4.6 Article

Partial loss of Smad7 function impairs bone remodeling, osteogenesis and enhances osteoclastogenesis in mice

Journal

BONE
Volume 67, Issue -, Pages 46-55

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.bone.2014.06.033

Keywords

Smad7; Osteogenesis; Osteoclastogenesis; Bone remodeling; MSCs

Funding

  1. Hong Kong Government Research Grant Council, General Research Fund [CUHK 471110, CUHK 470813]
  2. China Natural Science Foundation [81371946]
  3. National Basic Science and Development Program of PR China (973 Program) [2012CB518105]
  4. Focused Investment Scheme B,The Chinese University of Hong Kong [CUHK 1902059]

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Smad7 is well demonstrated as a negative regulator of TGF-beta, signaling. Its alteration in expression often results in diseases such as cancer and fibrosis. However, the exact role of Smad7 in regulating bone remodeling during mammalian development has not been properly delineated. In this study we performed experiments to clarify the involvement of Smad7 in regulating osteogenesis and osteoclastogenesis both in vivo and in vitro. Genetically engineered Smad7(Delta E1) (KO) mice were used, whereby partial functional of Smad7 is lost by deleting exon I of the Smad7 gene and the truncated proteins cause a hypomorphic allele. Analysis with mu CT imagery and bone histomorphometry showed that the KO mice had lower TbN, TbTh, higher TbSp in the metaphysic region of the femurs at 6, 12, 24 weeks from birth, as well as decreased MAR and increased osteoclast surface compared with the WT mice. In vitro BM-MSC multi-lineage differentiation evaluation showed that the KO group had reduced osteogenic potential, fewer mineralized nodules, lower ALP activity, and reduced gene expression of Col1A1, Runx2 and OCN. The adipogenic potential was elevated in the KO group with more formation of lipid droplets, and increased gene expression of Adipsin and C/EBP alpha. The osteoclastogenic potential of KO mice BMMs was elevate, with emergence of more osteoclasts, larger resorptive areas, and increased gene expression of TRAP and CTR. Our results indicate that partial loss of Smad7 function in mice leads to compromised bone formation and enhanced bone resorption. Thus, Smad7 is acknowledged-as a novel key regulator between osteogenesis and osteoclastogenesis. (C) 2014 Elsevier Inc. All rights reserved.

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