Biodegradable materials for bone defect repair

被引:12
作者
Shuai Wei [1 ]
Jian-Xiong Ma [1 ]
Lai Xu [2 ]
Xiao-Song Gu [2 ]
Xin-Long Ma [1 ]
机构
[1] Tianjin Hospital, Tianjin University
[2] Jiangsu Clinical Medicine Center of Tissue Engineering and Nerve Injury Repair, Key Laboratory of Neuroregeneration of Jiangsu and Ministry of Education, Nantong University
基金
中国国家自然科学基金;
关键词
Biodegradable materials; Bone defects; Bone repair; Intelligent material; Modular fabrication;
D O I
暂无
中图分类号
R318.08 [生物材料学];
学科分类号
0805 ; 080501 ; 080502 ;
摘要
Compared with non-degradable materials, biodegradable biomaterials play an increasingly important role in the repairing of severe bone defects, and have attracted extensive attention from researchers. In the treatment of bone defects, scaffolds made of biodegradable materials can provide a crawling bridge for new bone tissue in the gap and a platform for cells and growth factors to play a physiological role, which will eventually be degraded and absorbed in the body and be replaced by the new bone tissue. Traditional biodegradable materials include polymers, ceramics and metals, which have been used in bone defect repairing for many years. Although these materials have more or fewer shortcomings, they are still the cornerstone of our development of a new generation of degradable materials. With the rapid development of modern science and technology, in the 21 st century, more and more kinds of new biodegradable materials emerge in endlessly, such as new intelligent micro-nano materials and cell-based products. At the same time, there are many new fabrication technologies of improving biodegradable materials, such as modular fabrication, 3 D and 4 D printing, interface reinforcement and nanotechnology. This review will introduce various kinds of biodegradable materials commonly used in bone defect repairing, especially the newly emerging materials and their fabrication technology in recent years, and look forward to the future research direction, hoping to provide researchers in the field with some inspiration and reference.
引用
收藏
页码:202 / 229
页数:28
相关论文
共 223 条
  • [1] Recent advances in nano scaffolds for bone repair[J]. Huan Yi,Fawad Ur Rehman,Chunqiu Zhao,Bin Liu,Nongyue He.Bone Research. 2016(04)
  • [2] Engineered polycaprolactone–magnesium hybrid biodegradable porous scaffold for bone tissue engineering
    Hoi Man Wong
    Paul K.Chu
    Frankie K.L.Leung
    Kenneth M.C.Cheung
    Keith D.K.Luk
    Kelvin W.K.Yeung
    [J]. ProgressinNaturalScience:MaterialsInternational, 2014, 24 (05) : 561 - 567
  • [3] Biodegradable Materials for Bone Repairs:A Review
    Lili Tan
    Xiaoming Yu
    Peng Wan
    Ke Yang
    [J]. Journal of Materials Science & Technology, 2013, 29 (06) : 503 - 513
  • [4] Silicon-incorporated nanohydroxyapatite-reinforced poly(ε-caprolactone) film to enhance osteogenesis for bone tissue engineering applications[J] . Ting Lei,Wanqi Zhang,Hu Qian,Poon Nian Lim,Eng San Thian,Pengfei Lei,Yihe Hu,Zuyong Wang.Colloids and Surfaces B: Biointerfaces . 2020 (prep)
  • [5] Zinc and manganese substituted hydroxyapatite/CMC/PVP electrospun composite for bone repair applications[J] . Sasikumar Kandasamy,Valarmathi Narayanan,Shanmugam Sumathi.International Journal of Biological Macromolecules . 2020 (C)
  • [6] Developmentally Engineered Callus Organoid Bioassemblies Exhibit Predictive In Vivo Long Bone Healing
    Hall, Gabriella Nilsson
    Mendes, Luis Freitas
    Gklava, Charikleia
    Geris, Liesbet
    Luyten, Frank P.
    Papantoniou, Ioannis
    [J]. ADVANCED SCIENCE, 2020, 7 (02)
  • [7] Two cases of granuloma mimicking local recurrence after pulmonary segmentectomy
    Okazaki, Mikio
    Sano, Yoshifumi
    Mori, Yu
    Sakao, Nobuhiko
    Yukumi, Syungo
    Shigematsu, Hisayuki
    Izutani, Hironori
    [J]. JOURNAL OF CARDIOTHORACIC SURGERY, 2020, 15 (01)
  • [8] Laser-Assisted Bioprinting for Bone Repair[J] . Hakobyan Davit,Kerouredan Olivia,Remy Murielle,Dusserre Nathalie,Medina Chantal,Devillard Raphael,Fricain Jean-Christophe,Oliveira Hugo.Methods in molecular biology (Clifton, N.J.) . 2020
  • [9] Bioactive glass coatings on metallic implants for biomedical applications[J] . Joy-anne N. Oliver,Yingchao Su,Xiaonan Lu,Po-Hsuen Kuo,Jincheng Du,Donghui Zhu.Bioactive Materials . 2019
  • [10] PMMA-Based Bone Cements and the Problem of Joint Arthroplasty Infections: Status and New Perspectives[J] . Alessandro Bistolfi,Riccardo Ferracini,Carlo Albanese,Enrica Vernè,Marta Miola.Materials . 2019 (23)