Characterization and Preliminary Biological Evaluation of 3D-Printed Porous Scaffolds for Engineering Bone Tissues

被引:39
作者
Liu, Chen-Guang [1 ]
Zeng, Yu-Ting [1 ]
Kankala, Ranjith Kumar [1 ,2 ]
Zhang, Shan-Shan [1 ]
Chen, Ai-Zheng [1 ,2 ]
Wang, Shi-Bin [1 ,2 ]
机构
[1] Huaqiao Univ, Inst Biomat & Tissue Engn, Xiamen 361021, Peoples R China
[2] Huaqiao Univ, Fujian Prov Key Lab Biochem Technol, Xiamen 361021, Peoples R China
基金
国家重点研发计划; 中国国家自然科学基金;
关键词
3D-printing; poly(lactide-co-glycolide); biodegradation; osteoblast growth; tissue engineering; MECHANICAL-PROPERTIES; IN-VITRO; COMPOSITE SCAFFOLD; YOUNGS MODULUS; DEGRADATION; FABRICATION; DEPOSITION; PLGA; CYTOCOMPATIBILITY; MORPHOLOGY;
D O I
10.3390/ma11101832
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Some basic requirements of bone tissue engineering include cells derived from bone tissues, three-dimensional (3D) scaffold materials, and osteogenic factors. In this framework, the critical architecture of the scaffolds plays a crucial role to support and assist the adhesion of the cells, and the subsequent tissue repairs. However, numerous traditional methods suffer from certain drawbacks, such as multi-step preparation, poor reproducibility, high complexity, difficulty in controlling the porous architectures, the shape of the scaffolds, and the existence of solvent residue, which limits their applicability. In this work, we fabricated innovative poly(lactic-co-glycolic acid) (PLGA) porous scaffolds, using 3D-printing technology, to overcome the shortcomings of traditional approaches. In addition, the printing parameters were critically optimized for obtaining scaffolds with normal morphology, appropriate porous architectures, and sufficient mechanical properties, for the accommodation of the bone cells. Various evaluation studies, including the exploration of mechanical properties (compressive strength and yield stress) for different thicknesses, and change of structure (printing angle) and porosity, were performed. Particularly, the degradation rate of the 3D scaffolds, printed in the optimized conditions, in the presence of hydrolytic, as well as enzymatic conditions were investigated. Their assessments were evaluated using the thermal gravimetric analyzer (TGA), differential scanning calorimetry (DSC), and gel permeation chromatography (GPC). These porous scaffolds, with their biocompatibility, biodegradation ability, and mechanical properties, have enabled the embryonic osteoblast precursor cells (MC3T3-E1), to adhere and proliferate in the porous architectures, with increasing time. The generation of highly porous 3D scaffolds, based on 3D printing technology, and their critical evaluation, through various investigations, may undoubtedly provide a reference for further investigations and guide critical optimization of scaffold fabrication, for tissue regeneration.
引用
收藏
页数:20
相关论文
共 50 条
  • [31] Computational and experimental characterization of 3D-printed PCL structures toward the design of soft biological tissue scaffolds
    Liu, Hailong
    Ahlinder, Astrid
    Yassin, Mohammed A.
    Finne-Wistrand, Anna
    Gasser, T. Christian
    [J]. MATERIALS & DESIGN, 2020, 188
  • [32] Design, fabrication, and characterization of 3D-printed ABS and PLA scaffolds potentially for tissue engineering
    Rahatuzzaman, Md
    Mahmud, Minar
    Rahman, Sazedur
    Hoque, Md Enamul
    [J]. RESULTS IN ENGINEERING, 2024, 21 (21)
  • [33] Mechanical and biological properties of 3D-printed porous titanium scaffolds coated with composite growth factors
    Chunwen Jiang
    Guojia Gong
    Shan Xiao
    Shengxiang Zhang
    Diansheng Chen
    Shuqing Song
    Honglin Dai
    Chongxue Wu
    Qiaoru Zou
    Jianping Li
    Bing Wen
    [J]. BMC Oral Health, 25 (1)
  • [34] Challenges on optimization of 3D-printed bone scaffolds
    Bahraminasab, Marjan
    [J]. BIOMEDICAL ENGINEERING ONLINE, 2020, 19 (01)
  • [35] 3D-printed fish gelatin scaffolds for cartilage tissue engineering
    Maihemuti, Abudureheman
    Zhang, Han
    Lin, Xiang
    Wang, Yangyufan
    Xu, Zhihong
    Zhang, Dagan
    Jiang, Qing
    [J]. BIOACTIVE MATERIALS, 2023, 26 : 77 - 87
  • [36] Characterization of printed PLA scaffolds for bone tissue engineering
    Gremare, Agathe
    Guduric, Vera
    Bareille, Reine
    Heroguez, Valerie
    Latour, Simon
    L'heureux, Nicolas
    Fricain, Jean-Christophe
    Catros, Sylvain
    Le Nihouannen, Damien
    [J]. JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2018, 106 (04) : 887 - 894
  • [37] Bacterial Cellulose: A Sustainable Source for Hydrogels and 3D-Printed Scaffolds for Tissue Engineering
    Utoiu, Elena
    Manoiu, Vasile Sorin
    Oprita, Elena Iulia
    Craciunescu, Oana
    [J]. GELS, 2024, 10 (06)
  • [38] 3D-printed polycaprolactone/tricalcium silicate scaffolds modified with decellularized bone ECM-oxidized alginate for bone tissue engineering
    Menarbazari, Arezoo Ashrafnia
    Mansoori-Kermani, Amirreza
    Mashayekhan, Shohreh
    Soleimani, Afsane
    [J]. INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2024, 265
  • [39] 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
    [J]. POLYMERS, 2021, 13 (21)
  • [40] 3D-printed alginate-hydroxyapatite aerogel scaffolds for bone tissue engineering
    Iglesias-Mejuto, Ana
    Garcia-Gonzalez, Carlos A.
    [J]. MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2021, 131