Literature DB >> 25736917

Low-intensity pulsed ultrasound enhances bone repair in a rabbit model of steroid-associated osteonecrosis.

Hanxiao Zhu1, Xunzi Cai, Tiao Lin, Zhongli Shi, Shigui Yan.   

Abstract

BACKGROUND: Steroids are a leading cause of femoral head osteonecrosis. Currently there are no medications available to prevent and/or treat steroid-associated osteonecrosis. Low-intensity pulsed ultrasound (LIPUS) was approved by the FDA for treating delayed union of bone fractures. Some studies have reported that LIPUS can enhance bone formation and local blood flow in an animal model of fracture healing. However, whether the effect of osteogenesis and neovascularization by LIPUS can enhance the repair progress in steroid-associated osteonecrosis is unknown. QUESTIONS/PURPOSES: We hypothesized that LIPUS may facilitate osteogenesis and neovascularization in the reparative processes of steroid-associated osteonecrosis. Using a rabbit animal model, we asked whether LIPUS affects (1) bone strength and trabecular architecture; (2) blood vessel number and diameter; and (3) BMP-2 and VEGF expression.
METHODS: Bilateral femoral head necrosis was induced by lipopolysaccharide and methylprednisolone in 24 rabbits. The left femoral heads of rabbits received LIPUS therapy (200 mW/cm(2)) for 20 minutes daily and were classified as the LIPUS group. The right femoral heads of the same rabbits did not receive therapy and were classified as the control group. All rabbits were euthanized 12 weeks after LIPUS therapy. Micro-CT, biomechanical testing, histologic evaluation, immunohistochemistry, quantitative real-time PCR, and Western blot were used for examination of the effects of LIPUS.
RESULTS: Twelve weeks after LIPUS treatment, the loading strength in the control group was 355 ± 38 N (95% CI, 315-394 N), which was lower (p = 0.028) than that in the LIPUS group (441 ± 78 N; 95% CI, 359-524 N). The bone tissue volume density (bone volume/total volume) in the LIPUS group (49.29% ± 12.37%; 95 % CI, 36.31%-62.27%) was higher (p = 0.022) than that in the control group (37.93% ± 8.37%; 95 % CI, 29.15%-46.72%). The percentage of empty osteocyte lacunae in the LIPUS group (17% ± 4%; 95% CI, 15%-20%) was lower (p = 0.002) than that in the control group (26% ± 9%; 95% CI, 21%-32%). The mineral apposition rate (μm/day) in the LIPUS group (2.3 ± 0.8 μm/day; 95% CI, 1.8 2.8 μm/day) was higher (p = 0.001) than that in the control group (1.6 ± 0.3 μm/day; 95% CL, 1.4-1.8 μm/day). The number of blood vessels in the LIPUS group (7.8 ± 3.6/mm(2); 95% CI, 5.5-10.1 mm(2)) was greater (p = 0.025) than the number in the control group (5.7 ± 2.6/mm(2); 95% CI, 4.0-7.3 mm(2)). Messenger RNA (mRNA) and protein expression of BMP-2 in the LIPUS group (75 ± 7, 95% CI, 70-79; and 30 ± 3, 95% CI, 28-31) were higher (both p < 0.001) than those in the control groups (46 ± 5, 95% CI, 43-49; and 15 ± 2, 95% CI, 14-16). However, there were no differences (p = 0.114 and 0.124) in mRNA and protein expression of vascular endothelial growth factor between the control (26 ± 3, 95% CI, 24-28; and 22 ± 6, 95% CI, 18-26) and LIPUS groups (28 ± 2, 95% CI, 26-29; and 23 ± 6, 95% CI, 19-27).
CONCLUSIONS: The results of this study indicate that LIPUS promotes osteogenesis and neovascularization, thus promoting bone repair in this steroid-associated osteonecrosis model. CLINICAL RELEVANCE: LIPUS may be a promising modality for the treatment of early-stage steroid-associated osteonecrosis. Further research, including clinical trials to determine whether LIPUS has a therapeutic effect on patients with early-onset steroid-associated osteonecrosis may be warranted.

