Defective Endochondral Ossification-Derived Matrix and Bone Cells Alter the Lymphopoietic Niche in Collagen X Mouse Models
Author(s) -
Elizabeth Sweeney,
Douglas Roberts,
Angela Lin,
Robert E. Guldberg,
Olena Jacenko
Publication year - 2013
Publication title -
stem cells and development
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.99
H-Index - 114
eISSN - 1557-8534
pISSN - 1547-3287
DOI - 10.1089/scd.2012.0387
Subject(s) - endochondral ossification , biology , lymphopoiesis , haematopoiesis , microbiology and biotechnology , osteoblast , cytokine , bone marrow , stem cell factor , stromal cell , immunology , hematopoietic stem cell , stem cell , cartilage , anatomy , cancer research , in vitro , biochemistry
Despite the appreciated interdependence of skeletal and hematopoietic development, the cell and matrix components of the hematopoietic niche remain to be fully defined. Utilizing mice with disrupted function of collagen X (ColX), a major hypertrophic cartilage matrix protein associated with endochondral ossification, our data identified a cytokine defect in trabecular bone cells at the chondro-osseous hematopoietic niche as a cause for aberrant B lymphopoiesis in these mice. Specifically, analysis of ColX transgenic and null mouse chondro-osseous regions via micro-computed tomography revealed an altered trabecular bone environment. Additionally, cocultures with hematopoietic and chondro-osseous cell types highlighted impaired hematopoietic support by ColX transgenic and null mouse derived trabecular bone cells. Further, cytokine arrays with conditioned media from the trabecular osteoblast cocultures suggested an aberrant hematopoietic cytokine milieu within the chondro-osseous niche of the ColX deficient mice. Accordingly, B lymphopoiesis was rescued in the ColX mouse derived trabecular osteoblast cocultures with interlukin-7, stem cell factor, and stromal derived factor-1 supplementation. Moreover, B cell development was restored in vivo after injections of interlukin-7. These data support our hypothesis that endrochondrally-derived trabecular bone cells and matrix constituents provide cytokine-rich niches for hematopoiesis. Furthermore, this study contributes to the emerging concept that niche defects may underlie certain immuno-osseous and hematopoietic disorders.
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