Triblock copolymers based on Ε-caprolactone and trimethylene carbonate for the 3D printing of tissue engineering scaffolds

被引:0
|
作者
机构
[1] Güney, Aysun
[2] 2,Malda, Jos
[3] 2,Dhert, Wouter J. A.
[4] 1,Grijpma, Dirk W.
来源
Grijpma, Dirk W. (d.w.grijpma@utwente.nl) | 1600年 / Wichtig Publishing Srl卷 / 40期
关键词
Thermoplastic elastomers - Ring opening polymerization - Film preparation - Glass - Glass transition - Porosity - 3D printers - Casting - Reinforced plastics - Ethylene - Carbonation - Polymer films - Scaffolds (biology) - Tensile strength - Tissue;
D O I
暂无
中图分类号
学科分类号
摘要
Background: Biodegradable PCL-b-PTMC-b-PCL triblock copolymers based on trimethylene carbonate (TMC) and Ε-caprolactone (CL) were prepared and used in the 3D printing of tissue engineering scaffolds. Triblock copolymers of various molecular weights containing equal amounts of TMC and CL were prepared. These block copolymers combine the low glass transition temperature of amorphous PTMC (approximately -20°C) and the semi-crystallinity of PCL (glass transition approximately -60°C and melting temperature approximately 60°C). Methods: PCL-b-PTMC-b-PCL triblock copolymers were synthesized by sequential ring opening polymerization (ROP) of TMC and Ε-CL. From these materials, films were prepared by solvent casting and porous structures were prepared by extrusion-based 3D printing. Results: Films prepared from a polymer with a relatively high molecular weight of 62 kg/mol had a melting temperature of 58°C and showed tough and resilient behavior, with values of the elastic modulus, tensile strength and elongation at break of approximately 120 MPa, 16 MPa and 620%, respectively. Porous structures were prepared by 3D printing. Ethylene carbonate was used as a crystalizable and water-extractable solvent to prepare structures with microporous strands. Solutions, containing 25 wt% of the triblock copolymer, were extruded at 50°C then cooled at different temperatures. Slow cooling at room temperature resulted in pores with widths of 18 ± 6 μm and lengths of 221 ± 77 μm, rapid cooling with dry ice resulted in pores with widths of 13 ± 3 μm and lengths of 58 ± 12 μm. These PCL-b-PTMC-b-PCL triblock copolymers processed into porous structures at relatively low temperatures may find wide application as designed degradable tissue engineering scaffolds. Conclusions: In this preliminary study we prepared biodegradable triblock copolymers based on 1,3-trimethylene carbonate and Ε-caprolactone and assessed their physical characteristics. Furthermore, we evaluated their potential as melt-processable thermoplastic elastomeric biomaterials in 3D printing of tissue engineering scaffolds. © 2017 Wichtig Publishing.
引用
收藏
相关论文
共 50 条
  • [31] 3D Printing of Polysaccharide-Based Hydrogel Scaffolds for Tissue Engineering Applications: A Review
    Tamo, Arnaud Kamdem
    Djouonkep, Lesly Dasilva Wandji
    Selabi, Naomie Beolle Songwe
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2024, 270
  • [32] 3D printing soft tissue scaffolds
    Bradley, David
    MATERIALS TODAY, 2018, 21 (04) : 322 - 322
  • [33] Design and in vivo assessment of polyester copolymers based on trimethylene carbonate and ε-caprolactone
    Zhang, Chong
    Liu, Danhua
    Zhang, Xiaowei
    Wang, Ping
    Zhen, Zhu
    Li, Jianxin
    Yi, Dongxu
    Jin, Ying
    Yang, Dan
    JOURNAL OF APPLIED POLYMER SCIENCE, 2015, 132 (16)
  • [34] Engineered 3D printed poly(ε-caprolactone)/graphene scaffolds for bone tissue engineering
    Wang, Weiguang
    Passarini Junior, Jose Roberto
    Lopes Nalesso, Paulo Roberto
    Musson, David
    Cornish, Jillian
    Mendonca, Fernanda
    Caetano, Guilherme Ferreira
    Bartolo, Paulo
    MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2019, 100 : 759 - 770
  • [35] 3D printing of resorbable poly(propylene fumarate) tissue engineering scaffolds
    Childers, Erin P.
    Wang, Martha O.
    Becker, Matthew L.
    Fisher, John P.
    Dean, David
    MRS BULLETIN, 2015, 40 (02) : 119 - 126
  • [36] 3D Printing of PLLA/Biomineral Composite Bone Tissue Engineering Scaffolds
    Gang, Fangli
    Ye, Weilong
    Ma, Chunyang
    Wang, Wenting
    Xiao, Yi
    Liu, Chang
    Sun, Xiaodan
    MATERIALS, 2022, 15 (12)
  • [37] 3D Printing of Polyester Scaffolds for Bone Tissue Engineering: Advancements and Challenges
    Salehabadi, Mojtaba
    Mirzadeh, Hamid
    ADVANCED MATERIALS TECHNOLOGIES, 2024,
  • [38] 3D printing of resorbable poly(propylene fumarate) tissue engineering scaffolds
    Erin P. Childers
    Martha O. Wang
    Matthew L. Becker
    John P. Fisher
    David Dean
    MRS Bulletin, 2015, 40 : 119 - 126
  • [39] 3D poly-ε-caprolactone/graphene porous scaffolds for bone tissue engineering
    Huang, Huei-Yu
    Fan, Fang-Yu
    Shen, Yung-Kang
    Wang, Chia-Hsien
    Huang, Yuen-Tzu
    Chern, Ming-Jyh
    Wang, Yen-Hsiang
    Wang, Liping
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2020, 606
  • [40] Advances in 3D Printing of Highly Bioadaptive Bone Tissue Engineering Scaffolds
    Ren, Ya
    Zhang, Changru
    Liu, Yihao
    Kong, Weiqing
    Yang, Xue
    Niu, Haoyi
    Qiang, Lei
    Yang, Han
    Yang, Fei
    Wang, Chengwei
    Wang, Jinwu
    ACS BIOMATERIALS SCIENCE & ENGINEERING, 2023, 10 (01) : 255 - 270