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Year:  2015        PMID: 25736917      PMCID: PMC4385349          DOI: 10.1007/s11999-015-4154-8

Source DB:  PubMed          Journal:  Clin Orthop Relat Res        ISSN: 0009-921X            Impact factor:   4.176


  43 in total

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Review 2.  Non-traumatic avascular necrosis of the femoral head.

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Review 4.  Current management options for osteonecrosis of the femoral head: part 1, diagnosis and nonoperative management.

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Journal:  Am J Orthop (Belle Mead NJ)       Date:  2011-09

5.  Relationships between trabecular bone remodeling and bone vascularization: a quantitative study.

Authors:  O Barou; S Mekraldi; L Vico; G Boivin; C Alexandre; M H Lafage-Proust
Journal:  Bone       Date:  2002-04       Impact factor: 4.398

Review 6.  Osteonecrosis of the femoral head of laboratory animals: the lessons learned from a comparative study of osteonecrosis in man and experimental animals.

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8.  Corticosteroid enhances the experimental induction of osteonecrosis in rabbits with Shwartzman reaction.

Authors:  T Yamamoto; K Hirano; H Tsutsui; Y Sugioka; K Sueishi
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9.  The effect of core decompression on local expression of BMP-2, PPAR-γ and bone regeneration in the steroid-induced femoral head osteonecrosis.

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10.  Enhancement of osteogenic differentiation and proliferation in human mesenchymal stem cells by a modified low intensity ultrasound stimulation under simulated microgravity.

Authors:  Sardar M Z Uddin; Yi-Xian Qin
Journal:  PLoS One       Date:  2013-09-12       Impact factor: 3.240

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2.  Hydrogen-rich saline attenuates steroid-associated femoral head necrosis through inhibition of oxidative stress in a rabbit model.

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3.  Surgical accuracy, function, and quality of life of simultaneous versus staged bilateral Total hip Arthroplasty in patients with Osteonecrosis of the femoral head.

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4.  Combined Treatment with an Anticoagulant and a Vasodilator Prevents Steroid-Associated Osteonecrosis of Rabbit Femoral Heads by Improving Hypercoagulability.

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5.  Comparative Analysis of the Effect of Two Therapeutic Ultrasound Protocols for Regeneration of a Critical Bone Defect.

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6.  High Pelvic Incidence Is Associated with Disease Progression in Nontraumatic Osteonecrosis of the Femoral Head.

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7.  Intermittent Administration of Parathyroid Hormone [1-34] Prevents Particle-Induced Periprosthetic Osteolysis in a Rat Model.

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8.  LIPUS promotes spinal fusion coupling proliferation of type H microvessels in bone.

Authors:  Ximing Xu; Fei Wang; Yahong Yang; Xiaoyi Zhou; Yajun Cheng; Xianzhao Wei; Ming Li
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9.  PTH[1-34] improves the effects of core decompression in early-stage steroid-associated osteonecrosis model by enhancing bone repair and revascularization.

Authors:  Chen-He Zhou; Jia-Hong Meng; Chen-Chen Zhao; Chen-Yi Ye; Han-Xiao Zhu; Bin Hu; Boon Chin Heng; Yue Shen; Tiao Lin; Xiao-Bo Yang; Zhong-Li Shi; Wei-Liang Shen; Shi-Gui Yan
Journal:  PLoS One       Date:  2017-05-31       Impact factor: 3.240

10.  Microbubble-Mediated Ultrasound Outweighs Low-Intensity Pulsed Ultrasound on Osteogenesis and Neovascularization in a Rabbit Model of Steroid-Associated Osteonecrosis.

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Journal:  Biomed Res Int       Date:  2018-09-12       Impact factor: 3.411

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