Significance of mechanical loading in bone fracture healing, bone regeneration, and vascularization

Author:

Ma Qianli12ORCID,Miri Zahra3,Haugen Håvard Jostein1ORCID,Moghanian Amirhossein4,Loca Dagnjia56

Affiliation:

1. Department of Biomaterials, Institute of Clinical Dentistry, University of Oslo, Norway

2. Department of Immunology, School of Basic Medicine, Fourth Military Medical University, Xi’an, PR China

3. Department of Materials Engineering, Isfahan University of Technology, Isfahan, Iran

4. Department of Materials Engineering, Imam Khomeini International University, Qazvin, Iran

5. Rudolfs Cimdins Riga Biomaterials Innovations and Development Centre, Institute of General Chemical Engineering, Faculty of Materials Science and Applied Chemistry, Riga Technical University, Riga, Latvia

6. Baltic Biomaterials Centre of Excellence, Headquarters at Riga Technical University, Riga, Latvia

Abstract

In 1892, J.L. Wolff proposed that bone could respond to mechanical and biophysical stimuli as a dynamic organ. This theory presents a unique opportunity for investigations on bone and its potential to aid in tissue repair. Routine activities such as exercise or machinery application can exert mechanical loads on bone. Previous research has demonstrated that mechanical loading can affect the differentiation and development of mesenchymal tissue. However, the extent to which mechanical stimulation can help repair or generate bone tissue and the related mechanisms remain unclear. Four key cell types in bone tissue, including osteoblasts, osteoclasts, bone lining cells, and osteocytes, play critical roles in responding to mechanical stimuli, while other cell lineages such as myocytes, platelets, fibroblasts, endothelial cells, and chondrocytes also exhibit mechanosensitivity. Mechanical loading can regulate the biological functions of bone tissue through the mechanosensor of bone cells intraosseously, making it a potential target for fracture healing and bone regeneration. This review aims to clarify these issues and explain bone remodeling, structure dynamics, and mechano-transduction processes in response to mechanical loading. Loading of different magnitudes, frequencies, and types, such as dynamic versus static loads, are analyzed to determine the effects of mechanical stimulation on bone tissue structure and cellular function. Finally, the importance of vascularization in nutrient supply for bone healing and regeneration was further discussed.

Funder

National Natural Science Foundation of China

European Union’s Horizon 2020 research and innovation programme

EEA Grants

Baltic Research Programme

Publisher

SAGE Publications

Subject

Biomedical Engineering,Biomaterials,Medicine (miscellaneous)

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