The human GFI136N variant induces epigenetic changes at the Hoxa9 locus and accelerates K-RAS driven myeloproliferative disorder in mice

Author:

Khandanpour Cyrus12,Krongold Joseph1,Schütte Judith3,Bouwman Frederique1,Vassen Lothar1,Gaudreau Marie-Claude14,Chen Riyan1,Calero-Nieto Fernando J.3,Diamanti Evangelia3,Hannah Rebecca3,Meyer Sara E.5,Grimes H. Leighton56,van der Reijden Bert A.7,Jansen Joop H.7,Patel Chandrashekhar V.8,Peeters Justine K.9,Löwenberg Bob9,Dührsen Ulrich2,Göttgens Bertie3,Möröy Tarik14

Affiliation:

1. Institut de recherches cliniques de Montréal, Montreal, QC;

2. Westdeutsches Tumorzentrum Klinik für Hämatologie Universitätsklinikum Essen, Essen, Germany;

3. Cambridge University, Department of Haematology, Cambridge Institute for Medical Research, Cambridge, United Kingdom;

4. Département de Microbiologie et Immunologie, Université de Montreal, Montreal, QC;

5. Division of Immunobiology, Cincinnati Children's Hospital Medical Center, Cincinnati, OH;

6. Division of Experimental Hematology, Cincinnati Children's Hospital Medical Center, Cincinnati, OH;

7. Laboratory of Hematology, Department of Laboratory Medicine, Nijmegen Centre for Molecular Life Sciences, Radboud University Nijmegen Medical Centre, Nijmegen, The Netherlands;

8. Department of Cell Biology & Anatomy, University of South Carolina School of Medicine, Columbia, SC; and

9. Department of Hematology, Erasmus University Medical Center, Rotterdam, The Netherlands

Abstract

AbstractThe coding single nucleotide polymorphism GFI136N in the human gene growth factor independence 1 (GFI1) is present in 3%-7% of whites and increases the risk for acute myeloid leukemia (AML) by 60%. We show here that GFI136N, in contrast to GFI136S, lacks the ability to bind to the Gfi1 target gene that encodes the leukemia-associated transcription factor Hoxa9 and fails to initiate histone modifications that regulate HoxA9 expression. Consistent with this, AML patients heterozygous for the GFI136N variant show increased HOXA9 expression compared with normal controls. Using ChipSeq, we demonstrate that GFI136N specific epigenetic changes are also present in other genes involved in the development of AML. Moreover, granulomonocytic progenitors, a bone marrow subset from which AML can arise in humans and mice, show a proliferative expansion in the presence of the GFI136N variant. In addition, granulomonocytic progenitors carrying the GFI136N variant allele have altered gene expression patterns and differ in their ability to grow after transplantation. Finally, GFI136N can accelerate a K-RAS driven fatal myeloproliferative disease in mice. Our data suggest that the presence of a GFI136N variant allele induces a preleukemic state in myeloid precursors by deregulating the expression of Hoxa9 and other AML-related genes.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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