Structure-optimized and microenvironment-inspired nanocomposite biomaterials in bone tissue engineering

Author:

Lv Zheng12,Ji Ying34,Wen Guoliang12,Liang Xiayi56,Zhang Kun78ORCID,Zhang Wei910

Affiliation:

1. Department of Radiology , Affiliated Hospital, , No. 15 Lequn Road, Guilin 541001, Guangxi , China

2. Guilin Medical University , Affiliated Hospital, , No. 15 Lequn Road, Guilin 541001, Guangxi , China

3. Department of Orthopaedics , Affiliated Hospital, , Guilin 541001, Guangxi , China

4. Guilin Medical University, No. 15 Lequn Road , Affiliated Hospital, , Guilin 541001, Guangxi , China

5. Department of Medical Ultrasound , Sichuan Academy of Medical Sciences and Sichuan Provincial People’s Hospital, , No. 32, West Second Section, First Ring Road, Chengdu 610072, Sichuan , China

6. School of Medicine, University of Electronic Science and Technology of China , Sichuan Academy of Medical Sciences and Sichuan Provincial People’s Hospital, , No. 32, West Second Section, First Ring Road, Chengdu 610072, Sichuan , China

7. Department of Medical Ultrasound , Sichuan Academy of Medical Sciences and Sichuan Provincial People’s Hospital, No. 32, West Second Section, First Ring Road, Chengdu 610072, Sichuan, China

8. School of Medicine, University of Electronic Science and Technology of China, , Sichuan Academy of Medical Sciences and Sichuan Provincial People’s Hospital, No. 32, West Second Section, First Ring Road, Chengdu 610072, Sichuan, China

9. Department of Radiology , Liuzhou People’s Hospital, , Liuzhou 545006, Guangxi , China

10. Guangxi Medical University, No. 8 Wenchang Road , Liuzhou People’s Hospital, , Liuzhou 545006, Guangxi , China

Abstract

Abstract Critical-sized bone defects represent a significant clinical challenge due to their inability to undergo spontaneous regeneration, necessitating graft interventions for effective treatment. The development of tissue-engineered scaffolds and regenerative medicine has made bone tissue engineering a highly viable treatment for bone defects. The physical and biological properties of nanocomposite biomaterials, which have optimized structures and the ability to simulate the regenerative microenvironment of bone, are promising for application in the field of tissue engineering. These biomaterials offer distinct advantages over traditional materials by facilitating cellular adhesion and proliferation, maintaining excellent osteoconductivity and biocompatibility, enabling precise control of degradation rates, and enhancing mechanical properties. Importantly, they can simulate the natural structure of bone tissue, including the specific microenvironment, which is crucial for promoting the repair and regeneration of bone defects. This manuscript provides a comprehensive review of the recent research developments and applications of structure-optimized and microenvironment-inspired nanocomposite biomaterials in bone tissue engineering. This review focuses on the properties and advantages these materials offer for bone repair and tissue regeneration, summarizing the latest progress in the application of nanocomposite biomaterials for bone tissue engineering and highlighting the challenges and future perspectives in the field. Through this analysis, the paper aims to underscore the promising potential of nanocomposite biomaterials in bone tissue engineering, contributing to the informed design and strategic planning of next-generation biomaterials for regenerative medicine.

Funder

National Natural Science Foundation of China

Key Research and Development Program of Guangxi

Sichuan Provincial Science Foundation for Distinguished Young Scholars

Publisher

Oxford University Press (OUP)

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