Three-Dimensional Printing Biologically Inspired DNA-Based Gradient Scaffolds for Cartilage Tissue Regeneration

被引:61
|
作者
Zhou, Xuan [4 ]
Tenaglio, Sara [5 ]
Esworthy, Timothy [4 ]
Hann, Sung Yun [4 ]
Cui, Haitao [4 ]
Webster, Thomas J. [1 ]
Fenniri, Hicham [1 ]
Zhang, Lijie Grace [2 ,3 ]
机构
[1] Northeastern Univ, Dept Chem Engn, Boston, MA 02115 USA
[2] George Washington Univ, Dept Mech & Aerosp Engn, Dept Biomed Engn, Dept Elect & Comp Engn, Washington, DC 20052 USA
[3] George Washington Univ, Dept Med, Washington, DC 20052 USA
[4] George Washington Univ, Dept Mech & Aerosp Engn, Washington, DC 20052 USA
[5] George Washington Univ, Dept Biomed Engn, Washington, DC 20052 USA
关键词
3D printing; nanotube; gradient; chondrogenic; cartilage; ATTRIBUTABLE ACTIVITY LIMITATION; DOCTOR-DIAGNOSED ARTHRITIS; HELICAL ROSETTE NANOTUBES; ARTICULAR-CARTILAGE; STEM-CELLS; PREVALENCE; TITANIUM; MATRIX; ACID;
D O I
10.1021/acsami.0c07918
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Cartilage damage caused by aging, repeated overloading, trauma, and diseases can result in chronic pain, inflammation, stiffness, and even disability. Unlike other types of tissues (bone, skin, muscle, etc.), cartilage tissue has an extremely weak regenerative capacity. Currently, the gold standard surgical treatment for repairing cartilage damage includes autografts and allografts. However, these procedures are limited by insufficient donor sources and the potential for immunological rejection. After years of development, engineered tissue now provides a valuable artificial replacement for tissue regeneration purposes. Three-dimensional (3D) bioprinting technologies can print customizable hierarchical structures with cells. The objective of the current work was to prepare a 3D-printed three-layer gradient scaffold with lysine-functionalized rosette nanotubes (RNTK) for improving the chondrogenic differentiation of adipose-derived mesenchymal stem cells (ADSCs). Specifically, biologically inspired RNTKs were utilized in our work because they have unique surface chemistry and biomimetic nanostructure to improve cell adhesion and growth. Different ratios of gelatin methacrylate (GelMA) and poly(ethylene glycol) diacrylate (PEGDA) were printed into a three-layer GelMA-PEGDA gradient scaffold using a stereolithography-based printer, followed by coating with RNTKs. The pores and channels (similar to 500 mu m) were observed in the scaffold. It was found that the population of ADSCs on the GelMA-PEGDA-RNTK scaffold increased by 34% compared to the GelMA-PEGDA scaffold (control). Moreover, after 3 weeks of chondrogenic differentiation, collagen II, glycosaminoglycan, and total collagen synthesis on the GelMA-PEGDA-RNTK scaffold significantly respectively increased by 59%, 71%, and 60%, as compared to the control scaffold. Gene expression of collagen II al, SOX 9, and aggrecan in the ADSCs growing on the GelMA-PEGDA-RNTK scaffold increased by 79%, 52%, and 47% after 3 weeks, compared to the controls, respectively. These results indicated that RNTKs are a promising type of nanotubes for promoting chondrogenic differentiation, and the present 3D-printed three-layer gradient GelMA-PEGDA-RNTK scaffold shows considerable promise for future cartilage repair and regeneration.
引用
收藏
页码:33219 / 33228
页数:10
相关论文
共 50 条
  • [31] Biologically inspired humidity sensor based on three-dimensional photonic crystals
    Kim, Jae Hyun
    Moon, Jun Hyuk
    Lee, Seung-Yop
    Park, Jungyul
    APPLIED PHYSICS LETTERS, 2010, 97 (10)
  • [32] Three-Dimensional Printing of Drug-Eluting Implantable PLGA Scaffolds for Bone Regeneration
    Annaji, Manjusha
    Mita, Nur
    Poudel, Ishwor
    Boddu, Sai H. S.
    Fasina, Oladiran
    Babu, R. Jayachandra
    BIOENGINEERING-BASEL, 2024, 11 (03):
  • [33] Three-Dimensional Printing of Hollow-Struts-Packed Bioceramic Scaffolds for Bone Regeneration
    Luo, Yongxiang
    Zhai, Dong
    Huan, Zhiguang
    Zhu, Haibo
    Xia, Lunguo
    Chang, Jiang
    Wu, Chengtie
    ACS APPLIED MATERIALS & INTERFACES, 2015, 7 (43) : 24377 - 24383
  • [34] Human Cartilage Tissue Fabrication Using Three-dimensional Inkjet Printing Technology
    Cui, Xiaofeng
    Gao, Guifang
    Yonezawa, Tomo
    Dai, Guohao
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2014, (88):
  • [35] Design and Development of Scaffolds for Tissue Engineering Using Three-Dimensional Printing for Bio-Based Applications
    Habib, Fatah N.
    Nikzad, Mostafa
    Masood, Syed Hasan
    Saifullah, Abul Bashar M.
    3D PRINTING AND ADDITIVE MANUFACTURING, 2016, 3 (02) : 119 - 127
  • [36] Construction of bionic tissue engineering cartilage scaffold based on three-dimensional printing and oriented frozen technology
    Xu, Yuanyuan
    Guo, Xiao
    Yang, Shuaitao
    Li, Long
    Zhang, Peng
    Sun, Wei
    Liu, Changyong
    Mi, Shengli
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2018, 106 (06) : 1664 - 1676
  • [37] Three-Dimensional Printing of Shape Memory Smart Materials for Orthopedic Tissue Regeneration
    Castro, N. J.
    Hearon, K.
    Zhang, L. G.
    TISSUE ENGINEERING PART A, 2014, 20 : S87 - S88
  • [38] Feasibility of Polycaprolactone Scaffolds Fabricated by Three-Dimensional Printing for Tissue Engineering of Tunica Albuginea
    Yu, Ho Song
    Park, Jinju
    Lee, Hyun-Suk
    Park, Su A.
    Lee, Dong-Weon
    Park, Kwangsung
    WORLD JOURNAL OF MENS HEALTH, 2018, 36 (01): : 66 - 72
  • [39] Anisotropy of graphene scaffolds assembled by three-dimensional printing
    Huang, Kai
    Yang, Jinshan
    Dong, Shaoming
    Feng, Qian
    Zhang, Xiangyu
    Ding, Yusheng
    Hu, Jianbao
    CARBON, 2018, 130 : 1 - 10
  • [40] Three-dimensional printing alginate/gelatin scaffolds as dermal substitutes for skin tissue engineering
    Shi, Lei
    Xiong, Liming
    Hu, Yiqiang
    Li, Wenchao
    Chen, ZhiChao
    Liu, Kang
    Zhang, Xianglin
    POLYMER ENGINEERING AND SCIENCE, 2018, 58 (10): : 1782 - 1790