Haplodeficiency of the 9p21 tumor suppressor locus causes myeloid disorders driven by the bone marrow microenvironment

Author:

Feng Jue1ORCID,Hsu Pei-Feng1ORCID,Esteva Eduardo1ORCID,Labella Rossella23ORCID,Wang Yueyang1ORCID,Khodadadi-Jamayran Alireza14ORCID,Pucella Joseph1ORCID,Liu Cynthia Z.1,Arbini Arnaldo A.1ORCID,Tsirigos Aristotelis14ORCID,Kousteni Stavroula235ORCID,Reizis Boris1ORCID

Affiliation:

1. 1Department of Pathology, New York University Grossman School of Medicine, New York, NY

2. 2Department of Physiology and Cellular Biophysics, College of Physicians and Surgeons, Columbia University Medical Center, New York, NY

3. 3Edward P. Evans Center for Myelodysplastic Syndromes, Columbia University Medical Center, New York, NY

4. 4Applied Bioinformatics Laboratories, New York University Grossman School of Medicine, New York, NY

5. 5Herbert Irving Comprehensive Cancer Center, Columbia University, New York, NY

Abstract

Abstract The chromosome 9p21 locus comprises several tumor suppressor genes including MTAP, CDKN2A, and CDKN2B, and its homo- or heterozygous deletion is associated with reduced survival in multiple cancer types. We report that mice with germ line monoallelic deletion or induced biallelic deletion of the 9p21-syntenic locus (9p21s) developed a fatal myelodysplastic syndrome/myeloproliferative neoplasm (MDS/MPN)-like disease associated with aberrant trabecular bone formation and/or fibrosis in the bone marrow (BM). Reciprocal BM transfers and conditional targeting of 9p21s suggested that the disease originates in the BM stroma. Single-cell analysis of 9p21s-deficient BM stroma revealed the expansion of chondrocyte and osteogenic precursors, reflected in increased osteogenic differentiation in vitro. It also showed reduced expression of factors maintaining hematopoietic stem/progenitor cells, including Cxcl12. Accordingly, 9p21s-deficient mice showed reduced levels of circulating Cxcl12 and concomitant upregulation of the profibrotic chemokine Cxcl13 and the osteogenesis- and fibrosis-related multifunctional glycoprotein osteopontin/Spp1. Our study highlights the potential of mutations in the BM microenvironment to drive MDS/MPN–like disease.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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