Techniques, mechanisms, and application of 3D-printed biodegradable metals for bone regeneration

被引:0
|
作者
Wang, Lingxiao [1 ,2 ]
Liu, Yang [1 ]
Fan, Zhipeng [1 ,3 ,4 ]
机构
[1] Capital Med Univ, Beijing Stomatol Hosp, Sch Stomatol, Lab Mol Signaling & Stem Cells Therapy,Beijing Key, Beijing, Peoples R China
[2] Capital Med Univ, Beijing Stomatol Hosp, Dept Dent Implant Ctr, Sch Stomatol, Beijing, Peoples R China
[3] Capital Med Univ, Beijing Lab Oral Hlth, Beijing, Peoples R China
[4] Chinese Acad Med Sci, Res Unit Tooth Dev & Regenerat, Beijing, Peoples R China
关键词
Three-dimensional printing; Biodegradable metals; Bone regeneration; Bone tissue engineering; FE-BASED ALLOYS; ZN-BASED ALLOYS; IN-VITRO; MAGNESIUM ALLOYS; STAINLESS-STEEL; CORROSION BEHAVIOR; ANTIBACTERIAL PROPERTIES; SURFACE MODIFICATION; MG ALLOYS; VIVO;
D O I
10.36922/ijb.2460
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Repairing severe bone defects and restoring complete bone tissue morphology are major challenges in clinical practice. Biodegradable metals (BMs) are bioactive materials with active degradation properties. The gradual improvement of threedimensional (3D) printing technology holds tremendous potential for development and has spurred on the growing utilization of 3D-printed BM materials in the clinical applications of bone regeneration. In this paper, we review the application of three BM (magnesium, iron, and zinc) materials for use in 3D-printed bone regeneration; define the principle of 3D-printed bone regeneration, including the method and selection of materials; and summarize the characteristics and uses of various printing technologies and the properties, advantages, and disadvantages of BMs. Compared to traditional nondegradable implants, 3D-printed degradable metal implants have the advantages of not leaving residue, avoiding stress shielding, promoting osteogenesis and vascularization, and exhibiting antimicrobial ability. In addition, we summarize the clinical applications of 3D-printed BMs. 3D-printed BMs can be used not only for fracture fixation and bone defect repair but also for osteoporotic fracture repair, cartilage repair, maxillofacial surgery, and other processes. In this article, we discuss the advantages and limitations of the current 3D printing degradable metallic materials and describe future development prospects.
引用
收藏
页码:38 / 60
页数:23
相关论文
共 50 条
  • [21] A Composite Lactide-Mineral 3D-Printed Scaffold for Bone Repair and Regeneration
    Fairag, Rayan
    Li, Li
    Ramirez-GarciaLuna, Jose Luis
    Taylor, M. Scott
    Gaerke, Brian
    Weber, Michael H.
    Rosenzweig, Derek H.
    Haglund, Lisbet
    FRONTIERS IN CELL AND DEVELOPMENTAL BIOLOGY, 2021, 9
  • [22] Nanostructured 3D-Printed Hybrid Scaffold Accelerates Bone Regeneration by Photointegrating Nanohydroxyapatite
    Tong, Lei
    Pu, Xiaocong
    Liu, Quanying
    Li, Xing
    Chen, Manyu
    Wang, Peilei
    Zou, Yaping
    Lu, Gonggong
    Liang, Jie
    Fan, Yujiang
    Zhang, Xingdong
    Sun, Yong
    ADVANCED SCIENCE, 2023, 10 (13)
  • [23] Characterization of 3D-printed graphene-reinforced PLA scaffold for bone regeneration
    Karthic, Manoharan
    Chockalingam, Kunjan
    Vignesh, Chandran
    Nagarajan, K. Jawaharlal
    EMERGING MATERIALS RESEARCH, 2023, 12 (04) : 1 - 13
  • [24] Effects of 3D-Printed Polycaprolactone/β-Tricalcium Phosphate Membranes on Guided Bone Regeneration
    Shim, Jin-Hyung
    Won, Joo-Yun
    Park, Jung-Hyung
    Bae, Ji-Hyeon
    Ahn, Geunseon
    Kim, Chang-Hwan
    Lim, Dong-Hyuk
    Cho, Dong-Woo
    Yun, Won-Soo
    Bae, Eun-Bin
    Jeong, Chang-Mo
    Huh, Jung-Bo
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2017, 18 (05)
  • [25] 3D-printed gallium-infused scaffolds for osteolysis intervention and bone regeneration
    Xi, Hanrui
    Jiang, Xihao
    Xiong, Shilang
    Zhang, Yinuo
    Zhou, Jingyu
    Liu, Min
    Zhou, Zhigang
    Zhang, Chengyu
    Liu, Shiwei
    Long, Zhisheng
    Zhou, Jianguo
    Qian, Guowen
    Xiong, Long
    MATERIALS TODAY BIO, 2025, 31
  • [26] 3D-printed oxygen-releasing scaffolds improve bone regeneration in mice
    Farris, Ashley L.
    Lambrechts, Dennis
    Zhou, Yuxiao
    Zhang, Nicholas Y.
    Sarkar, Naboneeta
    Moorer, Megan C.
    Rindone, Alexandra N.
    Nyberg, Ethan L.
    Perdomo-Pantoja, Alexander
    Burris, S. J.
    Free, Kendall
    Witham, Timothy F.
    Riddle, Ryan C.
    Grayson, Warren L.
    BIOMATERIALS, 2022, 280
  • [27] 3D-printed porous functional composite scaffolds with polydopamine decoration for bone regeneration
    Qi, Jin
    Wang, Yili
    Chen, Liping
    Chen, Linjie
    Wen, Feng
    Huang, Lijiang
    Rueben, Pfukwa
    Zhang, Chunwu
    Li, Huaqiong
    REGENERATIVE BIOMATERIALS, 2023, 10
  • [28] Biodegradation of 3D-Printed Biodegradable/Non-biodegradable Plastic Blends
    Choe, Shinhyeong
    Kim, Yujin
    Park, Geunyong
    Lee, Do Hyun
    Park, Jehee
    Mossisa, Ayantu Teshome
    Lee, Sumin
    Myung, Jaewook
    ACS APPLIED POLYMER MATERIALS, 2022, 4 (07): : 5077 - 5090
  • [29] Accelerated Aging Effect on the Stability of the 3D-Printed Biodegradable Implant for Bone Defect Repairs
    Gutowska, Agnieszka
    Kubiak, Pawel
    Kosla, Katarzyna
    Wilbik-Halgas, Bozena
    Chmal-Fudali, Edyta
    Kucharska-Jastrzabek, Agnieszka
    Struszczyk, Marcin Henryk
    MATERIALS, 2024, 17 (24)
  • [30] 3D-printed graphene for bone reconstruction
    Palmieri, Valentina
    Lattanzi, Wanda
    Perini, Giordano
    Augello, Alberto
    Papi, Massimiliano
    De Spirito, Marco
    2D MATERIALS, 2020, 7 (02)