A New Method for Fibrin-Based Electrospun/Sprayed Scaffold Fabrication

被引:0
|
作者
Tamer Al Kayal
Paola Losi
Silvia Pierozzi
Giorgio Soldani
机构
[1] Laboratorio di Medicina Rigenerativa,
[2] Biomateriali e Terapie Avanzate,undefined
[3] Institute of Clinical Physiology,undefined
[4] National Research Council,undefined
[5] Laboratori Archa,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Fibrin is an optimal scaffold for tissue-engineering applications because it mimics the extracellular matrix. Despite this interesting feature, fibrin gel owns only poor mechanical properties that limit its applications. Different approaches have been used for fibrin electrospinning, however all the methods investigated required washing steps, cross-linking agent treatment or immersion. The aim of this work was to produce a bilayered fibrin/polyurethane scaffold by combination of the electrospun method and the spray, phase-inversion method for the preparation of a fibrin nanostructured layer to be attached onto a poly(ether)urethane microporous support layer. The synthetic layer was obtained by the spray, phase-inversion technique onto a rotating metallic collector, while fibrinogen was processed to obtain a nanofibrous structure by electrospinning. Finally, fibrin polymerization was obtained by thrombin solution spraying onto the electrospun nanofibers. SEM analysis showed the formation of filamentous structure with diameter in the range of μm attached onto the synthetic layer. This scaffold could be applied in soft tissue regeneration such as wound healing or as drug delivery system.
引用
收藏
相关论文
共 50 条
  • [31] Fibrin-based delivery strategies for acute and chronic wound healing
    Heher, P.
    Muehleder, S.
    Mittermayr, R.
    Redl, H.
    Slezak, P.
    ADVANCED DRUG DELIVERY REVIEWS, 2018, 129 : 134 - 147
  • [32] Nondestructive Method to Evaluate the Collagen Content of Fibrin-Based Tissue Engineered Structures Via Ultrasound
    Kreitz, Sebastian
    Dohmen, Guido
    Hasken, Stefan
    Schmitz-Rode, Thomas
    Mela, Petra
    Jockenhoevel, Stefan
    TISSUE ENGINEERING PART C-METHODS, 2011, 17 (10) : 1021 - 1026
  • [33] The possibility of using fibrin-based collagen as an antibiotic delivery system
    Junichi Nishimura
    Kiyokazu Nakajima
    Yoshihito Souma
    Tsuyoshi Takahashi
    Naoki Ikeguchi
    Rei Takenaka
    Naoki Shinohara
    Toshirou Nishida
    Yuichiro Doki
    Masaki Mori
    Surgery Today, 2013, 43 : 185 - 190
  • [34] Comparative evaluation of absorbable hemostats: advantages of fibrin-based sheets
    Krishnan, LK
    Mohanty, M
    Umashankar, PR
    Lal, AV
    BIOMATERIALS, 2004, 25 (24) : 5557 - 5563
  • [35] MECHANICAL PROPERTIES OF FIBRIN-BASED HYDROGELS WITH COVALENT AND SUPRAMOLECULAR CROSSLINKS
    Al Enezy-Ulbrich, Miriam Aischa
    Terefenko, Nicole
    Jung, Shannon Anna
    Plum, Rene
    Labude-Weber, Norina
    Malyaran, Hanna
    Wein, Svenja
    Neuss, Sabine
    Pich, Andrij
    TISSUE ENGINEERING PART A, 2022, 28 : S363 - S363
  • [36] Endothelialization and Flow Conditioning of Fibrin-Based Media-Equivalents
    Brett C. Isenberg
    Chrysanthi Williams
    Robert T. Tranquillo
    Annals of Biomedical Engineering, 2006, 34 : 971 - 985
  • [37] Effect of haematocrit on fibrin-based clot firmness in the FIBTEM test
    Solomon, Cristina
    Rahe-Meyer, Niels
    Schoechl, Herbert
    Ranucci, Marco
    Goerlinger, Klaus
    BLOOD TRANSFUSION, 2013, 11 (03) : 412 - 418
  • [38] Microporous nanofibrous fibrin-based scaffolds for bone tissue engineering
    Osathanon, Thanaphum
    Linnes, Michael L.
    Rajachar, Rupak M.
    Ratner, Buddy D.
    Somerman, Martha J.
    Giachelli, Cecilia M.
    BIOMATERIALS, 2008, 29 (30) : 4091 - 4099
  • [39] IS TRANEXAMIC ACID AN ALTERNATIVE TO APROTININ IN FIBRIN-BASED TISSUE ENGINEERING?
    Cholewinski, E.
    Dietrich, M.
    Flanagan, T. C.
    Schmitz-Rode, T.
    Jockenhoevel, S.
    INTERNATIONAL JOURNAL OF ARTIFICIAL ORGANS, 2009, 32 (07): : 413 - 413
  • [40] Textile Reinforcement in Fibrin-based Tissue Engineerd Heart Valves
    Ross, R.
    Salein, J.
    Menne, M.
    Mela, P.
    Jockenhoevel, S.
    Gries, T.
    BIOMEDICAL ENGINEERING-BIOMEDIZINISCHE TECHNIK, 2013, 58