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M-CSF Neutralization and Egr-1 Deficiency Prevent Ovariectomy-induced Bone Loss

Overview
Journal J Clin Invest
Specialty General Medicine
Date 2000 May 3
PMID 10792003
Citations 39
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Abstract

Increased stromal cell production of M-CSF, an event caused by enhanced phosphorylation of the nuclear protein Egr-1, is central to the mechanism by which estrogen (E2) deficiency upregulates osteoclast (OC) formation. However, the contribution of enhanced M-CSF production to the bone loss induced by E2 deficiency remains to be determined. We found that treatment with an Ab that neutralizes M-CSF in vivo completely prevents the rise in OC number, the increase in bone resorption, and the resulting bone loss induced by ovariectomy (ovx). We also found that adult, intact Egr-1-deficient mice, a strain characterized by maximally stimulated stromal cell production of M-CSF, exhibit increased bone resorption and decreased bone mass. In these mice, treatment with anti-M-CSF Ab restored normal levels of bone resorption, thus confirming that increased M-CSF production accounts for the remodeling abnormalities of Egr-1-deficient mice. Consistent with the failure of ovx to further increase M-CSF production in Egr-1-deficient mice, ovx neither increased bone resorption further, nor caused bone loss in these animals. In summary, the data demonstrate that E2 deficiency induces M-CSF production via an Egr-1-dependent mechanism that is central to the pathogenesis of ovx-induced bone loss. Thus, Egr-1 and M-CSF are critical mediators of the bone sparing effects of E2 in vivo.

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References
1.
Jilka R, Takahashi K, Munshi M, Williams D, Roberson P, Manolagas S . Loss of estrogen upregulates osteoblastogenesis in the murine bone marrow. Evidence for autonomy from factors released during bone resorption. J Clin Invest. 1998; 101(9):1942-50. PMC: 508781. DOI: 10.1172/JCI1039. View

2.
Rajavashisth T, Eng R, Shadduck R, Waheed A, Shively J, Lusis A . Cloning and tissue-specific expression of mouse macrophage colony-stimulating factor mRNA. Proc Natl Acad Sci U S A. 1987; 84(5):1157-61. PMC: 304385. DOI: 10.1073/pnas.84.5.1157. View

3.
Mosmann T . Rapid colorimetric assay for cellular growth and survival: application to proliferation and cytotoxicity assays. J Immunol Methods. 1983; 65(1-2):55-63. DOI: 10.1016/0022-1759(83)90303-4. View

4.
Myint Y, Miyakawa K, Naito M, Shultz L, Oike Y, Yamamura K . Granulocyte/macrophage colony-stimulating factor and interleukin-3 correct osteopetrosis in mice with osteopetrosis mutation. Am J Pathol. 1999; 154(2):553-66. PMC: 1850013. DOI: 10.1016/s0002-9440(10)65301-1. View

5.
Pacifici R, Brown C, Puscheck E, Friedrich E, Slatopolsky E, Maggio D . Effect of surgical menopause and estrogen replacement on cytokine release from human blood mononuclear cells. Proc Natl Acad Sci U S A. 1991; 88(12):5134-8. PMC: 51826. DOI: 10.1073/pnas.88.12.5134. View