脉冲电磁场对体内老年性骨质疏松大鼠模型的影响

IF 1.8 3区 生物学 Q3 BIOLOGY
Jun Zhou, Jinling Wang, Mengjian Qu, Xiarong Huang, Linwei Yin, Yang Liao, Fujin Huang, Pengyun Ning, Peirui Zhong, Yahua Zeng
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引用次数: 2

摘要

本研究评估了脉冲电磁场(PEMF)对老年性骨质疏松大鼠模型的影响及其潜在的分子事件。采用随机数字表法将24月龄雄性SD大鼠随机分为对照组和PEMF组(每组8只),3月龄雄性SD大鼠为幼龄对照组。PEMF组大鼠给予PEMF治疗40 min/d,连续5天/周。分析大鼠骨髓细胞骨密度/微结构、血清骨特异性碱性磷酸酶(BALP)、抗酒石酸酸性磷酸酶5b (TRACP5b)和Wnt/β-catenin信号基因水平。12周的PEMF干预显示,与对照组相比,PEMF组大鼠在抑制年龄诱导的骨密度损失和骨小梁结构恶化方面有显著效果,即通过骨组织形态学分析,PEMF治疗增强了股骨近端干骺端和第五腰椎(L5)椎体的骨密度,改善了胫骨近端和L4椎体参数。此外,与对照大鼠相比,PEMF组大鼠骨中BALP水平显著升高,但TRACP5b水平降低。在老龄大鼠中,PEMF显著上调Wnt3a、LRP5、β-catenin和Runx2的表达,下调PPAR-γ的表达。结果表明,PEMF通过改善骨髓间充质间质细胞的分化和增殖能力,激活Wnt信号通路,可预防骨丢失和结构恶化。需要进一步的临床研究来验证这些发现。©2022生物电磁学学会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of the Pulsed Electromagnetic Field Treatment in a Rat Model of Senile Osteoporosis In Vivo

This study assessed the effects of pulsed electromagnetic fields (PEMF) in a rat model of senile osteoporosis and the underlying molecular events. 24-month-old male Sprague–Dawley (SD) rats were randomly divided into control and PEMF groups (n = 8 per group) using a random digit table, while 3-month-old male SD rats were set as the young-age control group. Rats in the PEMF group were treated by PEMF for 40 min/day for 5 days/week. Bone mineral density/microarchitecture, level of serum bone-specific alkaline phosphatase (BALP), tartrate-resistant acid phosphatase 5b (TRACP5b), and Wnt/β-catenin signaling genes in rat bone marrow cells were then analyzed. The 12-week PEMF intervention showed a significant effect on inhibition of age-induced bone density loss and deterioration of trabecular bone structures in the PEMF group rats versus control rats, that is, the treatment enhanced bone mineral density of the proximal femoral metaphysis and the fifth lumbar (L5) vertebral body and improved the proximal tibia and L4 vertebral body parameters using bone histomorphometry analysis. Furthermore, the BALP level in the bones was significantly increased, but the TRACP5b level was reduced in the PEMF group of rats versus control rats. PEMF also dramatically upregulated expression of Wnt3a, LRP5, β-catenin, and Runx2 but downregulated PPAR-γ expression in the aged rats. The results demonstrated that PEMF could prevent bone loss and architectural deterioration due to the improvement of bone marrow mesenchymal stromal cell differentiation and proliferation abilities and activating the Wnt signaling pathway. Future clinical studies are needed to validate these findings. © 2022 Bioelectromagnetics Society.

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来源期刊
Bioelectromagnetics
Bioelectromagnetics 生物-生物物理
CiteScore
4.60
自引率
0.00%
发文量
44
审稿时长
6-12 weeks
期刊介绍: Bioelectromagnetics is published by Wiley-Liss, Inc., for the Bioelectromagnetics Society and is the official journal of the Bioelectromagnetics Society and the European Bioelectromagnetics Association. It is a peer-reviewed, internationally circulated scientific journal that specializes in reporting original data on biological effects and applications of electromagnetic fields that range in frequency from zero hertz (static fields) to the terahertz undulations and visible light. Both experimental and clinical data are of interest to the journal''s readers as are theoretical papers or reviews that offer novel insights into or criticism of contemporary concepts and theories of field-body interactions. The Bioelectromagnetics Society, which sponsors the journal, also welcomes experimental or clinical papers on the domains of sonic and ultrasonic radiation.
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