GF-15, a Novel Inhibitor of Centrosomal Clustering, Suppresses Tumor Cell Growth In Vitro and In Vivo

Publication: Research - peer-reviewJournal article – Annual report year: 2012

  • Author: Raab, Marc S.

    Department of Internal Medicine V, University of Heidelberg

  • Author: Breitkreutz, Iris

    National Center for Tumor Diseases, University of Heidelberg

  • Author: Anderhub, Simon

    Clinical Cooperation Unit Molecular Hematology/Oncology, German Cancer Research Center and Department of Internal Medicine V, University of Heidelberg

  • Author: Rønnest, Mads Holger

    Center for Microbial Biotechnology, Department of Systems Biology, Technical University of Denmark, Søltofts Plads, 2800, Kgs. Lyngby

  • Author: Leber, Blanka

    Clinical Cooperation Unit Molecular Hematology/Oncology, German Cancer Research Center and Department of Internal Medicine V, University of Heidelberg

  • Author: Larsen, Thomas Ostenfeld

    Center for Microbial Biotechnology, Department of Systems Biology, Technical University of Denmark, Søltofts Plads, 2800, Kgs. Lyngby

  • Author: Weiz, Ludmila

    Clinical Cooperation Unit Molecular Hematology/Oncology, German Cancer Research Center and Department of Internal Medicine V, University of Heidelberg

  • Author: Konotop, Gleb

    Max-Eder Group Experimental Therapies for Hematologic Malignancies, German Cancer Research Center (DKFZ)

  • Author: Hayden, Patrick J.

    Department of Medical Oncology, Dana-Farber Cancer Institute

  • Author: Podar, Klaus

    National Center for Tumor Diseases, University of Heidelberg

  • Author: Fruehauf, Johannes

    Beth Israel Deaconess Medical Center, Harvard Medical School

  • Author: Nissen, Felix

    Department of Nuclear Medicine, University Hospital Heidelberg

  • Author: Mier, Walter

    Department of Nuclear Medicine, University Hospital Heidelberg

  • Author: Haberkorn, Uwe

    Department of Nuclear Medicine, University Hospital Heidelberg

  • Author: Ho, Anthony D.

    Department of Internal Medicine V, University of Heidelberg

  • Author: Goldschmidt, Hartmut

    Department of Internal Medicine V, University of Heidelberg

  • Author: Anderson, Kenneth C.

    Department of Internal Medicine V, University of Heidelberg

  • Author: Clausen, Mads Hartvig

    Organic Chemistry, Department of Chemistry, Technical University of Denmark, Kemitorvet Bygning 201, 2800, Kgs. Lyngby

  • Author: Krämer, Alwin

    Department of Internal Medicine V, University of Heidelberg

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In contrast to normal cells, malignant cells are frequently aneuploid and contain multiple centrosomes. To allow for bipolar mitotic division, supernumerary centrosomes are clustered into two functional spindle poles in many cancer cells. Recently, we have shown that griseofulvin forces tumor cells with supernumerary centrosomes to undergo multipolar mitoses resulting in apoptotic cell death. Here, we describe the characterization of the novel small molecule GF-15, a derivative of griseofulvin, as a potent inhibitor of centrosomal clustering in malignant cells. At concentrations where GF-15 had no significant impact on tubulin polymerization, spindle tension was markedly reduced in mitotic cells upon exposure to GF-15. Moreover, isogenic cells with conditional centrosome amplification were more sensitive to GF-15 than parental controls. In a wide array of tumor cell lines, mean inhibitory concentrations (IC50) for proliferation and survival were in the range of 1 to 5 μmol/L and were associated with apoptotic cell death. Importantly, treatment of mouse xenograft models of human colon cancer and multiple myeloma resulted in tumor growth inhibition and significantly prolonged survival. These results show the in vitro and in vivo antitumor efficacy of a prototype small molecule inhibitor of centrosomal clustering and strongly support the further evaluation of this new class of molecules. Cancer Res; 72(20); 5374–85. ©2012 AACR.
Original languageEnglish
JournalCancer Research
Publication date2012
Volume72
Journal number20
Pages5374-5385
ISSN0008-5472
DOIs
StatePublished
CitationsWeb of Science® Times Cited: 1

ID: 12685002