Literature DB >> 32044333

Pulsed electromagnetic fields modify the adverse effects of glucocorticoids on bone architecture, bone strength and porous implant osseointegration by rescuing bone-anabolic actions.

Jing Cai1, Xi Shao2, Qiuju Yang3, Yongqing Yang2, Zedong Yan2, Erping Luo2, Xue Feng4, Da Jing5.   

Abstract

Long-term glucocorticoid therapy is known to induce increased bone fragility and impaired skeletal regeneration potential. Growing evidence suggests that pulsed electromagnetic fields (PEMF) can accelerate fracture healing and increase bone mass both experimentally and clinically. However, how glucocorticoid-treated bone and bone cells respond to PEMF stimulation remains poorly understood. Here we tested the effects of PEMF on bone quantity/quality, bone metabolism, and porous implant osseointegration in rabbits treated with dexamethasone (0.5 mg/kg/day, 6 weeks). The micro-CT, histologic and nanoindentation results showed that PEMF ameliorated the glucocorticoid-mediated deterioration of cancellous and cortical bone architecture and intrinsic material properties. Utilizing the new porous titanium implant (Ti2448) with low toxicity and low elastic modulus, we found that PEMF stimulated bone ingrowth into the pores of implants and enhanced peri-implant bone material quality during osseous defect repair in glucocorticoid-treated rabbits. Dynamic histomorphometric results revealed that PEMF reversed the adverse effects of glucocorticoids on bone formation, which was confirmed by increased circulating osteocalcin and P1NP. PEMF also significantly attenuated osteocyte apoptosis, promoted osteoblast-related osteocalcin, Runx2 and Osx expression, and inhibited osteocyte-specific DKK1 and Sost expression (negative regulators of osteoblasts) in glucocorticoid-treated skeletons, revealing improved functional activities of osteoblasts and osteocytes. Nevertheless, PEMF exerted no effect on circulating bone-resorbing cytokines (serum TRAcP5b and CTX-1) or skeletal gene expression of osteoclast-specific markers (TRAP and cathepsin K). PEMF also significantly upregulated skeletal gene expression of canonical Wnt ligands (Wnt1, Wnt3a and Wnt10b), whereas PEMF did not alter non-canonical Wnt5a expression. This study demonstrates that PEMF treatment improves bone mass, strength and porous implant osseointegration in glucocorticoid-treated rabbits by promoting potent bone-anabolic action, which is associated with canonical Wnt-mediated improvement in osteoblast and osteocyte functions. This study provides a new treatment alternative for glucocorticoid-related bone disorders in a convenient and non-invasive manner.
Copyright © 2020 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Bone anabolism; Canonical Wnt signaling; Glucocorticoids; Implant osseointegration; Osteoporosis; Pulsed electromagnetic fields (PEMF)

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Substances:

Year:  2020        PMID: 32044333     DOI: 10.1016/j.bone.2020.115266

Source DB:  PubMed          Journal:  Bone        ISSN: 1873-2763            Impact factor:   4.398


  4 in total

1.  Construction and validation of steroid-induced rabbit osteonecrosis model.

Authors:  Tongtong Zhu; Mengyang Jiang; Mingran Zhang; Liguo Cui; Xiaoyu Yang; Xukai Wang; Guangyao Liu; Jianxun Ding; Xuesi Chen
Journal:  MethodsX       Date:  2022-04-26

2.  Pulsed Electromagnetic Field Stimulation of Bone Healing and Joint Preservation: Cellular Mechanisms of Skeletal Response.

Authors:  Ruggero Cadossi; Leo Massari; Jennifer Racine-Avila; Roy K Aaron
Journal:  J Am Acad Orthop Surg Glob Res Rev       Date:  2020-05

3.  [Bone stimulation 4.0-Combination of EMTT and ESWT in humeral nonunion : A case report].

Authors:  Karsten Knobloch
Journal:  Unfallchirurg       Date:  2021-06-16       Impact factor: 1.000

Review 4.  Pulsed Electro-Magnetic Field (PEMF) Effect on Bone Healing in Animal Models: A Review of Its Efficacy Related to Different Type of Damage.

Authors:  Mattia Di Bartolomeo; Francesco Cavani; Arrigo Pellacani; Alexis Grande; Roberta Salvatori; Luigi Chiarini; Riccardo Nocini; Alexandre Anesi
Journal:  Biology (Basel)       Date:  2022-03-05
  4 in total

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