Multiple myeloma–related deregulation of bone marrow–derived CD34+ hematopoietic stem and progenitor cells

Author:

Bruns Ingmar1,Cadeddu Ron-Patrick1,Brueckmann Ines23,Fröbel Julia1,Geyh Stefanie1,Büst Sebastian1,Fischer Johannes C.4,Roels Frederik5,Wilk Christian Matthias1,Schildberg Frank A.6,Hünerlitürkoglu Ali-Nuri7,Zilkens Christoph8,Jäger Marcus9,Steidl Ulrich10,Zohren Fabian1,Fenk Roland1,Kobbe Guido1,Brors Benedict5,Czibere Akos111,Schroeder Thomas1,Trumpp Andreas23,Haas Rainer1

Affiliation:

1. Department of Hematology, Oncology and Clinical Immunology, Heinrich-Heine-University, Düsseldorf, Germany;

2. Division of Stem Cells and Cancer, German Cancer Research Center, Heidelberg, Germany;

3. HI-STEM gGmbH at the German Cancer Research Center, Heidelberg, Germany;

4. Institute for Transplantation Diagnostics and Cell Therapeutics, Heinrich-Heine-University, Düsseldorf, Germany;

5. Theoretical Bioinformatics, German Cancer Research Center, Heidelberg, Germany;

6. Institute of Molecular Medicine, University of Bonn, Bonn, Germany;

7. Lukaskrankenhaus, Städtische Kliniken Neuss, Neuss, Germany;

8. Department of Orthopedic Surgery, Heinrich-Heine-University, Düsseldorf, Germany;

9. Orthopaedic Department, University of Duisburg-Essen, Essen, Germany;

10. Department of Cell Biology, Albert Einstein College of Medicine, and Albert Einstein Cancer Center, Bronx, NY; and

11. Beth Israel Deaconess Medical Center (BIDMC) Genomics Center, Harvard Institutes of Medicine, Boston, MA

Abstract

Abstract Multiple myeloma (MM) is a clonal plasma cell disorder frequently accompanied by hematopoietic impairment. We show that hematopoietic stem and progenitor cells (HSPCs), in particular megakaryocyte-erythrocyte progenitors, are diminished in the BM of MM patients. Genomic profiling of HSPC subsets revealed deregulations of signaling cascades, most notably TGFβ signaling, and pathways involved in cytoskeletal organization, migration, adhesion, and cell-cycle regulation in the patients. Functionally, proliferation, colony formation, and long-term self-renewal were impaired as a consequence of activated TGFβ signaling. In accordance, TGFβ levels in the BM extracellular fluid were elevated and mesenchymal stromal cells (MSCs) had a reduced capacity to support long-term hematopoiesis of HSPCs that completely recovered on blockade of TGFβ signaling. Furthermore, we found defective actin assembly and down-regulation of the adhesion receptor CD44 in MM HSPCs functionally reflected by impaired migration and adhesion. Still, transplantation into myeloma-free NOG mice revealed even enhanced engraftment and normal differentiation capacities of MM HSPCs, which underlines that functional impairment of HSPCs depends on MM-related microenvironmental cues and is reversible. Taken together, these data implicate that hematopoietic suppression in MM emerges from the HSPCs as a result of MM-related microenvironmental alterations.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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