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STAT5 activation is critical for the transformation mediated by myeloproliferative disorder-associated JAK2 V617F
Megumi Funakoshi-Tago1, Kenji Tago, Miyuki Abe
1Department of Biochemistry, Faculty of Pharmacy, Keio University, 1-5-30 Shibakoen, Minato-ku, Tokyo 105-8512, USA. tago-mg@pha.keio.ac.jp
Abstract:
It has been well established that disruption of JAK2 signaling regulation is involved in various hematopoietic disorders; however, the detailed mechanism by which abnormal activation of JAK2 exhibits transforming activity remains to be elucidated. Here, to clarify the functional role of the erythropoietin receptor (EpoR) and its downstream transcription factor STAT5 in the abnormal activation of JAK2-induced hematopoietic diseases, we generated a stable transfectant of Ba/F3 cells expressing EpoR and analyzed the molecular mechanism of how JAK2 mutation induces cell growth disorder. JAK2 V617F mutant exhibited transforming activity when EpoR was coexpressed. According to a study utilizing several truncated mutants of EpoR, the ability of EpoR to facilitate the transforming activity of JAK2 V617F mutant required the intracellular domain to interact with STAT5. Strikingly, once the truncated EpoR (EpoR-H) was mutated on Tyr-343, the phosphorylation of which is known to be important for interaction with STAT5, JAK2 V617F mutant failed to exhibit transforming activity, suggesting that STAT5 is critical for JAK2 mutant-induced hematopoietic disorder. Furthermore, the expression of the constitutively active STAT5 mutant exhibited transforming activity in Ba/F3 cells, and short hairpin RNA-mediated knockdown of STAT5 significantly inhibited the transforming activity of JAK2 V617F mutant. Taking these observations together, STAT5 plays an essential role in EpoR-JAK2 V617F mutant-induced hematopoietic disorder. Although it remains unclear why the presence of EpoR is required to activate oncogenic signaling via the JAK2 mutant and STAT5, its interacting ability is a target for the treatment of these hematopoietic diseases.
Insights
The Janus kinase 2 (JAK2) V617F mutation drives hematopoietic disorders by interacting with the erythropoietin receptor (EpoR) and STAT5. STAT5 is critical for this transforming activity, making it a potential therapeutic target.
Area of Science:
- Hematology
- Molecular Biology
- Oncology
Background:
- Disruption of Janus kinase 2 (JAK2) signaling is implicated in hematopoietic disorders.
- The precise mechanisms underlying JAK2's transforming activity require further elucidation.
Purpose of the Study:
- To clarify the role of the erythropoietin receptor (EpoR) and STAT5 in JAK2-induced hematopoietic diseases.
- To investigate the molecular mechanisms of JAK2 mutation-induced cell growth disorders.
Main Methods:
- Generated Ba/F3 cell transfectants expressing EpoR and JAK2 V617F mutant.
- Utilized truncated EpoR mutants and mutated Tyr-343 to assess STAT5 interaction.
- Assessed transforming activity via STAT5 mutant expression and STAT5 knockdown using short hairpin RNA (shRNA).
Main Results:
- JAK2 V617F mutant exhibited transforming activity upon coexpression with EpoR.
- EpoR's facilitation of JAK2 V617F transforming activity required STAT5 interaction.
- Mutation of EpoR Tyr-343 abolished JAK2 V617F transforming activity, highlighting STAT5's critical role.
- Constitutively active STAT5 mutant showed transforming activity, and STAT5 knockdown inhibited JAK2 V617F transforming activity.
Conclusions:
- STAT5 is essential for erythropoietin receptor-JAK2 V617F mutant-induced hematopoietic disorders.
- The interaction of EpoR is necessary for activating oncogenic signaling via JAK2 mutant and STAT5.
- EpoR's interaction capability presents a potential therapeutic target for these diseases.
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