Chemokine and chemokine receptor expression during colony stimulating factor-1–induced osteoclast differentiation in the toothless osteopetrotic rat: a key role for CCL9 (MIP-1γ) in osteoclastogenesis in vivo and in vitro

Author:

Yang Meiheng1,Mailhot Geneviève1,MacKay Carole A.1,Mason-Savas April1,Aubin Justin1,Odgren Paul R.1

Affiliation:

1. From the Department of Cell Biology, University of Massachusetts Medical School, Worcester, MA.

Abstract

AbstractOsteoclasts differentiate from hematopoietic precursors under systemic and local controls. Chemokines and receptors direct leukocyte traffic throughout the body and may help regulate site-specific bone resorption. We investigated bone gene expression in vivo during rapid osteoclast differentiation induced by colony-stimulating factor 1 (CSF-1) in Csf1-null toothless (tl/tl) rats. Long-bone RNA from CSF-1–treated tl/tl rats was analyzed by high-density microarray over a time course. TRAP (tartrate-resistant acid phosphatase)–positive osteoclasts appeared on day 2, peaked on day 4, and decreased slightly on day 6, as marrow space was expanding. TRAP and cathepsin K mRNA paralleled the cell counts. We examined all chemokine and receptor mRNAs on the arrays. CCL9 was strongly induced and peaked on day 2, as did its receptor, CCR1, and regulatory receptors c-Fms (CSF-1 receptor) and RANK (receptor activator of nuclear factor κB). Other chemokines and receptors showed little or no significant changes. In situ hybridization and immunohistochemistry revealed CCL9 in small, immature osteoclasts on day 2 and in mature cells at later times. Anti-CCL9 antibody inhibited osteoclast differentiation in culture and significantly suppressed the osteoclast response in CSF-1–treated tl/tl rats. While various chemokines have been implicated in osteoclastogenesis in vitro, this first systematic analysis of chemokines and receptors during osteoclast differentiation in vivo highlights the key role of CCL9 in this process.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

Reference39 articles.

1. Marks SC, Jr., Odgren PR. The structure and development of the skeleton. In: Bilezikian JP, Raisz LG, Rodan GA, eds. Principles of Bone Biology, Vol. 1 (2nd ed). New York, NY: Academic Press; 2002: 3-15.

2. Whyte MP. Sclerosing bone disorders. In: Fauvus MJ, ed. Primer on the Metabolic Bone Diseases and Disorders of Mineral Metabolism (5th ed). Washington, D.C.: American Society for Bone and Mineral Research; 2003: 449-466.

3. de Vernejoul MC, Benichou O. Human osteopetrosis and other sclerosing disorders: recent genetic developments. Calcif Tissue Int. 2001;69: 1-6.

4. Boyle WJ, Simonet WS, Lacey DL. Osteoclast differentiation and activation. Nature. 2003;423: 337-342.

5. Moutier R, Toyama K, Cotton WR, Gaines JF. Three recessive genes for congenital osteopetrosis in the Norway rat. J Heredity. 1976;67: 189-190.

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