A Simple Modification Method to Obtain Anisotropic and Porous 3D Microfibrillar Scaffolds for Surgical and Biomedical Applications

被引:24
|
作者
Hosseini, Vahid [1 ]
Evrova, Olivera [1 ,2 ]
Hoerstrup, Simon P. [3 ,4 ,5 ]
Vogel, Viola [1 ]
机构
[1] ETH, Dept Hlth Sci & Technol, Inst Translat Med, Lab Appl Mechanobiol, CH-8093 Zurich, Switzerland
[2] Univ Hosp Zurich, Div Plast Surg & Hand Surg, CH-8091 Zurich, Switzerland
[3] Univ Zurich, Inst Regenerat Med IREM, CH-8091 Zurich, Switzerland
[4] Univ Zurich, Wyss Translat Ctr Zurich, CH-8091 Zurich, Switzerland
[5] ETH, CH-8091 Zurich, Switzerland
关键词
3D; anisotropic; reconstructive surgery; scaffolds; tissue engineering; SKELETAL-MUSCLE TISSUE; ENGINEERED HEART-VALVES; SELF-ORGANIZATION; CELL ALIGNMENT; STEM-CELLS; COLLAGEN; FIBERS; FIBRONECTIN; REPAIR; IMPLANTATION;
D O I
10.1002/smll.201702650
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In native tissues, cellular organization is predominantly anisotropic. Yet, it remains a challenge to engineer anisotropic scaffolds that promote anisotropic cellular organization at macroscopic length scales. To overcome this challenge, an innovative, cheap and easy method to align clinically approved non-woven surgical microfibrillar scaffolds is presented. The method involves a three-step process of coating, unidirectional stretching of scaffolds after heating them above glass transition temperature, and cooling back to room temperature. Briefly, a polymer coating is applied to a non-woven mesh that results in a partial welding of randomly oriented microfibers at their intersection points. The coated scaffold is then heated above the glass transition temperature of the coating and the scaffold polymer. Subsequently, the coated scaffold is stretched to produce aligned and three dimentional (3D) porous fibrillar scaffolds. In a proof of concept study, a polyglycolic acid (PGA) micro-fibrillar scaffold was coated with poly(4-hydroxybutirate) (P4HB) acid and subsequently aligned. Fibroblasts were cultured in vitro within the scaffold and results showed an increase in cellular alignment along the direction of the PGA fibers. This method can be scaled up easily for industrial production of polymeric meshes or directly applied to small pieces of scaffolds at the point of care.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] 3D printed scaffolds for biomedical applications
    Varma, M. Vishnumaya
    Kandasubramanian, Balasubramanian
    Ibrahim, Sobhy M.
    MATERIALS CHEMISTRY AND PHYSICS, 2020, 255
  • [2] 3D Scaffolds Based on Conductive Polymers for Biomedical Applications
    Alegret, Nuria
    Dominguez-Alfaro, Antonio
    Mecerreyes, David
    BIOMACROMOLECULES, 2019, 20 (01) : 73 - 89
  • [3] 3D printed nanocellulose scaffolds designed for biomedical applications
    Sultan, Sahar
    Mathew, Aji
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2019, 257
  • [4] Aligned 3D porous polyurethane scaffolds for biological anisotropic tissue regeneration
    Lin W.
    Lan W.
    Wu Y.
    Zhao D.
    Wang Y.
    He X.
    Li J.
    Li Z.
    Luo F.
    Tan H.
    Fu Q.
    Regenerative Biomaterials, 2019, 7 (01) : 19 - 27
  • [5] Aligned 3D porous polyurethane scaffolds for biological anisotropic tissue regeneration
    Lin, Weiwei
    Lan, Wanling
    Wu, Yingke
    Zhao, Daiguo
    Wang, Yanchao
    He, Xueling
    Li, Jiehua
    Li, Zhen
    Luo, Feng
    Tan, Hong
    Fu, Qiang
    REGENERATIVE BIOMATERIALS, 2020, 7 (01) : 19 - 28
  • [6] Development of 3D Printed Electrospun Scaffolds for the Fabrication of Porous Scaffolds for Vascular Applications
    Bansal, Jahnvi
    Neuman, Katelyn
    Greene, Vaughn K., Jr.
    Rubenstein, David A.
    3D PRINTING AND ADDITIVE MANUFACTURING, 2022, 9 (05) : 380 - 388
  • [7] 3D Printable Electrically Conductive Hydrogel Scaffolds for Biomedical Applications: A Review
    Athukorala, Sandya Shiranthi
    Tran, Tuan Sang
    Balu, Rajkamal
    Truong, Vi Khanh
    Chapman, James
    Dutta, Naba Kumar
    Roy Choudhury, Namita
    POLYMERS, 2021, 13 (03) : 1 - 21
  • [8] Plasma processing for surface engineering of 3D polymer scaffolds for biomedical applications
    Shearer, Jeffrey C.
    Fisher, Ellen R.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2013, 245
  • [9] Processing of degradable ulvan 3D porous structures for biomedical applications
    Alves, Anabela
    Sousa, Rui A.
    Reis, Rui L.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2013, 101 (04) : 998 - 1006
  • [10] Electrospinning nanofibers to 1D, 2D, and 3D scaffolds and their biomedical applications
    Zhong, Huiling
    Huang, Jun
    Wu, Jun
    Du, Jianhang
    NANO RESEARCH, 2022, 15 (02) : 787 - 804