Fabrication and characterization of porous polycaprolactone scaffold via extrusion-based cryogenic 3D printing for tissue engineering

被引:86
|
作者
Zhang, Wancheng [1 ,2 ]
Ullah, Ismat [1 ]
Shi, Lei [1 ]
Zhang, Yu [1 ,2 ]
Ou, Hao [1 ]
Zhou, Jinge [3 ]
Ullah, Muhammad Wajid [4 ]
Zhang, Xianglin [1 ,2 ]
Li, Wenchao [5 ]
机构
[1] Huazhong Univ Sci & Technol, Sch Mat Sci & Engn, State Key Lab Mat Proc & Mould Technol, Wuhan 430074, Hubei, Peoples R China
[2] Huazhong Univ Sci & Technol, Ezhou Ind Technol Res Inst, Ezhou 436000, Peoples R China
[3] Huazhong Univ Sci & Technol, Tongji Med Coll, Union Hosp, Dept Orthoped, Wuhan 430022, Hubei, Peoples R China
[4] Huazhong Univ Sci & Technol, Dept Biomed Engn, Wuhan 430074, Hubei, Peoples R China
[5] Nanchang Univ, Sch Mechatron Engn, Nanchang 330031, Jiangxi, Peoples R China
基金
中国国家自然科学基金;
关键词
Extrusion-based cryogenic 3D printing; Polycaprolactone; Glacial acetic acid; 3D scaffold; Tissue engineering; BIOACTIVE GLASS COMPOSITE; MECHANICAL-PROPERTIES; POLY(EPSILON-CAPROLACTONE); CRYSTALLIZATION; SIZE;
D O I
10.1016/j.matdes.2019.107946
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Earlier reports of fabricating 3D porous PCL scaffolds for tissue engineering applications were overshadowed by several limitations such as additional molds cost, relatively low efficiency, and lacking process control. In present study, combined extrusion-based cryogenic 3D printing (ECP) (-20 degrees C) and subsequent freeze-drying approaches were employed to facilely fabricate polycaprolactone (PCL) scaffolds, with high porosity and fidelity. Freeze-drying caused shrinkage of the scaffolds along X, Y, and Z-axes to some extent. The porosities of CP600, CP800, and CP1000 were found to be 64.0 +/- 1.2%, 70.1 +/- 1.3%, and 74.3 +/- 0.6%, respectively. The fabricated scaffolds were characterized for various structural features and compared with the ones fabricated through traditional extrusion-based melt 3D printing (EMP). The crystallinity of PCL in ECP scaffolds was lower (57.1 +/- 2.2%) than EMP scaffolds (69.8 +/- 1.3%). The ECP scaffolds showed high alkaline degradation, but low compression properties. The ECP scaffolds promoted the adhesion and proliferation of MCT3T-E1 cells with well-spread morphology on the porous filaments. Together, these features justify the suitability of printed PCL scaffolds for potential TE applications. (C) 2019 Published by Elsevier Ltd.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Extrusion-based 3D food printing - Materials and machines
    Tan, Cavin
    Toh, Wei Yan
    Wong, Gladys
    Li, Lin
    INTERNATIONAL JOURNAL OF BIOPRINTING, 2018, 4 (02)
  • [22] Hyaluronic acid as a bioink for extrusion-based 3D printing
    Petta, D.
    D'Amora, U.
    Ambrosio, L.
    Grijpma, D. W.
    Eglin, D.
    D'Este, M.
    BIOFABRICATION, 2020, 12 (03)
  • [23] Rapid Prototyping of Microfluidic Conductivity Detectors via Extrusion-Based 3D Printing
    Prabhu, Siddharth
    Strong, Brandon
    Jangid, Aditya
    Liu, Bo
    Martinez, Nathaniel
    FASEB JOURNAL, 2018, 32 (01):
  • [24] 3D gel printing of porous calcium silicate scaffold for bone tissue engineering
    Zhang, Zhinan
    Shao, Huiping
    Lin, Tao
    Zhang, Yumeng
    He, Jianzhuang
    Wang, Luhui
    JOURNAL OF MATERIALS SCIENCE, 2019, 54 (14) : 10430 - 10436
  • [25] 3D gel printing of porous calcium silicate scaffold for bone tissue engineering
    Zhinan Zhang
    Huiping Shao
    Tao Lin
    Yumeng Zhang
    Jianzhuang He
    Luhui Wang
    Journal of Materials Science, 2019, 54 : 10430 - 10436
  • [26] A brief review of extrusion-based tissue scaffold bio-printing
    Ning, Liqun
    Chen, Xiongbiao
    BIOTECHNOLOGY JOURNAL, 2017, 12 (08)
  • [27] RHEOLOGICAL CHARACTERIZATION AND COMPARISON OF PRINTING HYDROGEL-BASED COMPOSITE INKS FOR EXTRUSION-BASED 3D PRINTING
    Wozniak, Anna
    Biernat, Monika
    Swieszkowski, Wojciech
    Szterner, Piotr
    Gizowska, Magdalena
    TISSUE ENGINEERING PART A, 2023, 29 (11-12) : 1290 - 1291
  • [28] A novel extrusion-based 3D bioprinting system for skeletal muscle tissue engineering
    Fornetti, E.
    De Paolis, F.
    Fuoco, C.
    Bernardini, S.
    Giannitelli, S. M.
    Rainer, A.
    Seliktar, D.
    Magdinier, F.
    Baldi, J.
    Biagini, R.
    Cannata, S.
    Testa, S.
    Gargioli, C.
    BIOFABRICATION, 2023, 15 (02)
  • [29] Solvent evaporation induced fabrication of porous polycaprolactone scaffold via low-temperature 3D printing for regeneration medicine researches
    Xiao, Xiong
    Jiang, Xia
    Yang, Shaojie
    Lu, Zuyan
    Niu, Chuan
    Xu, Yue
    Huang, Ziwei
    Kang, Y. James
    Feng, Li
    POLYMER, 2021, 217
  • [30] Extrusion-based 3D printed biodegradable porous iron
    Putra, N. E.
    Leeflang, M. A.
    Minneboo, M.
    Taheri, P.
    Fratila-Apachitei, L. E.
    Mol, J. M. C.
    Zhou, J.
    Zadpoor, A. A.
    ACTA BIOMATERIALIA, 2021, 121 (121) : 741 - 756