Pulsed Electromagnetic Field Promotes Bone Anabolism in Postmenopausal Osteoporosis through the miR-6976/BMP/Smad4 Axis

IF 3.1 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Journal of Tissue Engineering and Regenerative Medicine Pub Date : 2023-06-03 DOI:10.1155/2023/8857436
Jinming Huang, Yi Li, Siyi Zhu, Liqiong Wang, Honglian Pei, Xiangxiu Wang, Tianjie Bao, Zhiyuan Jiang, Lin Yang, Chengqi He
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Abstract

Background. Insufficient bone formation is the key reason for the imbalance of bone metabolism and one of the main mechanisms for the occurrence and deterioration of postmenopausal osteoporosis (PMOP). Accumulating evidence has demonstrated that pulsed electromagnetic field (PEMF), as a physiotherapy, can treat osteoporosis by promoting osteogenic differentiation in osteoblasts. However, little is known about its mechanisms. Methods. In vivo, ovariectomized mice were administered PEMF for 4 weeks, and skeletal analysis was conducted. In vitro, hydrogen peroxide-treated mouse osteoblast precursor cells with or without PEMF intervention were subjected to osteogenic differentiation testing and miRNA microarrays. The potential target miRNAs were validated, followed by gene expression assays to further clarify their regulatory relationships with target pathways. Results. We found that PEMF reduced bone loss in ovariectomized mice and promoted osteogenic differentiation of hydrogen peroxide-treated osteoblast precursor cells via downregulation of miR-6976-5p. Mechanistically, reduced miR-6976-5p enhanced the nuclear transport of phosphorylated Smad1/5/9 by upregulating Smad4, thereby activating the BMP/Smad pathway. Additionally, the administration of miR-6976-5p inhibitors successfully promoted osteogenic differentiation in vitro, and its antagomirs protected bone mass in vivo. miR-6976-5p mimics and agomirs acted in the opposite way. Conclusion. These results provide evidence that PEMF alleviates estrogen deficiency-induced bone loss by activating osteoblastic progenitor cells and maintaining their osteogenic differentiation and shed light on the mechanisms involved, which may provide a potential option for the clinical application of PEMF in PMOP.
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脉冲电磁场通过miR-6976/BMP/Smad4轴促进绝经后骨质疏松症的骨合成代谢
背景骨形成不足是骨代谢失衡的关键原因,也是绝经后骨质疏松症(PMOP)发生和恶化的主要机制之一。越来越多的证据表明,脉冲电磁场作为一种物理疗法,可以通过促进成骨细胞的成骨分化来治疗骨质疏松症。然而,人们对其机制知之甚少。方法。在体内,给去卵巢的小鼠施用PEMF 4 周,并进行骨骼分析。在体外,对有或没有PEMF干预的过氧化氢处理的小鼠成骨细胞前体细胞进行成骨分化测试和miRNA微阵列。对潜在的靶miRNA进行了验证,随后进行了基因表达测定,以进一步阐明它们与靶通路的调控关系。后果我们发现PEMF通过下调miR-6976-5p来减少去卵巢小鼠的骨丢失,并促进过氧化氢处理的成骨细胞前体细胞的成骨分化。从机制上讲,减少的miR-6976-5p通过上调Smad4增强磷酸化Smad1/5/9的核转运,从而激活BMP/Smad途径。此外,miR-6976-5p抑制剂的给药成功地促进了体外成骨分化,其抗炎作用在体内保护了骨量。miR-6976-5p模拟物和agomir以相反的方式起作用。结论这些结果提供了证据,证明PEMF通过激活成骨祖细胞并维持其成骨分化来减轻雌激素缺乏诱导的骨丢失,并阐明了相关机制,这可能为PEMF在PMOP中的临床应用提供了潜在的选择。
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来源期刊
CiteScore
7.50
自引率
3.00%
发文量
97
审稿时长
4-8 weeks
期刊介绍: Journal of Tissue Engineering and Regenerative Medicine publishes rapidly and rigorously peer-reviewed research papers, reviews, clinical case reports, perspectives, and short communications on topics relevant to the development of therapeutic approaches which combine stem or progenitor cells, biomaterials and scaffolds, growth factors and other bioactive agents, and their respective constructs. All papers should deal with research that has a direct or potential impact on the development of novel clinical approaches for the regeneration or repair of tissues and organs. The journal is multidisciplinary, covering the combination of the principles of life sciences and engineering in efforts to advance medicine and clinical strategies. The journal focuses on the use of cells, materials, and biochemical/mechanical factors in the development of biological functional substitutes that restore, maintain, or improve tissue or organ function. The journal publishes research on any tissue or organ and covers all key aspects of the field, including the development of new biomaterials and processing of scaffolds; the use of different types of cells (mainly stem and progenitor cells) and their culture in specific bioreactors; studies in relevant animal models; and clinical trials in human patients performed under strict regulatory and ethical frameworks. Manuscripts describing the use of advanced methods for the characterization of engineered tissues are also of special interest to the journal readership.
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