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Published on: December 7, 2014
The ERK2-DBP domain opposes pathogenesis of a mouse JAK2V617F-driven myeloproliferative neoplasm
Yong Zhang1, Billy Truong1, Shawn P Fahl1
1Blood Cell Development and Function Program.
Abstract:
Although Ras/mitogen-activated protein kinase (MAPK) signaling is activated in most human cancers, attempts to target this pathway using kinase-active site inhibitors have not typically led to durable clinical benefit. To address this shortcoming, we sought to test the feasibility of an alternative targeting strategy, focused on the ERK2 substrate binding domains, D and DEF binding pocket (DBP). Disabling the ERK2-DBP domain in mice caused baseline erythrocytosis. Consequently, we investigated the role of the ERK2-D and -DBP domains in disease, using a JAK2-dependent model of polycythemia vera (PV). Of note, inactivation of the ERK2-DBP domain promoted the progression of disease from PV to myelofibrosis, suggesting that the ERK2-DBP domain normally opposes progression. ERK2-DBP inactivation also prevented oncogenic JAK2 kinase (JAK2V617F) from promoting oncogene-induced senescence in vitro. The ERK2-DBP mutation attenuated JAK2-mediated oncogene-induced senescence by preventing the physical interaction of ERK2 with the transcription factor Egr1. Because inactivation of the ERK2-DBP created a functional ERK2 kinase limited to binding substrates through its D domain, these data suggested that the D domain substrates were responsible for promoting oncogene-induced progenitor growth and tumor progression and that pharmacologic targeting of the ERK2-D domain may attenuate cancer cell growth. Indeed, pharmacologic agents targeting the ERK2-D domain were effective in attenuating the growth of JAK2-dependent myeloproliferative neoplasm cell lines. Taken together, these data indicate that the ERK-D and -DBP domains can play distinct roles in the progression of neoplasms and that the D domain has the potential to be a potent therapeutic target in Ras/MAPK-dependent cancers.
Insights
Targeting the ERK2-D domain, not its active site, shows promise for treating Ras/MAPK-dependent cancers like myeloproliferative neoplasms by inhibiting tumor growth and progression.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Signaling
Background:
- Ras/mitogen-activated protein kinase (MAPK) pathway dysregulation is common in human cancers.
- Current kinase-active site inhibitors offer limited clinical benefit for Ras/MAPK-driven cancers.
Purpose of the Study:
- To investigate targeting the ERK2 substrate binding domains (D and DEF binding pocket - DBP) as an alternative strategy.
- To evaluate the role of ERK2-D and -DBP domains in cancer progression, specifically in a JAK2-dependent polycythemia vera model.
Main Methods:
- Inactivation of the ERK2-DBP domain in mice and in vitro models.
- Utilizing a JAK2-dependent model of polycythemia vera (PV) and myelofibrosis.
- Assessing oncogene-induced senescence and physical interactions with transcription factor Egr1.
Main Results:
- ERK2-DBP inactivation promoted PV to myelofibrosis progression, suggesting the DBP domain opposes disease advancement.
- Inactivation of ERK2-DBP prevented JAK2V617F-mediated oncogene-induced senescence by disrupting ERK2-Egr1 interaction.
- Targeting the ERK2-D domain with pharmacologic agents effectively reduced the growth of myeloproliferative neoplasm cell lines.
Conclusions:
- The ERK2-D and -DBP domains have distinct roles in neoplasm progression.
- The ERK2-D domain presents a potential therapeutic target for Ras/MAPK-dependent cancers.
- Targeting the ERK2-D domain may offer a novel strategy for treating myeloproliferative neoplasms.
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