Literature DB >> 20197548

Conditional expression of heterozygous or homozygous Jak2V617F from its endogenous promoter induces a polycythemia vera-like disease.

Hajime Akada1, Dongqing Yan, Haiying Zou, Steven Fiering, Robert E Hutchison, M Golam Mohi.   

Abstract

A somatic point mutation (V617F) in the JAK2 tyrosine kinase was found in a majority of patients with polycythemia vera (PV), essential thrombocythemia, and primary myelofibrosis. However, contribution of the JAK2V617F mutation in these 3 clinically distinct myeloproliferative neoplasms (MPNs) remained unclear. To investigate the role of JAK2V617F in the pathogenesis of these MPNs, we generated an inducible Jak2V617F knock-in mouse, in which the expression of Jak2V617F is under control of the endogenous Jak2 promoter. Expression of heterozygous mouse Jak2V617F evoked all major features of human polycythemia vera (PV), which included marked increase in hemoglobin and hematocrit, increased red blood cells, leukocytosis, thrombocytosis, splenomegaly, reduced serum erythropoietin (Epo) levels and Epo-independent erythroid colonies. Homozygous Jak2V617F expression also resulted in a PV-like disease associated with significantly greater reticulocytosis, leukocytosis, neutrophilia and thrombocytosis, marked expansion of erythroid progenitors and Epo-independent erythroid colonies, larger spleen size, and accelerated bone marrow fibrosis compared with heterozygous Jak2V617F expression. Biochemical analyses revealed Jak2V617F gene dosage-dependent activation of Stat5, Akt, and Erk signaling pathways. Our conditional Jak2V617F knock-in mice provide an excellent model that can be used to further understand the molecular pathogenesis of MPNs and to identify additional genetic events that cooperate with Jak2V617F in different MPNs.

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Year:  2010        PMID: 20197548      PMCID: PMC2867267          DOI: 10.1182/blood-2009-04-215848

Source DB:  PubMed          Journal:  Blood        ISSN: 0006-4971            Impact factor:   22.113


  34 in total

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Journal:  Exp Hematol       Date:  2002-03       Impact factor: 3.084

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Journal:  N Engl J Med       Date:  1974-06-13       Impact factor: 91.245

4.  A unique clonal JAK2 mutation leading to constitutive signalling causes polycythaemia vera.

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Journal:  Nature       Date:  2005-04-28       Impact factor: 49.962

5.  Activating mutation in the tyrosine kinase JAK2 in polycythemia vera, essential thrombocythemia, and myeloid metaplasia with myelofibrosis.

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Journal:  Br J Haematol       Date:  1992-08       Impact factor: 6.998

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Authors:  Alessandra Carobbio; Guido Finazzi; Elisabetta Antonioli; Paola Guglielmelli; Alessandro M Vannucchi; Chiara M Dellacasa; Silvia Salmoiraghi; Federica Delaini; Alessandro Rambaldi; Tiziano Barbui
Journal:  Exp Hematol       Date:  2009-06-24       Impact factor: 3.084

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  118 in total

1.  Critical requirement for Stat5 in a mouse model of polycythemia vera.

Authors:  Dongqing Yan; Robert E Hutchison; Golam Mohi
Journal:  Blood       Date:  2011-12-05       Impact factor: 22.113

2.  Efficacy of vorinostat in a murine model of polycythemia vera.

Authors:  Hajime Akada; Saeko Akada; Ajeet Gajra; Alicia Bair; Stephen Graziano; Robert E Hutchison; Golam Mohi
Journal:  Blood       Date:  2012-03-09       Impact factor: 22.113

Review 3.  Janus kinase inhibitors for the treatment of myeloproliferative neoplasias and beyond.

Authors:  Alfonso Quintás-Cardama; Hagop Kantarjian; Jorge Cortes; Srdan Verstovsek
Journal:  Nat Rev Drug Discov       Date:  2011-02       Impact factor: 84.694

Review 4.  JAK2 inhibitors: what's the true therapeutic potential?

Authors:  Fabio P S Santos; Srdan Verstovsek
Journal:  Blood Rev       Date:  2010-11-20       Impact factor: 8.250

Review 5.  Preclinical models for drug selection in myeloproliferative neoplasms.

Authors:  Niccolò Bartalucci; Costanza Bogani; Alessandro M Vannucchi
Journal:  Curr Hematol Malig Rep       Date:  2013-12       Impact factor: 3.952

6.  Use of the 46/1 haplotype to model JAK2(V617F) clonal architecture in PV patients: clonal evolution and impact of IFNα treatment.

Authors:  S Hasan; B Cassinat; N Droin; J P Le Couedic; F Favale; B Monte-Mor; C Lacout; M Fontenay; C Dosquet; C Chomienne; E Solary; J L Villeval; N Casadevall; J J Kiladjian; W Vainchenker; I Plo
Journal:  Leukemia       Date:  2013-10-22       Impact factor: 11.528

Review 7.  GATA1 insufficiencies in primary myelofibrosis and other hematopoietic disorders: consequences for therapy.

Authors:  Te Ling; John D Crispino; Maria Zingariello; Fabrizio Martelli; Anna Rita Migliaccio
Journal:  Expert Rev Hematol       Date:  2018-02-19       Impact factor: 2.929

8.  Quantitative analyses of myelofibrosis by determining hydroxyproline.

Authors:  Wanke Zhao; Wan-Ting Tina Ho; Zhizhuang Joe Zhao
Journal:  Stem Cell Investig       Date:  2015-01-26

9.  Bone marrow-specific loss of ABI1 induces myeloproliferative neoplasm with features resembling human myelofibrosis.

Authors:  Anna Chorzalska; John Morgan; Nagib Ahsan; Diana O Treaba; Adam J Olszewski; Max Petersen; Nathan Kingston; Yan Cheng; Kara Lombardo; Christoph Schorl; Xiaoqing Yu; Roberta Zini; Annalisa Pacilli; Alexander Tepper; Jillian Coburn; Anita Hryniewicz-Jankowska; Ting C Zhao; Elena Oancea; John L Reagan; Olin Liang; Leszek Kotula; Peter J Quesenberry; Philip A Gruppuso; Rossella Manfredini; Alessandro Maria Vannucchi; Patrycja M Dubielecka
Journal:  Blood       Date:  2018-09-13       Impact factor: 22.113

Review 10.  Prognosis of Primary Myelofibrosis in the Genomic Era.

Authors:  Prithviraj Bose; Srdan Verstovsek
Journal:  Clin Lymphoma Myeloma Leuk       Date:  2016-08
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