Translational Research of Electromagnetic Fields on Diseases Related With Bone Remodeling: Review and Prospects
10.16476/j.pibb.2024.0259
- VernacularTitle:电磁场与骨重建相关疾病转化研究:回顾与展望
- Author:
Peng SHANG
1
;
Jun-Yu LIU
1
;
Sheng-Hang WANG
2
;
Jian-Cheng YANG
3
;
Zhe-Yuan ZHANG
1
;
An-Lin LI
1
;
Hao ZHANG
4
;
Yu-Hong ZENG
3
Author Information
1. Research & Development Institute of Northwestern Polytechnical University in Shenzhen, Shenzhen 518057, China
2. School of Life Science, Northwestern Polytechnical University, Xi’an 710072, China
3. Department of Osteoporosis, Honghui Hospital, Xi’an Jiaotong University, Xi’an 710054, China
4. Department of Spine Surgery, People’s Hospital of Longhua, Southern Medical University, Shenzhen 518109, China
- Publication Type:Journal Article
- Keywords:
pulsed electromagnetic fields;
static magnetic fields;
bone remodeling;
osteoporosis;
fracture
- From:
Progress in Biochemistry and Biophysics
2025;52(2):439-455
- CountryChina
- Language:Chinese
-
Abstract:
Electromagnetic fields can regulate the fundamental biological processes involved in bone remodeling. As a non-invasive physical therapy, electromagnetic fields with specific parameters have demonstrated therapeutic effects on bone remodeling diseases, such as fractures and osteoporosis. Electromagnetic fields can be generated by the movement of charged particles or induced by varying currents. Based on whether the strength and direction of the electric field change over time, electromagnetic fields can be classified into static and time-varying fields. The treatment of bone remodeling diseases with static magnetic fields primarily focuses on fractures, often using magnetic splints to immobilize the fracture site while studying the effects of static magnetic fields on bone healing. However, there has been relatively little research on the prevention and treatment of osteoporosis using static magnetic fields. Pulsed electromagnetic fields, a type of time-varying field, have been widely used in clinical studies for treating fractures, osteoporosis, and non-union. However, current clinical applications are limited to low-frequency, and research on the relationship between frequency and biological effects remains insufficient. We believe that different types of electromagnetic fields acting on bone can induce various “secondary physical quantities”, such as magnetism, force, electricity, acoustics, and thermal energy, which can stimulate bone cells either individually or simultaneously. Bone cells possess specific electromagnetic properties, and in a static magnetic field, the presence of a magnetic field gradient can exert a certain magnetism on the bone tissue, leading to observable effects. In a time-varying magnetic field, the charged particles within the bone experience varying Lorentz forces, causing vibrations and generating acoustic effects. Additionally, as the frequency of the time-varying field increases, induced currents or potentials can be generated within the bone, leading to electrical effects. When the frequency and power exceed a certain threshold, electromagnetic energy can be converted into thermal energy, producing thermal effects. In summary, external electromagnetic fields with different characteristics can generate multiple physical quantities within biological tissues, such as magnetic, electric, mechanical, acoustic, and thermal effects. These physical quantities may also interact and couple with each other, stimulating the biological tissues in a combined or composite manner, thereby producing biological effects. This understanding is key to elucidating the electromagnetic mechanisms of how electromagnetic fields influence biological tissues. In the study of electromagnetic fields for bone remodeling diseases, attention should be paid to the biological effects of bone remodeling under different electromagnetic wave characteristics. This includes exploring innovative electromagnetic source technologies applicable to bone remodeling, identifying safe and effective electromagnetic field parameters, and combining basic research with technological invention to develop scientifically grounded, advanced key technologies for innovative electromagnetic treatment devices targeting bone remodeling diseases. In conclusion, electromagnetic fields and multiple physical factors have the potential to prevent and treat bone remodeling diseases, and have significant application prospects.