真性红细胞增多症
Janus激酶2
骨髓纤维化
原发性血小板增多症
药理学
促红细胞生成素
骨髓增生性疾病
癌症研究
鲁索利替尼
激酶
化学
生物
生物化学
免疫学
内分泌学
骨髓
作者
Fabienne Baffert,Catherine H. Régnier,Alain De Pover,Carole Pissot‐Soldermann,Gisele Tavares,Francesca Blasco,Josef Brueggen,Patrick Chêne,Peter Drueckes,Dirk Erdmann,Pascal Furet,Marc Gerspacher,Marc Lang,David Ledieu,Lynda Nolan,Stephan Ruetz,Joerg Trappe,Eric Vangrevelinghe,Markus Wartmann,Lorenza Wyder,Francesco Hofmann,Thomas Radimerski
出处
期刊:Molecular Cancer Therapeutics
[American Association for Cancer Research]
日期:2010-07-01
卷期号:9 (7): 1945-1955
被引量:112
标识
DOI:10.1158/1535-7163.mct-10-0053
摘要
The recent discovery of an acquired activating point mutation in JAK2, substituting valine at amino acid position 617 for phenylalanine, has greatly improved our understanding of the molecular mechanism underlying chronic myeloproliferative neoplasms. Strikingly, the JAK2(V617F) mutation is found in nearly all patients suffering from polycythemia vera and in roughly every second patient suffering from essential thrombocythemia and primary myelofibrosis. Thus, JAK2 represents a promising target for the treatment of myeloproliferative neoplasms and considerable efforts are ongoing to discover and develop inhibitors of the kinase. Here, we report potent inhibition of JAK2(V617F) and JAK2 wild-type enzymes by a novel substituted quinoxaline, NVP-BSK805, which acts in an ATP-competitive manner. Within the JAK family, NVP-BSK805 displays more than 20-fold selectivity towards JAK2 in vitro, as well as excellent selectivity in broader kinase profiling. The compound blunts constitutive STAT5 phosphorylation in JAK2(V617F)-bearing cells, with concomitant suppression of cell proliferation and induction of apoptosis. In vivo, NVP-BSK805 exhibited good oral bioavailability and a long half-life. The inhibitor was efficacious in suppressing leukemic cell spreading and splenomegaly in a Ba/F3 JAK2(V617F) cell-driven mouse mechanistic model. Furthermore, NVP-BSK805 potently suppressed recombinant human erythropoietin-induced polycythemia and extramedullary erythropoiesis in mice and rats.
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