently been validated in a number of preclinical and clinical studies using RTK inhibitors with broad target selectivity. SU14813, a small molecule identified from the same chemical library used to isolate sunitinib, has broad-spectrum RTK inhibitory activity through binding to and inhibition of VEGFR, PDGFR, KIT, and FLT3. In cellular assays, SU14813 inhibited ligand-dependent and ligand-independent proliferation, migration, and survival of endothelial cells and/or tumor cells expressing these targets. SU14813 inhibited VEGFR-2, PDGFR-β, and FLT3 phosphorylation in xenograft tumors in a dose- and time-dependent fashion. The plasma concentration required for in vivo target inhibition was estimated to be 100 to 200 ng/mL. Used as monotherapy, SU14813 exhibited broad and potent antitumor activity resulting in regression, growth arrest, or substantially reduced growth of various established xenografts derived from human or rat tumor cell lines. Treatment in combination with docetaxel significantly enhanced both the inhibition of primary tumor growth and the survival of the tumor-bearing mice compared with administration of either agent alone. In summary, SU14813 inhibited target RTK activity in vivo in association with reduction in angiogenesis, target RTK-mediated proliferation, and survival of tumor cells, leading to broad and potent antitumor efficacy. These data support the ongoing phase I clinical evaluation of SU14813 in advanced malignancies. [Mol Cancer Ther 2006;5(7):1774–82]</jats:p>
収録刊行物
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- Molecular Cancer Therapeutics
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Molecular Cancer Therapeutics 5 (7), 1774-1782, 2006-07-01
American Association for Cancer Research (AACR)
