3D-printed bioceramic scaffolds for bone defect repair: bone aging and immune regulation

被引:0
|
作者
Qi, Haoran [1 ]
Zhang, Bo [1 ]
Lian, Feng [1 ,2 ]
机构
[1] Harbin Med Univ, Affiliated Hosp 4, Dept Orthopaed Surg, Harbin, Heilongjiang, Peoples R China
[2] USTC, Affiliated Hosp 1, Ctr Leading Med & Adv Technol IHM, Hefei, Anhui, Peoples R China
来源
FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY | 2025年 / 13卷
关键词
3D printing; bioceramic scaffolds; immune microenvironment; bone aging; osteoporotic bone defects; MACROPHAGE POLARIZATION; REGENERATION;
D O I
10.3389/fbioe.2025.1557203
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
The management of bone defects, particularly in aging populations, remains a major clinical challenge. The immune microenvironment plays an important role in the repair of bone defects and a favorable immune environment can effectively promote the repair of bone defects. However, aging is closely associated with chronic low-grade systemic inflammation, which adversely affects bone healing. Persistent low-grade systemic inflammation critically regulates bone repair through all stages. This review explores the potential of 3D-printed bioceramic scaffolds in bone defect repair, focusing on their capacity to modulate the immune microenvironment and counteract the effects of bone aging. The scaffolds not only provide structural support for bone regeneration but also serve as effective carriers for anti-osteoporosis drugs, offering a novel therapeutic strategy for treating osteoporotic bone defects. By regulating inflammation and improving the immune response, 3D-printed bioceramic scaffolds may significantly enhance bone repair, particularly in the context of age-related bone degeneration. This approach underscores the potential of advanced biomaterials in addressing the dual challenges of bone aging and immune dysregulation, offering promising avenues for the development of effective treatments for bone defects in the elderly. We hope the concepts discussed in this review could offer novel therapeutic strategies for bone defect repair, and suggest promising avenues for the future development and optimization of bioceramic scaffolds.
引用
收藏
页数:14
相关论文
共 50 条
  • [41] Biological response of 3D-printed β-tricalcium phosphate bioceramic scaffolds with the hollow tube structure
    Tian, Yuchen
    Ma, Hongshi
    Yu, Xiaopeng
    Feng, Boshi
    Yang, Zhibo
    Zhang, Wei
    Wu, Chengtie
    BIOMEDICAL MATERIALS, 2023, 18 (03)
  • [42] Fabrication, physicochemical properties, and cytocompatibility of 3D-printed Sr2MgSi2O7 bioceramic scaffolds calcined at different temperature for bone repair
    Gan, Junxian
    Li, Zikai
    Xiong, Jiaying
    Zhang, Chengcheng
    Chen, Zheng
    Zhong, Ting
    Shi, Haishan
    JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2025, 45 (01)
  • [43] 3D-printed biodegradable magnesium alloy scaffolds with zoledronic acid-loaded ceramic composite coating promote osteoporotic bone defect repair
    Ran, Zhaoyang
    Wang, Yan
    Li, Jiaxin
    Xu, Wenyu
    Tan, Jia
    Cao, Bojun
    Luo, Dinghao
    Ding, Yiwen
    Wu, Junxiang
    Wang, Lei
    Xie, Kai
    Deng, Liang
    Fu, Penghuai
    Sun, Xiaoying
    Shi, Liyi
    Hao, Yongqiang
    INTERNATIONAL JOURNAL OF BIOPRINTING, 2023, 9 (05) : 401 - 417
  • [44] Repair of Critical-Sized Long Bone Defects Using Dipyridamole-Augmented 3D-Printed Bioactive Ceramic Scaffolds
    Witek, Lukasz
    Alifarag, Adham M.
    Tovar, Nick
    Lopez, Christopher D.
    Cronstein, Bruce N.
    Rodriguez, Eduardo D.
    Coelho, Paulo G.
    JOURNAL OF ORTHOPAEDIC RESEARCH, 2019, 37 (12) : 2499 - 2507
  • [45] 3D-Printed Ceramic-Demineralized Bone Matrix Hyperelastic Bone Composite Scaffolds for Spinal Fusion
    Driscoll, J. Adam
    Lubbe, Ryan
    Jakus, Adam E.
    Chang, Kevin
    Haleem, Meraaj
    Yun, Chawon
    Singh, Gurmit
    Schneider, Andrew D.
    Katchko, Karina M.
    Soriano, Carmen
    Newton, Michael
    Maerz, Tristan
    Li, Xin
    Baker, Kevin
    Hsu, Wellington K.
    Shah, Ramille N.
    Stock, Stuart R.
    Hsu, Erin L.
    TISSUE ENGINEERING PART A, 2020, 26 (3-4) : 157 - 166
  • [46] Multifunctional 3D-Printed Magnetic Polycaprolactone/Hydroxyapatite Scaffolds for Bone Tissue Engineering
    Petretta, Mauro
    Gambardella, Alessandro
    Desando, Giovanna
    Cavallo, Carola
    Bartolotti, Isabella
    Shelyakova, Tatiana
    Goranov, Vitaly
    Brucale, Marco
    Dediu, Valentin Alek
    Fini, Milena
    Grigolo, Brunella
    POLYMERS, 2021, 13 (21)
  • [47] Multiparametric influence of 3D-printed organo-mineral scaffolds on bone regeneration
    Nicolas, Touya
    Segolene, Reiss
    Thierry, Rouillon
    Maeva, Dutilleul
    Joelle, Veziers
    Arnaud, Pare
    Ludmila, Brasset
    Pierre, Weiss
    Pierre, Corre
    Baptiste, Charbonnier
    SCIENTIFIC REPORTS, 2024, 14 (01):
  • [48] 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
  • [49] Application of 3D-Printed, PLGA-Based Scaffolds in Bone Tissue Engineering
    Sun, Fengbo
    Sun, Xiaodan
    Wang, Hetong
    Li, Chunxu
    Zhao, Yu
    Tian, Jingjing
    Lin, Yuanhua
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2022, 23 (10)
  • [50] Effects of zinc silicate additive on the physicochemical properties and cellular behaviors of 3D-printed magnesium phosphate bioceramic scaffolds
    Fu, Qiuyu
    Xiong, Jiaying
    Zhang, Chengcheng
    Li, Zikai
    Gan, Junxian
    Huang, Wenhao
    Fu, Wenhao
    He, Fupo
    He, Kunyan
    Shi, Haishan
    BIOMEDICAL MATERIALS, 2025, 20 (02)