Cartilage Tissue Engineering: Preventing Tissue Scaffold Contraction Using a 3D-Printed Polymeric Cage

被引:0
|
作者
Visscher, Dafydd O. [1 ,2 ]
Bos, Ernst J. [1 ,2 ]
Peeters, Mirte [2 ,3 ]
Kuzmin, Nikolay V. [4 ]
Groot, Marie Louise [4 ]
Helder, Marco N. [2 ,3 ]
van Zuijlen, Paul P. M. [1 ,2 ,5 ]
机构
[1] Vrije Univ Amsterdam Med Ctr, Dept Plast Reconstruct & Hand Surg, NL-1081 HV Amsterdam, Netherlands
[2] CTRM MOVE Res Inst, Amsterdam, Netherlands
[3] Vrije Univ Amsterdam Med Ctr, Dept Orthoped Surg, De Boelelaan 1117, NL-1081 HV Amsterdam, Netherlands
[4] Vrije Univ Amsterdam, Dept Phys, LaserLaB Amsterdam, Amsterdam, Netherlands
[5] Red Cross Hosp Beverwijk, Beverwijk, Netherlands
关键词
MESENCHYMAL STEM-CELLS; IN-VITRO; MEDIATED CONTRACTION; CROSS-LINKING; CHONDROGENIC DIFFERENTIATION; HYALURONIC-ACID; ADIPOSE-TISSUE; COLLAGEN; EAR; HYDROGELS;
D O I
10.1089/ten.tec.2016.0073
中图分类号
Q813 [细胞工程];
学科分类号
摘要
Scaffold contraction is a common but underestimated problem in the field of tissue engineering. It becomes particularly problematic when creating anatomically complex shapes such as the ear. The aim of this study was to develop a contraction-free biocompatible scaffold construct for ear cartilage tissue engineering. To address this aim, we used three constructs: (i) a fibrin/hyaluronic acid (FB/HA) hydrogel, (ii) a FB/HA hydrogel combined with a collagen I/III scaffold, and (iii) a cage construct containing (ii) surrounded by a 3D-printed poly-e-caprolactone mold. A wide range of different cell types were tested within these constructs, including chondrocytes, perichondrocytes, adipose-derived mesenchymal stem cells, and their combinations. After in vitro culturing for 1, 14, and 28 days, all constructs were analyzed. Macroscopic observation showed severe contraction of the cell-seeded hydrogel (i). This could be prevented, in part, by combining the hydrogel with the collagen scaffold (ii) and prevented in total using the 3D-printed cage construct (iii). (Immuno) histological analysis, multiphoton laser scanning microscopy, and biomechanical analysis showed extracellular matrix deposition and increased Young's modulus and thereby the feasibility of ear cartilage engineering. These results demonstrated that the 3D-printed cage construct is an adequate model for contraction-free ear cartilage engineering using a range of cell combinations.
引用
收藏
页码:573 / 584
页数:12
相关论文
共 50 条
  • [1] 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
  • [2] 3D-printed fish gelatin scaffolds for cartilage tissue engineering
    Maihemuti, Abudureheman
    Zhang, Han
    Lin, Xiang
    Wang, Yangyufan
    Xu, Zhihong
    Zhang, Dagan
    Jiang, Qing
    BIOACTIVE MATERIALS, 2023, 26 : 77 - 87
  • [3] Elastic 3D-Printed Nanofibers Composite Scaffold for Bone Tissue Engineering
    Cai P.
    Li C.
    Ding Y.
    Lu H.
    Yu X.
    Cui J.
    Yu F.
    Wang H.
    Wu J.
    EL-Newehy M.
    Abdulhameed M.M.
    Song L.
    Mo X.
    Sun B.
    ACS Applied Materials and Interfaces, 2023, 15 (47): : 54280 - 54293
  • [4] Elastic 3D-Printed Nanofibers Composite Scaffold for Bone Tissue Engineering
    Cai, Pengfei
    Li, Chunchun
    Ding, Yangfan
    Lu, Hanting
    Yu, Xiao
    Cui, Jie
    Yu, Fan
    Wang, Hongsheng
    Wu, Jinglei
    EL-Newehy, Mohamed
    Abdulhameed, Meera Moydeen
    Song, Liang
    Mo, Xiumei
    Sun, Binbin
    ACS APPLIED MATERIALS & INTERFACES, 2023, 15 (47) : 54280 - 54293
  • [5] 3D-Printed Biopolymers for Tissue Engineering Application
    Li, Xiaoming
    Cui, Rongrong
    Sun, Lianwen
    Aifantis, Katerina E.
    Fan, Yubo
    Feng, Qingling
    Cui, Fuzhai
    Watari, Fumio
    INTERNATIONAL JOURNAL OF POLYMER SCIENCE, 2014, 2014
  • [6] On the progress of 3D-printed hydrogels for tissue engineering
    Advincula, Rigoberto C.
    Dizon, John Ryan C.
    Caldona, Eugene B.
    Viers, Robert Andrew
    Siacor, Francis Dave C.
    Maalihan, Reymark D.
    Espera, Alejandro H., Jr.
    MRS COMMUNICATIONS, 2021, 11 (05) : 539 - 553
  • [7] On the progress of 3D-printed hydrogels for tissue engineering
    Rigoberto C. Advincula
    John Ryan C. Dizon
    Eugene B. Caldona
    Robert Andrew Viers
    Francis Dave C. Siacor
    Reymark D. Maalihan
    Alejandro H. Espera
    MRS Communications, 2021, 11 : 539 - 553
  • [8] A 3D-printed Sn-doped calcium phosphate scaffold for bone tissue engineering
    Liang, Hong
    Fu, Gaosheng
    Liu, Jinrui
    Tang, Yueting
    Wang, Yujue
    Chen, Shan
    Zhang, Yanjie
    Zhang, Chen
    FRONTIERS IN MATERIALS, 2022, 9
  • [9] From materials to clinical use: advances in 3D-printed scaffolds for cartilage tissue engineering
    Zhang, Hewen
    Wang, Meng
    Wu, Rui
    Guo, Jianjun
    Sun, Aihua
    Li, Zhixiang
    Ye, Ruqing
    Xu, Gaojie
    Cheng, Yuchuan
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2023, 25 (36) : 24244 - 24263
  • [10] 3D-Printed Reinforcement Scaffolds with Targeted Biodegradation Properties for the Tissue Engineering of Articular Cartilage
    Tosoratti, Enrico
    Fisch, Philipp
    Taylor, Scott
    Laurent-Applegate, Lee Ann
    Zenobi-Wong, Marcy
    ADVANCED HEALTHCARE MATERIALS, 2021, 10 (23)