Related Experiment Video
Updated: Jun 28, 2026

Myeloid Innate Signaling Pathway Regulation by MALT1 Paracaspase Activity
Published on: January 7, 2019
Pacritinib prevents inflammation-driven myelofibrosis-like phenotype in a miR-146a-/- murine model
Ernesto José Cuenca-Zamora1, Constantino Martínez2, María Luz Morales3
1Hematology Department, Hospital Universitario Morales-Meseguer, Centro Regional de Hemodonación, IMIB-Pascual Parrilla, Murcia, Spain; CIBERER-ISCIII CB15/00055 (U765), Spain; Universidad de Murcia, Murcia, Spain; Universidad Católica San Antonio (UCAM), Murcia, Spain.
Abstract:
Chronic proinflammatory signaling is a characteristic trait in myeloproliferative neoplasms (MPN), particularly myelofibrosis (MF). Aberrant inflammatory signaling, particularly from NF-κB pathway, exacerbates the progression of MPN. Previously, we identified a critical role of miR-146a, a negative regulator of the TLR/NF-κB axis, in MF development. MPN patients carrying the miR-146a rs2431697-TT genotype, associated with lower miR-146a expression levels, have a higher risk of progression to overt-MF from chronic-phase disease. Using miR-146a-/- (KO) mice, a MF-like model lacking MPN driver mutations, we here investigate whether pacritinib, a dual JAK/NF-κB pathways inhibitor (via JAK2/IRAK1, respectively), prevents the age-associated myelofibrotic phenotype of these mice. Young miR-146a-/- mice were treated either with or without pacritinib, for 3 or 6 months. Notably, pacritinib prevented the splenomegaly, reticulin fibrosis and osteosclerosis observed in untreated KO mice. Pacritinib also avoided the myeloproliferation, loss of splenic architecture, and extramedullary hematopoiesis observed in age-matched untreated KO mice. Pharmacological targeting of IRAK1/JAK2 attenuated the pro-inflammatory environment, preventing the increase of inflammatory cytokines, particularly CXCL1 and TNF-α, without inducing cytopenias but rather the opposite. Compared to age-matched untreated KO mice, treated mice showed higher platelet counts irrespective of treatment duration, and higher erythrocyte counts with the longer treatment. Additionally, pacritinib preventive treatment reduced COL1A1 production in an in vitro model mimicking JAK2-driven fibrosis. These findings highlight that dual inhibition of JAK2/IRAK1 with pacritinib, by delaying or attenuating the myelofibrotic progression, could be a potential modifier of the natural course of MPN.
Insights
Pacritinib, a dual JAK/NF-κB inhibitor, prevented myelofibrosis progression in mice lacking miR-146a. This dual inhibition attenuated inflammation and improved blood counts, suggesting potential for modifying myeloproliferative neoplasms.
Area of Science:
- Hematology
- Oncology
- Molecular Biology
Background:
- Chronic inflammation and NF-κB pathway activation drive myeloproliferative neoplasms (MPN), particularly myelofibrosis (MF).
- miR-146a, a negative regulator of TLR/NF-κB, plays a critical role in MF development, with lower expression linked to higher progression risk.
Purpose of the Study:
- To investigate if pacritinib, a dual JAK/NF-κB inhibitor, prevents the age-associated myelofibrotic phenotype in miR-146a knockout (KO) mice.
- To assess pacritinib's impact on inflammation, fibrosis, and hematopoiesis in a preclinical MF model.
Main Methods:
- Treatment of young miR-146a KO mice with pacritinib for 3 or 6 months.
- Evaluation of splenomegaly, fibrosis, osteosclerosis, myeloproliferation, splenic architecture, extramedullary hematopoiesis, cytokine levels, and blood counts.
- In vitro assessment of pacritinib's effect on COL1A1 production in a JAK2-driven fibrosis model.
Main Results:
- Pacritinib prevented splenomegaly, reticulin fibrosis, osteosclerosis, myeloproliferation, and loss of splenic architecture in KO mice.
- Dual JAK2/IRAK1 inhibition attenuated the pro-inflammatory environment, reducing CXCL1 and TNF-α.
- Treated mice showed improved platelet and erythrocyte counts, without inducing cytopenias.
Conclusions:
- Dual inhibition of JAK2/IRAK1 with pacritinib effectively prevents myelofibrotic progression in a preclinical model.
- Pacritinib demonstrates potential as a therapeutic strategy to modify the natural course of MPN by targeting key inflammatory and fibrotic pathways.

