| Literature DB >> 29309831 |
Francoise Coustry1, Karen L Posey2, Tristan Maerz3, Kevin Baker4, Annie M Abraham5, Catherine G Ambrose5, Sabah Nobakhti6, Sandra J Shefelbine6, Xiaohong Bi7, Michael Newton4, Karissa Gawronski4, Lindsay Remer4, Alka C Veerisetty2, Mohammad G Hossain2, Frankie Chiu2, Jacqueline T Hecht8.
Abstract
Mutations in COMP (cartilage oligomeric matrix protein) cause severe long bone shortening in mice and humans. Previously, we showed that massive accumulation of misfolded COMP in the ER of growth plate chondrocytes in our MT-COMP mouse model of pseudoachondroplasia (PSACH) causes premature chondrocyte death and loss of linear growth. Premature chondrocyte death results from activation of oxidative stress and inflammation through the CHOP-ER pathway and is reduced by removing CHOP or by anti-inflammatory or antioxidant therapies. Although the mutant COMP chondrocyte pathologic mechanism is now recognized, the effect of mutant COMP on bone quality and joint health (laxity) is largely unknown. Applying multiple analytic approaches, we describe a novel mechanism by which the deleterious consequences of mutant COMP retention results in upregulation of miR-223 disturbing the adipogenesis - osteogenesis balance. This results in reduction in bone mineral density, bone quality, mechanical strength and subchondral bone thickness. These, in addition to abnormal patterns of ossification at the ends of the femoral bones likely contribute to precocious osteoarthritis (OA) of the hips and knees in the MT-COMP mouse and PSACH. Moreover, joint laxity is compromised by abnormally thin ligaments. Altogether, these novel findings align with the PSACH phenotype of delayed ossification and bone age, extreme joint laxity and joint erosion, and extend our understanding of the underlying processes that affect bone in PSACH. These results introduce a novel finding that miR-223 is involved in the ossification defect in MT-COMP mice making it a therapeutic target. Published by Elsevier B.V.Entities:
Keywords: Adipogenesis; Bone architecture; Cartilage; Cartilage oligomeric matrix protein; Osteogenesis; Pseudoachondroplasia; miR-223
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Year: 2018 PMID: 29309831 PMCID: PMC5910205 DOI: 10.1016/j.matbio.2017.12.014
Source DB: PubMed Journal: Matrix Biol ISSN: 0945-053X Impact factor: 11.583