Sirt1 Is a Regulator of Bone Mass and a Repressor of Sost Encoding for Sclerostin, a Bone Formation Inhibitor

Author:

Cohen-Kfir Einav1,Artsi Hanna1,Levin Avi1,Abramowitz Eva1,Bajayo Alon2,Gurt Irina1,Zhong Lei3,D'Urso Agustina3,Toiber Debra3,Mostoslavsky Raul3,Dresner-Pollak Rivka1

Affiliation:

1. Department of Medicine, Endocrinology and Metabolism Service (E.C.-K., H.A., A.L., E.A., I.G., R.D.-P.), Hadassah-Hebrew University Medical Center, Jerusalem 91120, Israel

2. Bone Laboratory (A.B.), Hebrew University of Jerusalem, Jerusalem 91120, Israel; Harvard Medical School, Boston, Massachusetts 02114

3. Departments of the Massachusetts General Hospital Cancer Center (L.Z., A.D., D.T., R.M.), Harvard Medical School, Boston, Massachusetts 02114

Abstract

Sirt1, the mammalian ortholog of the yeast Sir2 (silent information regulator 2), was shown to play an important role in metabolism and in age-associated diseases, but its role in skeletal homeostasis and osteoporosis has yet not been studied. Using 129/Sv mice with a germline mutation in the Sirt1 gene, we demonstrate that Sirt1 haplo-insufficient (Sirt1+/−) female mice exhibit a significant reduction in bone mass characterized by decreased bone formation and increased marrow adipogenesis. Importantly, we identify Sost, encoding for sclerostin, a critical inhibitor of bone formation, as a novel target of Sirt1. Using chromatin immunoprecipitation analysis, we reveal that Sirt1 directly and negatively regulates Sost gene expression by deacetylating histone 3 at lysine 9 at the Sost promoter. Sost down-regulation by small interfering RNA and the administration of a sclerostin-neutralizing antibody restore gene expression of osteocalcin and bone sialoprotein as well as mineralized nodule formation in Sirt1+/− marrow-derived mesenchymal stem cells induced to osteogenesis. These findings reveal a novel role for Sirt1 in bone as a regulator of bone mass and a repressor of sclerostin, and have potential implications suggesting that Sirt1 is a target for promoting bone formation as an anabolic approach for treatment of osteoporosis.

Publisher

The Endocrine Society

Subject

Endocrinology

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