Incorporation of growth factor loaded microspheres into polymeric electrospun nanofibers for tissue engineering applications

被引:48
|
作者
Gungor-Ozkerim, P. Selcan [1 ]
Balkan, Timucin [2 ]
Kose, Gamze T. [3 ,4 ]
Sarac, A. Sezai [2 ]
Kok, Fatma N. [1 ,4 ,5 ]
机构
[1] Istanbul Tech Univ, MOBGAM, Mol Biol Genet & Biotechnol Program, TR-34469 Istanbul, Turkey
[2] Istanbul Tech Univ, Dept Chem & Polymer Sci & Technol, TR-34469 Istanbul, Turkey
[3] Yeditepe Univ, Dept Genet & Bioengn, TR-34755 Istanbul, Turkey
[4] Middle E Tech Univ, BIOMATEN Ctr Excellence Biomat & Tissue Engn, TR-06531 Ankara, Turkey
[5] Istanbul Tech Univ, Mol Biol & Genet Dept, TR-34469 Istanbul, Turkey
关键词
controlled growth factor release; electrospun nanofibers; biodegradable scaffold; IN-VITRO DEGRADATION; GELATIN MICROSPHERES; CONTROLLED-RELEASE; SUSTAINED-RELEASE; SCAFFOLDS; DELIVERY; FIBER; DESIGN; CELLS; ACID);
D O I
10.1002/jbm.a.34857
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Nanofibrous double-layer matrices were prepared by electrospinning technique with the bottom layer formed from PCL (poly-epsilon-caprolactone)/PLLA (poly-l-lactic acid) nanofibers and the upper layer from PCL/Gelatin nanofibers. Bottom layer was designed to give mechanical strength to the system, whereas upper layer containing gelatin was optimized to improve the cell adhesion. Gelatin microspheres were incorporated in the middle of two layers for controlled growth factor delivery. Successful fabrication of the blend nanofibers were shown by spectroscopy. Scanning electron microscopy results demonstrated that bead-free nanofibers with uniform morphology could be obtained by 10% w/v concentrations of PCL/PLLA and PCL/Gelatin solutions. Microspheres prepared by 15% gelatin concentration and cross-linked with 7.5% glutaraldehyde solution were chosen after in vitro release studies for the incorporation to the double-layer matrices. The optimized conditions were used to prepare fibroblast growth factor-2 (FGF-2) loaded microspheres. Preliminary cell culture studies showed that the FGF-2 could be actively loaded into the microspheres and enhanced the cell attachment and proliferation. The complete system had a slow degradation rate in saline (18% weight loss in 2 months) and it could meanwhile preserve its integrity. This sandwich system prevented microsphere leakage from the scaffold, and the hydrophilic and bioactive nature of the fibers at the upper layer promoted cell attachment to the surface. PLLA/PCL layer, on the other hand, improved the mechanical properties of the system and enabled better handling. (c) 2013 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 102A: 1897-1908, 2014.
引用
下载
收藏
页码:1897 / 1908
页数:12
相关论文
共 50 条
  • [31] Electrospun nanofibers of poly(ε-caprolactone)/depolymerized chitosan for respiratory tissue engineering applications
    Mahoney, Christopher
    Conklin, Dawn
    Waterman, Jenora
    Sankar, Jagannathan
    Bhattarai, Narayan
    JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION, 2016, 27 (07) : 611 - 625
  • [32] Recent Advancements in Electrospun Chitin and Chitosan Nanofibers for Bone Tissue Engineering Applications
    Ganesh, S. Shree
    Anushikaa, Ramprasad
    Swetha Victoria, Venkadesan Sri
    Lavanya, Krishnaraj
    Shanmugavadivu, Abinaya
    Selvamurugan, Nagarajan
    JOURNAL OF FUNCTIONAL BIOMATERIALS, 2023, 14 (05)
  • [33] Effect of cellulose nanofibers on polyhydroxybutyrate electrospun scaffold for bone tissue engineering applications
    Mohammadalipour, Mohammad
    Karbasi, Saeed
    Behzad, Tayebeh
    Mohammadalipour, Zahra
    Zamani, Maryam
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2022, 220 : 1402 - 1414
  • [34] Nanohydroxyapatite Electrodeposition onto Electrospun Nanofibers: Technique Overview and Tissue Engineering Applications
    Stocco, Thiago Domingues
    Rodrigues, Pedro Jose Gomes
    de Almeida Filho, Mauricio Augusto
    Lobo, Anderson Oliveira
    BIOENGINEERING-BASEL, 2021, 8 (11):
  • [35] Current approaches to electrospun nanofibers for tissue engineering
    Rim, Nae Gyune
    Shin, Choongsoo S.
    Shin, Heungsoo
    BIOMEDICAL MATERIALS, 2013, 8 (01)
  • [36] Electrospun Nanofibers as Scaffolds for Skin Tissue Engineering
    Sundaramurthi, Dhakshinamoorthy
    Krishnan, Uma Maheswari
    Sethuraman, Swaminathan
    POLYMER REVIEWS, 2014, 54 (02) : 348 - 376
  • [37] Advancing tissue engineering by using electrospun nanofibers
    Ashammakhi, Nureddin
    Ndreu, A.
    Nikkola, L.
    Wimpenny, I.
    Yang, Y.
    REGENERATIVE MEDICINE, 2008, 3 (04) : 547 - 574
  • [38] Application of electrospun gelatin nanofibers in tissue engineering
    Naghibzadeh, Majid
    Firoozi, Saman
    Nodoushan, Fatemeh Sadeghian
    Adabi, Mohsen
    Khoradmehr, Arezoo
    Fesahat, Farzaneh
    Esnaashari, Seyedeh Sara
    Khosravani, Masood
    Adabi, Mandi
    Tavakol, Shima
    Pazoki-Toroudi, Hamidreza
    Adel, Moein
    Zahmatkeshan, Masoumeh
    BIOINTERFACE RESEARCH IN APPLIED CHEMISTRY, 2018, 8 (01): : 3048 - 3052
  • [39] Growth factor releasing core-shell polymeric scaffolds for tissue engineering applications
    Augustine, Robin
    Zahid, Alap Ali
    Wang, Mian
    Webster, Thomas J.
    Hasan, Anwarul
    2019 41ST ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY (EMBC), 2019, : 1066 - 1069
  • [40] Current applications of electrospun polymeric nanofibers in cancer therapy
    Abid, Sharjeel
    Hussain, Tanveer
    Raza, Zulfiqar Ali
    Nazir, Ahsan
    MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2019, 97 : 966 - 977