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Myeloproliferative neoplasms: JAK2 signaling pathway as a central target for therapy
Florence Pasquier1, Xenia Cabagnols1, Lise Secardin1
1INSERM 1009, Institut Gustave Roussy, Villejuif, France; Institut Gustave Roussy, Villejuif, France; Université Paris XI, Institut Gustave Roussy, Villejuif, France; Ligue Nationale contre le Cancer, équipe labellisée, Villejuif, France.
Abstract:
The discovery of the JAK2V617F mutation followed by the discovery of other genetic abnormalities allowed important progress in the understanding of the pathogenesis and management of myeloproliferative neoplasms (MPN)s. Classical Breakpoint cluster region-Abelson (BCR-ABL)-negative neoplasms include 3 main disorders: essential thrombocythemia (ET), polycythemia vera (PV), and primary myelofibrosis (PMF). Genomic studies have shown that these disorders are more heterogeneous than previously thought with 3 main entities corresponding to different gene mutations: the JAK2 disorder, essentially due to JAK2V617F mutation, which includes nearly all PVs and a majority of ETs and PMFs with a continuum between these diseases and the myeloproliferative leukemia (MPL) and calreticulin (CALR) disorders, which include a fraction of ET and PMF. All of these mutations lead to a JAK2 constitutive activation. Murine models either with JAK2V617F or MPLW515L, but also with JAK2 or MPL germ line mutations found in hereditary thrombocytosis, have demonstrated that they are drivers of myeloproliferation. However, the myeloproliferative driver mutation is still unknown in approximately 15% of ET and PMF, but appears to also target the JAK/Signal Transducer and Activator of Transcription (STAT) pathway. However, other mutations in genes involved in epigenetics or splicing also can be present and can predate or follow mutations in signaling. They are involved either in clonal dominance or in phenotypic changes, more particularly in PMF. They can be associated with leukemic progression and might have an important prognostic value such as additional sex comb-like 1 mutations. Despite this heterogeneity, it is tempting to target JAK2 and its signaling for therapy. However in PMF, Adenosine Tri-Phosphate (ATP)-competitive JAK2 inhibitors have shown their interest, but also their important limitations. Thus, other approaches are required, which are discussed in this review.
Insights
Genetic mutations like JAK2V617F drive myeloproliferative neoplasms (MPNs). Understanding these mutations, including JAK2, MPL, and CALR, is key to managing ET, PV, and PMF, though new therapies are needed.
Area of Science:
- Hematology
- Molecular Biology
- Oncology
Background:
- Myeloproliferative neoplasms (MPNs) are clonal hematopoietic stem cell disorders.
- Discovery of JAK2V617F mutation advanced understanding of MPN pathogenesis.
- MPNs include essential thrombocythemia (ET), polycythemia vera (PV), and primary myelofibrosis (PMF).
Purpose of the Study:
- To review the genetic landscape of MPNs.
- To discuss the role of mutations in MPN pathogenesis and management.
- To explore therapeutic strategies targeting the JAK/STAT pathway and beyond.
Main Methods:
- Genomic studies identifying key mutations (JAK2, MPL, CALR).
- Analysis of murine models to understand myeloproliferation drivers.
- Review of clinical data on therapeutic interventions.
Main Results:
- MPNs are heterogeneous, driven by mutations in JAK2, MPL, or CALR, leading to JAK2 constitutive activation.
- JAK2V617F mutation is prevalent in PV, ET, and PMF.
- Unknown mutations target the JAK/STAT pathway in some ET and PMF cases.
- Epigenetic and splicing gene mutations influence disease progression and prognosis, especially in PMF.
- ATP-competitive JAK2 inhibitors show efficacy but have limitations in PMF.
Conclusions:
- Targeting JAK2 signaling is a therapeutic strategy for MPNs.
- Limitations of current JAK2 inhibitors necessitate exploration of alternative approaches.
- Further research into novel therapeutic strategies is crucial for managing MPNs effectively.
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