3D-printed dual-ion chronological release functional platform reconstructs neuro-vascularization network for critical-sized bone defect regeneration

被引:20
|
作者
Xia, Yuhao [1 ]
Jing, Xirui [2 ]
Wu, Xiaopei [1 ]
Zhuang, Pengzhen [1 ]
Guo, Xiaodong [2 ]
Dai, Honglian [1 ,3 ]
机构
[1] Wuhan Univ Technol, Biomed Mat & Engn Res Ctr Hubei Prov, State Key Lab Adv Technol Mat Synth & Proc, Wuhan 430070, Peoples R China
[2] Huazhong Univ Sci & Technol, Union Hosp, Tongji Med Coll, Dept Orthoped, Wuhan 430022, Hubei, Peoples R China
[3] Wuhan Univ Technol, Shenzhen Inst, Shenzhen 440305, Peoples R China
基金
中国国家自然科学基金;
关键词
3D-printed; Dual-ion chronological release platform; Neuro-vascularization network; Critical-sized bone regeneration; CALCIUM-PHOSPHATE; SENSORY NERVES; SCAFFOLDS; BRUSHITE; DELIVERY;
D O I
10.1016/j.cej.2023.143015
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Critical-sized bone defects remain an unsolved challenge because of the failure to induce early reconstruction of the neuro-vascularization network. Nerve and vascular regeneration begin immediately after the occurrence of bone defect and play a key role in the subsequent osteogenic differentiation. In this study, a 3D-printed alpha-tricalcium phosphate scaffolds with dual-ion chronological release functional platform consisted of magnesium containing gelatin microspheres and zinc-doped bioglass was designed to reconstruct neuro-vascularization network for critical-sized bone defect regeneration. Our results demonstrated that magnesium containing gelatin microspheres could regulate the release rate of Mg2+ and achieve early complete release of Mg2+. The controlled release of Mg2+ can effectively enhance the vascularization of human umbilical vein endothelial cells and the ability of nerve regeneration of PC12 cells in vitro and also avoid the potential inhibition of high con-centration of Mg2+ on bone formation in late osteogenesis. Moreover, zinc-doped bioglass ensured the long-term release of Zn2+, thereby promoting the activity and osteogenic differentiation of bone marrow mesenchymal stem cells. In rat calvarial critical-sized defect models, 3D-printed alpha-tricalcium phosphate scaffolds with dual-ion chronological release functional platform could significantly enhance neuro-vascularization network density and exhibited excellent performance in promoting new bone formation. Consequently, the 3D-printed alpha-tricalcium phosphate scaffolds with dual-ion chronological release functional platform has the potential to be used as bone grafts for repairing critical-sized bone defects and provides guidance for the design of repair materials.
引用
收藏
页数:14
相关论文
共 23 条
  • [1] Regeneration of critical-sized mandibular defect using a 3D-printed hydroxyapatite-based scaffold: An exploratory study
    Chang, Po-Chun
    Luo, Hui-Ting
    Lin, Zhi-Jie
    Tai, Wei-Chiu
    Chang, Ching-He
    Chang, Ying-Chieh
    Cochran, David L.
    Chen, Min-Huey
    JOURNAL OF PERIODONTOLOGY, 2021, 92 (03) : 428 - 435
  • [2] Regeneration of Critical-Sized Mandibular Defects Using 3D-Printed Composite Scaffolds: A Quantitative Evaluation of New Bone Formation in In Vivo Studies
    Dalfino, Sophia
    Savadori, Paolo
    Piazzoni, Marco
    Connelly, Stephen Thaddeus
    Gianni, Aldo Bruno
    Del Fabbro, Massimo
    Tartaglia, Gianluca Martino
    Moroni, Lorenzo
    ADVANCED HEALTHCARE MATERIALS, 2023, 12 (21)
  • [3] Molecular Mass-Dependent Resorption and Bone Regeneration of 3D Printed PPF Scaffolds in a Critical-Sized Rat Cranial Defect Model
    Nettleton, Karissa
    Luong, Derek
    Kleinfehn, Alex P.
    Savariau, Laura
    Premanandan, Christopher
    Becker, Matthew L.
    ADVANCED HEALTHCARE MATERIALS, 2019, 8 (17)
  • [4] Dual-functional 3D-printed composite scaffold for inhibiting bacterial infection and promoting bone regeneration in infected bone defect models
    Yang, Ying
    Chu, Linyang
    Yang, Shengbing
    Zhang, Hongbo
    Qin, Ling
    Guillaume, Olivier
    Eglin, David
    Richards, R. Geoff
    Tang, Tingting
    ACTA BIOMATERIALIA, 2018, 79 : 265 - 275
  • [5] 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
  • [6] Evaluating osteogenic potential of a 3D-printed bioceramic-based scaffold for critical-sized defect treatment: an in vivo and in vitro investigation
    Safiaghdam, Hannaneh
    Baniameri, Sahar
    Aminianfar, Hossein
    Mohajeri, Saeed Farzad
    Dehghan, Mohammad Mehdi
    Tayebi, Lobat
    Nokhbatolfoghahaei, Hanieh
    Khojasteh, Arash
    IN VITRO CELLULAR & DEVELOPMENTAL BIOLOGY-ANIMAL, 2024, 60 (06) : 657 - 666
  • [7] The effect of enhanced bone marrow in conjunction with 3D-printed PLA-HA in the repair of critical-sized bone defects in a rabbit model
    Liu, Zhiqing
    Chu, Wenxiang
    Zhang, Linyuan
    Wang, Yueting
    Zhai, Zanjing
    Liu, Fengxiang
    ANNALS OF TRANSLATIONAL MEDICINE, 2021, 9 (14)
  • [8] Outcomes of Surgical Reconstruction Using Custom 3D-Printed Porous Titanium Implants for Critical-Sized Bone Defects of the Foot and Ankle
    Abar, Bijan
    Kwon, Nicholas
    Allen, Nicholas B.
    Lau, Trent
    Johnson, Lindsey G.
    Gall, Ken
    Adams, Samuel B.
    FOOT & ANKLE INTERNATIONAL, 2022, 43 (06) : 750 - 761
  • [9] The 3D-Printed Ordered Bredigite Scaffold Promotes Pro-Healing of Critical-Sized Bone Defects by Regulating Macrophage Polarization
    Xuan, Yaowei
    Li, Lin
    Zhang, Chenping
    Zhang, Min
    Cao, Junkai
    Zhang, Zhen
    INTERNATIONAL JOURNAL OF NANOMEDICINE, 2023, 18 : 917 - 932
  • [10] BONE REGENERATION OF A CRITICAL-SIZED DEFECT IN SHEEP WITH A 3D PRINTED SCAFFOLD COATED WITH A BIOMETIC FILM CONTAINING LOW-DOSE OF BMP-2
    Schoffit, Sarah
    Garot, Charlotte
    Machillot, Paul
    Vial, Julie
    Ghanem, Hasan
    El Hafci, Hanane
    Bettiga, Georges
    Picart, Catherine
    Logeart-Avramoglou, Delphine
    Manassero, Mathieu
    Viateau, Veronique
    TISSUE ENGINEERING PART A, 2023, 29 (11-12) : 666 - 667