Biological evaluation of polydopamine and chitosan composite coatings on the 3D printed porous biphasic calcium phosphate scaffold

被引:4
|
作者
Fan, Shiyuan [1 ]
Wan, Yi [1 ]
Zhao, Zihe [1 ]
Wang, Hongwei [2 ]
Ji, Zhenbing [1 ]
机构
[1] Shandong Univ, Sch Mech Engn, Key Lab High Efficiency & Clean Mfg, Jinan 250061, Peoples R China
[2] Shandong Univ, Dept Emergency Med, Qilu Hosp, Jinan 250012, Shandong, Peoples R China
基金
中国国家自然科学基金;
关键词
BCP bone scaffold; 3D printing; Polydopamine; Chitosan; Surface modification; Coating sequence; OSTEOGENIC DIFFERENTIATION; EFFECTIVE IMMOBILIZATION; STEM-CELLS; BONE; SURFACE; NANOFIBERS;
D O I
10.1016/j.ceramint.2022.06.098
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
A current, gradually growing trend is to use bioactive ceramics to develop new bone scaffolds to replace traditional bone implants. Biphasic calcium phosphate (BCP), a mixed material of hydroxyapatite and tricalcium phosphate, has limited osseointegration ability. Therefore, improving the bioactivity and osteoinductive ability of BCP scaffolds through various surface modification methods is an important issue. Polydopamine (PDA) coating, chitosan (CS) coating, and their composite coatings have been previously reported to individually possess a good ability to improve scaffold bioactivity, but few comparisons between them and the optimal coating sequence of PDA and CS have been reported. Herein, we fabricated a BCP scaffold by using a self-made 3D printer, sintered the scaffold, and then prepared PDA, CS, PDA/CS and CS/PDA coatings by solution immersion. Afterwards, the surface morphology, element composition and proportion, compressive strength and surface contact angle of the five groups of scaffolds were characterized. Finally, the adhesion, proliferation and osteogenesis-related gene expression levels of MC3T3-E1 on the five groups in vitro were evaluated in detail. The results showed that the five types of scaffolds were fabricated successfully and that the PDA/CS and CS/PDA coatings had different surface morphologies. The compressive strengths of the composite-coating groups were higher than those of the single-coating groups and the BCP group. The CCK-8 experiment revealed that the composite coatings can promote the initial adhesion and proliferation of cells. The detection results of three osteogenesis-related genes (OCN, COL-1 and Runx-2) proved that the composite coatings had a synergistic effect in promoting osteodifferentiation and that the CS/PDA coating had the greatest effect in improving cell viability and promoting osteogenic differentiation.
引用
收藏
页码:27942 / 27956
页数:15
相关论文
共 50 条
  • [31] 3d Printed Customized Scaffold Using a Composite of Polymer and Peptide Hydrogels
    Im, H.
    Kim, S.
    Jung, Y.
    TISSUE ENGINEERING PART A, 2016, 22 : S128 - S128
  • [32] Calcium phosphate coated 3D printed porous titanium with nanoscale surface modification for orthopedic and dental applications
    Bose, Susmita
    Banerjee, Dishary
    Shivaram, Anish
    Tarafder, Solaiman
    Bandyopadhyay, Amit
    MATERIALS & DESIGN, 2018, 151 : 102 - 112
  • [33] Evaluation of the effect of 3D porous Chitosan-alginate scaffold stiffness on breast cancer proliferation and migration
    Le, Minh-Chau N.
    Xu, Kailei
    Wang, Zi
    Beverung, Sean
    Steward, Robert L.
    Florczyk, Stephanie J.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2021, 109 (10) : 1990 - 2000
  • [34] Customized Design 3D Printed PLGA/Calcium Sulfate Scaffold Enhances Mechanical and Biological Properties for Bone Regeneration
    Liu, Tao
    Li, Zhan
    Zhao, Li
    Chen, Zehua
    Lin, Zefeng
    Li, Binglin
    Feng, Zhibin
    Jin, Panshi
    Zhang, Jinwei
    Wu, Zugui
    Wu, Huai
    Xu, Xuemeng
    Ye, Xiangling
    Zhang, Ying
    FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2022, 10
  • [35] Chitosan microporous foam filled 3D printed polylactic acid-pearl macroporous scaffold: Dual-scale porous structure, biological and mechanical properties
    Guo, Wang
    Peng, Ziying
    Ning, Dan
    Wu, Yunlei
    Mao, Yufeng
    Wang, Enyu
    Zhang, Mingzhi
    Zhang, Yong
    Zhang, Wenjie
    You, Hui
    Long, Yu
    Guo, Feng
    Mai, Huaming
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2025, 303
  • [36] Toughening robocast chitosan/biphasic calcium phosphate composite scaffolds with silk fibroin: Tuning printable inks and scaffold structure for bone regeneration
    Torres, P. M. C.
    Ribeiro, N.
    Nunes, C. M. M.
    Rodrigues, A. F. M.
    Sousa, A.
    Olhero, S. M.
    BIOMATERIALS ADVANCES, 2022, 134
  • [37] Fabrication and Evaluation of 3D Printed Poly(L-lactide) Scaffold Functionalized with Quercetin-Polydopamine for Bone Tissue Engineering
    Chen, Shitian
    Zhu, Ling
    Wen, Wei
    Lu, Lu
    Zhou, Changren
    Luo, Binghong
    ACS BIOMATERIALS SCIENCE & ENGINEERING, 2019, 5 (05): : 2506 - 2518
  • [38] 3D printed porous sulfonated polyetheretherketone scaffold for cartilage repair: Potential and limitation
    Yuan, Zhiguo
    Long, Teng
    Zhang, Jue
    Lyu, Zhuocheng
    Zhang, Wei
    Meng, Xiangchao
    Qi, Jin
    Wang, You
    JOURNAL OF ORTHOPAEDIC TRANSLATION, 2022, 33 : 90 - 106
  • [39] A NOVEL SILK REINFORCED BIPHASIC 3D PRINTED PEGT/PBT SCAFFOLD FOR OSTEOCHONDRAL TISSUE ENGINEERING
    Braxton, Thomas
    Lim, Khoon
    Alcala-Orozco, Cesar
    Joukhdar, Habib
    Rnjak-Kovacina, Jelena
    Woodfield, Tim
    Jiang, Lin-Hua
    Jia, Xiaodong
    Yang, Xuebin
    TISSUE ENGINEERING PART A, 2022, 28 : S227 - S227
  • [40] Octacalcium phosphate coating for 3D printed cranioplastic porous titanium implants
    Smirnov, Igor, V
    Deev, Roman, V
    Bozo, Ilya I.
    Fedotov, Alexander Yu
    Gurin, Alex N.
    Mamonov, Vasily E.
    Kravchuk, Alexander D.
    Popov, Vladimir K.
    Egorov, Alex A.
    Komlev, Vladimir S.
    SURFACE & COATINGS TECHNOLOGY, 2020, 383