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Cooperating, Congenital Neutropenia-associated Csf3r and Runx1 Mutations Activate Pro-inflammatory Signaling and Inhibit Myeloid Differentiation of Mouse HSPCs

Overview
Journal Ann Hematol
Specialty Hematology
Date 2020 Aug 22
PMID 32821971
Citations 4
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Abstract

Patients with the pre-leukemia bone marrow failure syndrome called severe congenital neutropenia (CN) have an approximately 15% risk of developing acute myeloid leukemia (AML; called here CN/AML). Most CN/AML patients co-acquire CSF3R and RUNX1 mutations, which play cooperative roles in the development of AML. To establish an in vitro model of leukemogenesis, we utilized bone marrow lin cells from transgenic C57BL/6-d715 Csf3r mice expressing a CN patient-mimicking truncated CSF3R mutation. We transduced these cells with vectors encoding RUNX1 wild type (WT) or RUNX1 mutant proteins carrying the R139G or R174L mutations. Cells transduced with these RUNX1 mutants showed diminished in vitro myeloid differentiation and elevated replating capacity, compared with those expressing WT RUNX1. mRNA expression analysis showed that cells transduced with the RUNX1 mutants exhibited hyperactivation of inflammatory signaling and innate immunity pathways, including IL-6, TLR, NF-kappaB, IFN, and TREM1 signaling. These data suggest that the expression of mutated RUNX1 in a CSF3R-mutated background may activate the pro-inflammatory cell state and inhibit myeloid differentiation.

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References
1.
Dong F, Brynes R, Tidow N, Welte K, Lowenberg B, Touw I . Mutations in the gene for the granulocyte colony-stimulating-factor receptor in patients with acute myeloid leukemia preceded by severe congenital neutropenia. N Engl J Med. 1995; 333(8):487-93. DOI: 10.1056/NEJM199508243330804. View

2.
Dong F, van Buitenen C, Pouwels K, Hoefsloot L, Lowenberg B, Touw I . Distinct cytoplasmic regions of the human granulocyte colony-stimulating factor receptor involved in induction of proliferation and maturation. Mol Cell Biol. 1993; 13(12):7774-81. PMC: 364849. DOI: 10.1128/mcb.13.12.7774-7781.1993. View

3.
McLemore M, Poursine-Laurent J, Link D . Increased granulocyte colony-stimulating factor responsiveness but normal resting granulopoiesis in mice carrying a targeted granulocyte colony-stimulating factor receptor mutation derived from a patient with severe congenital neutropenia. J Clin Invest. 1998; 102(3):483-92. PMC: 508908. DOI: 10.1172/JCI3216. View

4.
Rodriguez-Hernandez G, Hauer J, Martin-Lorenzo A, Schafer D, Bartenhagen C, Garcia-Ramirez I . Infection Exposure Promotes Precursor B-cell Leukemia via Impaired H3K4 Demethylases. Cancer Res. 2017; 77(16):4365-4377. DOI: 10.1158/0008-5472.CAN-17-0701. View

5.
Martin-Lorenzo A, Hauer J, Vicente-Duenas C, Auer F, Gonzalez-Herrero I, Garcia-Ramirez I . Infection Exposure is a Causal Factor in B-cell Precursor Acute Lymphoblastic Leukemia as a Result of Pax5-Inherited Susceptibility. Cancer Discov. 2015; 5(12):1328-43. DOI: 10.1158/2159-8290.CD-15-0892. View