Development of melt electrohydrodynamic 3D printing for complex microscale poly (ε-caprolactone) scaffolds

被引:71
|
作者
He, Jiankang [1 ]
Xia, Peng [1 ]
Li, Dichen [1 ]
机构
[1] Xi An Jiao Tong Univ, State Key Lab Mfg Syst Engn, Xian 710049, Shaanxi, Peoples R China
基金
中国国家自然科学基金;
关键词
melt electrohydrodynamic printing; tissue engineering; scaffold; microfibers; bioprinting; FABRICATION; TISSUES; CONSTRUCTS; HYDROGELS; BONE;
D O I
10.1088/1758-5090/8/3/035008
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The replication of native hierarchical structures into synthetic scaffolds is important to direct cell growth and tissue regeneration. However, most of the existing scaffold strategies lack the capability to simultaneously realize the controlled fabrication of macroscopic geometries as well as microscale architectures with the scale similar to living cells. Here we developed a melt electrohydrodynamic printing platform and verified its feasibility to fabricate three-dimensional (3D) tissue-engineered scaffolds with complex curved geometries and microscale fibrous structures. Melting temperature was studied to stably print poly (epsilon-caprolactone) (PCL) filaments with the size of about 10 mu m, which was precisely stacked into 3D straight walls with fine surface quality. By adjusting stage moving speed and directions, 3D PCL scaffolds with curved contours and predefined fiber orientations or spacing were successfully printed. Biological experiments showed that the printed microscale scaffolds had good biocompatibility and facilitated cellular proliferation and alignment in vitro. It is envisioned that the melt electrohydrodynamic printing can potentially provide an innovative tool to fabricate hierarchical scaffolds that mimic the native tissue architectures in a multiscale level.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] 3D printing of porous poly(ε-caprolactone)poly(trimethylene carbonate)-poly(ε-caprolactone) triblock copolymers and nano-apatite composite structures
    Guney, Aysun
    Kernebeck, Lena
    Grijpma, Dirk W.
    EXPRESS POLYMER LETTERS, 2024, 18 (04): : 349 - 358
  • [32] 3D printed poly(lactic acid)/poly(ε-caprolactone)/graphene ε-caprolactone)/graphene nanocomposite scaffolds for peripheral nerve tissue engineering
    Gerdefaramarzi, Reyhane Soltani
    Ebrahimian-Hosseinabadi, Mehdi
    Khodaei, Mohammad
    ARABIAN JOURNAL OF CHEMISTRY, 2024, 17 (09)
  • [33] Microscale electrohydrodynamic printing of biomimetic PCL/nHA composite scaffolds for bone tissue engineering
    Qu, Xiaoli
    Xia, Peng
    He, Jiankang
    Li, Dichen
    MATERIALS LETTERS, 2016, 185 : 554 - 557
  • [34] Laser printing of cells into 3D scaffolds
    Ovsianikov, A.
    Gruene, M.
    Pflaum, M.
    Koch, L.
    Maiorana, F.
    Wilhelmi, M.
    Haverich, A.
    Chichkov, B.
    BIOFABRICATION, 2010, 2 (01)
  • [35] Pyro-EHD 3D printing at microscale
    Coppola, S.
    Nasti, G.
    Vespini, V.
    Pagliarulo, V.
    Grilli, S.
    Ferraro, P.
    Olivieri, F.
    2017 IEEE 3RD INTERNATIONAL FORUM ON RESEARCH AND TECHNOLOGIES FOR SOCIETY AND INDUSTRY (RTSI), 2017, : 281 - 286
  • [36] 3D printing soft tissue scaffolds
    Bradley, David
    MATERIALS TODAY, 2018, 21 (04) : 322 - 322
  • [37] Design and 3D Printing of Scaffolds and Tissues
    An, Jia
    Teoh, Joanne Ee Mei
    Suntornnond, Ratima
    Chua, Chee Kai
    ENGINEERING, 2015, 1 (02) : 261 - 268
  • [38] 3D Printing Scaffolds for Craniofacial Regeneration
    Hung, B.
    Dias, M.
    Grayson, W.
    TISSUE ENGINEERING PART A, 2015, 21 : S10 - S10
  • [39] Physics of microscale freeform 3D printing of ice
    Garg, Akash
    Yang, Feimo
    Ozdoganlar, O. Burak
    LeDuc, Philip R.
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2024, 121 (30)
  • [40] Customisable Tablet Printing: The Development of Multimaterial Hot Melt Inkjet 3D Printing to Produce Complex and Personalised Dosage Forms
    Lion, Anna
    Wildman, Ricky D.
    Alexander, Morgan R.
    Roberts, Clive J.
    PHARMACEUTICS, 2021, 13 (10)