4.6 Article

PTHrP-Derived Peptides Restore Bone Mass and Strength in Diabetic Mice: Additive Effect of Mechanical Loading

期刊

JOURNAL OF BONE AND MINERAL RESEARCH
卷 32, 期 3, 页码 486-497

出版社

WILEY
DOI: 10.1002/jbmr.3007

关键词

DIABETES; OSTEOCYTES; SOST/SCLEROSTIN; PTHrP; OSTEOCYTE APOPTOSIS

资金

  1. National Institutes of Health [R01-AR059357]
  2. Veterans Administration [1 I01 BX002104-01]
  3. Spanish Instituto de Salud Carlos III [PI11/00449, RD12/0043/0008]
  4. Universidad San Pablo CEU
  5. European Molecular and Biology Organization (EMBO)
  6. Conchita Rabago Foundation
  7. Boehringer Ingelheim
  8. Spanish Ministerio de Economia y Competitividad [FI12/00458]

向作者/读者索取更多资源

There is an unmet need to understand the mechanisms underlying skeletal deterioration in diabetes mellitus (DM) and to develop therapeutic approaches to treat bone fragility in diabetic patients. We demonstrate herein that mice with type 1 DM induced by streptozotocin exhibited low bone mass, inferior mechanical and material properties, increased bone resorption, decreased bone formation, increased apoptosis of osteocytes, and increased expression of the osteocyte-derived bone formation inhibitor Sost/sclerostin. Further, short treatment of diabetic mice with parathyroid hormone related protein ( PTHrP)-derived peptides corrected these changes to levels undistinguishable from non-diabetic mice. In addition, diabetic mice exhibited reduced bone formation in response to mechanical stimulation, which was corrected by treatment with the PTHrP peptides, and higher prevalence of apoptotic osteocytes, which was reduced by loading or by the PTHrP peptides alone and reversed by a combination of loading and PTHrP peptide treatment. In vitro experiments demonstrated that the PTHrP peptides or mechanical stimulation by fluid flow activated the survival kinases ERKs and induced nuclear translocation of the canonical Wnt signaling mediator beta-catenin, and prevented the increase in osteocytic cell apoptosis induced by high glucose. Thus, PTHrP-derived peptides cross-talk with mechanical signaling pathways to reverse skeletal deterioration induced by DM in mice. These findings suggest a crucial role of osteocytes in the harmful effects of diabetes on bone and raise the possibility of targeting these cells as a novel approach to treat skeletal deterioration in diabetes. Moreover, our study suggests the potential therapeutic efficacy of combined pharmacological and mechanical stimuli to promote bone accrual and maintenance in diabetic subjects. (C) 2016 American Society for Bone and Mineral Research.

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