TY - JOUR
T1 - Wnt-dependent spatiotemporal reprogramming of bone marrow niches drives fibrosis
AU - Banjanin, Bella
AU - Nagai, James
AU - Mun, Ye Vin
AU - Fuchs, Stijn
AU - Snoeren, Inge
AU - Boers, Joachim
AU - Segura, Mayra L.Ruiz Tejada
AU - Mora, Hector Tejeda
AU - Galyga, Anna Katharina
AU - Benabid, Adam
AU - Sarkis, Rita
AU - Naveiras, Olaia
AU - Rizk, Marta
AU - Wolf, Michael
AU - Craveiro, Rogerio B.
AU - Peisker, Fabian
AU - Stalmann, Ursula
AU - Pritchard, Jessica E.
AU - Ryou, Hosuk
AU - Alham, Nasullah Khalid
AU - Weiler, Marek
AU - Kiessling, Fabian
AU - Lammers, Twan
AU - Migliaccio, Anna Rita
AU - Sivaraj, Kishor Kumar
AU - Adams, Ralf H.
AU - Bindels, Eric
AU - Gribnau, Joost
AU - Royston, Daniel
AU - Gleitz, Hélène F.E.
AU - Kramann, Rafael
AU - Nombela-Arrieta, César
AU - Costa, Ivan G.
AU - Schneider, Rebekka K.
N1 - Publisher Copyright:
© 2026 The Author(s). HemaSphere published by John Wiley & Sons Ltd on behalf of European Hematology Association.
PY - 2026/2
Y1 - 2026/2
N2 - Bone marrow fibrosis is the most extensive matrix remodeling of the microenvironment and can include de novo formation of bone (osteosclerosis). Spatiotemporal information on the contribution of distinct bone marrow niche populations to this process is incomplete. We demonstrate that fibrosis-inducing hematopoietic cells cause profibrotic reprogramming of perivascular CXCL12-abundant reticular (CAR) progenitor cells, resulting in loss of their hematopoiesis-support and upregulation of osteogenic and pro-apoptotic programs. In turn, peritrabecular osteolineage cells (OLCs) are activated in an injury-specific, Wnt-dependent manner, comparable to skeletal repair. OLCs fuel bone marrow fibrosis through their expansion and skewed differentiation, resulting in osteosclerosis and expansion of Ly6a+ fibroblasts. NCAM1 expression marks peritrabecular OLCs and their expansion into the central marrow is specific for fibrosis in mice and patients. Peritrabecular stromal β-catenin expression is linked to fibrosis in patients, and inhibition of Wnt signaling reduces bone marrow fibrosis and osteosclerosis, possibly being a clinically relevant therapeutic target.
AB - Bone marrow fibrosis is the most extensive matrix remodeling of the microenvironment and can include de novo formation of bone (osteosclerosis). Spatiotemporal information on the contribution of distinct bone marrow niche populations to this process is incomplete. We demonstrate that fibrosis-inducing hematopoietic cells cause profibrotic reprogramming of perivascular CXCL12-abundant reticular (CAR) progenitor cells, resulting in loss of their hematopoiesis-support and upregulation of osteogenic and pro-apoptotic programs. In turn, peritrabecular osteolineage cells (OLCs) are activated in an injury-specific, Wnt-dependent manner, comparable to skeletal repair. OLCs fuel bone marrow fibrosis through their expansion and skewed differentiation, resulting in osteosclerosis and expansion of Ly6a+ fibroblasts. NCAM1 expression marks peritrabecular OLCs and their expansion into the central marrow is specific for fibrosis in mice and patients. Peritrabecular stromal β-catenin expression is linked to fibrosis in patients, and inhibition of Wnt signaling reduces bone marrow fibrosis and osteosclerosis, possibly being a clinically relevant therapeutic target.
UR - https://www.scopus.com/pages/publications/105030569704
U2 - 10.1002/hem3.70309
DO - 10.1002/hem3.70309
M3 - Article
C2 - 41726391
AN - SCOPUS:105030569704
SN - 2572-9241
VL - 10
JO - HemaSphere
JF - HemaSphere
IS - 2
M1 - e70309
ER -