The design, fabrication and evaluation of 3D printed gHNTs/gMgO whiskers/PLLA composite scaffold with honeycomb microstructure for bone tissue engineering

被引:67
|
作者
Liu, Kun [1 ]
Li, Wenyan [1 ]
Chen, Shitian [1 ]
Wen, Wei [1 ,2 ]
Lu, Lu [1 ,2 ]
Liu, Mingxian [1 ,2 ]
Zhou, Changren [1 ,2 ]
Luo, Binghong [1 ,2 ]
机构
[1] Jinan Univ, Coll Chem & Mat, Dept Mat Sci & Engn, Biomat Res Lab, Guangzhou 510632, Peoples R China
[2] Minist Educ, Engn Res Ctr Artificial Organs & Mat, Guangzhou 510632, Peoples R China
基金
中国国家自然科学基金;
关键词
3D printing; Composite consumable; poly(L-lactide); MgO whisker; Halloysite nanotube; Bone tissue engineering; SURFACE-MODIFIED MGO; POLY(L-LACTIDE) COMPOSITES; CELL-MIGRATION; MAGNESIUM; CRYSTALLIZATION; NANOCOMPOSITES; BEHAVIOR; PLA;
D O I
10.1016/j.compositesb.2020.108001
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
To achieve 3D printing scaffolds for bone tissue repairing, suitable consumables are the prerequisite requirement. However, though various bone repair scaffolds were prepared, there were few clinical applications owing to their poor mechanical performances and limited osteogenic activity. In this study, a novel 3D printing composite consumable consisting of poly (L-lactide) (PLLA) matrix, surface grafted MgO whiskers (gMgOs) and halloysite nanotubes (gHNTs) was developed. This design can fully combine the printability of PLLA, the excellent osteogenic activity of gMgOs and the outstanding reinforcement and toughening effect of gHNTs. Using such consumables, the porous gHNTs/gMgOs/PLLA composite scaffolds with large and small pores and honeycomb structure were further fabricated by 3D printing. The synergetic presence of gMgOs and gHNTs can endow the as-prepared composite scaffolds with obviously enhanced hydrophilicity, tensile and compressive properties, as well as cell affinity and osteogenic activity. Moreover, gMgOs and gHNTs play different roles in improving the performance of the composite scaffold. The gHNTs can effectively improve the mechanical properties of the scaffolds, while the gMgOs were more beneficial to mouse embryo osteoblast precursor (MC3T3-E1) cells adhesion, proliferation, migration and secretion of ALP activity and calcium depositions on the scaffolds.
引用
收藏
页数:12
相关论文
共 50 条
  • [31] Development of 3D printed fibrillar collagen scaffold for tissue engineering
    Diaz Nocera, Aden
    Comin, Romina
    Alicia Salvatierra, Nancy
    Paula Cid, Mariana
    BIOMEDICAL MICRODEVICES, 2018, 20 (02)
  • [32] 3D printing of personalized magnesium composite bone tissue engineering scaffold for bone and angiogenesis regeneration
    Wang, Wenzhao
    Wang, Ling
    Zhang, Boqing
    Shang, Shenghui
    Zhao, Chenxi
    Zhang, Wencan
    Chen, Jing
    Zhou, Changchun
    Zhou, Hengxing
    Feng, Shiqing
    CHEMICAL ENGINEERING JOURNAL, 2024, 484
  • [33] Fabrication and Application of a 3D-Printed Poly-ε-Caprolactone Cage Scaffold for Bone Tissue Engineering
    Wang, Siyi
    Li, Rong
    Xu, Yongxiang
    Xia, Dandan
    Zhu, Yuan
    Yoon, Jungmin
    Gu, Ranli
    Liu, Xuenan
    Zhao, Wenyan
    Zhao, Xubin
    Liu, Yunsong
    Sun, Yuchun
    Zhou, Yongsheng
    BIOMED RESEARCH INTERNATIONAL, 2020, 2020
  • [34] 3D conductive nanocomposite scaffold for bone tissue engineering
    Shahini, Aref
    Yazdimamaghani, Mostafa
    Walker, Kenneth J.
    Eastman, Margaret A.
    Hatami-Marbini, Hamed
    Smith, Brenda J.
    Ricci, John L.
    Madihally, Sundar V.
    Vashaee, Daryoosh
    Tayebi, Lobat
    INTERNATIONAL JOURNAL OF NANOMEDICINE, 2014, 9 : 167 - 181
  • [35] Electrospun nanofibrous 3D scaffold for bone tissue engineering
    Eap, Sandy
    Ferrand, Alice
    Palomares, Carlos Mendoza
    Hebraud, Anne
    Stoltz, Jean-Francois
    Mainard, Didier
    Schlatter, Guy
    Benkirane-Jessel, Nadia
    BIO-MEDICAL MATERIALS AND ENGINEERING, 2012, 22 (1-3) : 137 - 141
  • [36] Preparation of 3D Printed Polylactic Acid/Bacterial Cellulose Composite Scaffold for Tissue Engineering Applications
    Wu, Yadong
    Wang, Yunfeng
    Wang, Fang
    Huang, Yudong
    He, Jinmei
    POLYMERS, 2022, 14 (21)
  • [37] 3D printed Polylactid Acid based porous scaffold for bone tissue engineering: an in vitro study
    Bodnarova, Simona
    Gromosova, Sylvia
    Hudak, Radovan
    Rosocha, Jan
    Zivcak, Jozef
    Plsikova, Jana
    Vojtko, Marek
    Toth, Teodor
    Harvanova, Denisa
    Izarikova, Gabriela
    Danisovic, L'ubos
    ACTA OF BIOENGINEERING AND BIOMECHANICS, 2019, 21 (04) : 101 - 110
  • [38] Liposome-Encapsulated Curcumin-Loaded 3D Printed Scaffold for Bone Tissue Engineering
    Sarkar, Naboneeta
    Bose, Susmita
    ACS APPLIED MATERIALS & INTERFACES, 2019, 11 (19) : 17184 - 17192
  • [39] Modified graphene oxide nanoplates reinforced 3D printed multifunctional scaffold for bone tissue engineering
    Sharma, Akriti
    Gupta, Santosh
    Sampathkumar, T. S.
    Verma, Rama S.
    BIOMATERIALS ADVANCES, 2022, 134
  • [40] Fish scale derived hydroxyapatite incorporated 3D printed PLA scaffold for bone tissue engineering
    Thomas, N. G.
    Dalvi, Y. B.
    Fijol, N.
    Shilpa, J.
    Unni, Rekha
    Binsi, P. K.
    Varghese, M. G.
    Reshmy, R.
    Mathew, A. P.
    Anil, Sukumaran
    NEW JOURNAL OF CHEMISTRY, 2024, 48 (24) : 10841 - 10851