Fabrication and Characterization of PCL/PLGA Coaxial and Bilayer Fibrous Scaffolds for Tissue Engineering

被引:13
|
作者
Bazgir, Morteza [1 ]
Zhang, Wei [2 ,3 ]
Zhang, Ximu [4 ,5 ]
Elies, Jacobo [6 ]
Saeinasab, Morvarid [7 ]
Coates, Phil [8 ]
Youseffi, Mansour [1 ]
Sefat, Farshid [1 ,8 ]
机构
[1] Univ Bradford, Sch Engn, Dept Biomed & Elect Engn, Bradford BD7 1DP, W Yorkshire, England
[2] Sichuan Univ, State Key Lab Polymer Mat Engn, Polymer Res Inst, Chengdu 610065, Peoples R China
[3] Sichuan Univ, Adv Polymer Mat Res Ctr, Shishi 362700, Peoples R China
[4] Chongqing Med Univ, Higher Educ & Stomatol Hosp, Chongqing Key Lab Oral Dis & Biomed Sci, Chongqing 401174, Peoples R China
[5] Chongqing Med Univ, Higher Educ & Stomatol Hosp, Chongqing Municipal Key Lab Oral Biomed Engn, Chongqing 401174, Peoples R China
[6] Univ Bradford, Fac Life Sci, Sch Pharm & Med Sci, Bradford BD7 1DP, W Yorkshire, England
[7] Ferdowsi Univ Mashhad, Fac Sci, Dept Biol, Mashhad 917794897, Razavi Khorasan, Iran
[8] Univ Bradford, Interdisciplinary Res Ctr Polymer Sci & Technol P, Bradford BD7 1DP, W Yorkshire, England
关键词
electrospinning; coaxial; bilayer; polycaprolactone (PCL); poly lactic-co-glycolic acid (PLGA); contact angle; mechanical properties; degradation; MECHANICAL-PROPERTIES; ELECTROSPUN; NANOFIBERS; DEGRADATION; FIBERS; WETTABILITY; COMPOSITE; PROTEINS; POLYMERS; SURFACES;
D O I
10.3390/ma14216295
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Electrospinning is an innovative new fibre technology that aims to design and fabricate membranes suitable for a wide range of tissue engineering (TE) applications including vascular grafts, which is the main objective of this research work. This study dealt with fabricating and characterising bilayer structures comprised of an electrospun sheet made of polycaprolactone (PCL, inner layer) and an outer layer made of poly lactic-co-glycolic acid (PLGA) and a coaxial porous scaffold with a micrometre fibre structure was successfully produced. The membranes' propriety for intended biomedical applications was assessed by evaluating their morphological structure/physical properties and structural integrity when they underwent the degradation process. A scanning electron microscope (SEM) was used to assess changes in the electrospun scaffolds' structural morphology such as in their fibre diameter, pore size (p.m) and the porosity of the scaffold surface which was measured with Image J software. During the 12-week degradation process at room temperature, most of the scaffolds showed a similar trend in their degradation rate except the 60 min scaffolds. The coaxial scaffold had significantly less mass loss than the bilayer PCL/PLGA scaffold with 1.348% and 18.3%, respectively. The mechanical properties of the fibrous membranes were measured and the coaxial scaffolds showed greater tensile strength and elongation at break (YO) compared to the bilayer scaffolds. According to the results obtained in this study, it can be concluded that a scaffold made with a coaxial needle is more suitable for tissue engineering applications due to the improved quality and functionality of the resulting polymeric membrane compared to the basic electrospinning process. However, whilst fabricating a vascular graft is the main aim of this research work, the biological data will not present in this paper.
引用
收藏
页数:15
相关论文
共 50 条
  • [1] Fabrication and characterisation of PCL and PCL/PLA scaffolds for tissue engineering
    Patricio, T.
    Domingos, M.
    Gloria, A.
    D'Amora, U.
    Coelho, J. F.
    Bartolo, P. J.
    RAPID PROTOTYPING JOURNAL, 2014, 20 (02) : 145 - 156
  • [2] Fabrication and Characterization of Electrospun PLGA/MWNTs/Hydroxyapatite Biocomposite Scaffolds for Bone Tissue Engineering
    Zhang, Hualin
    Chen, Zhiqing
    JOURNAL OF BIOACTIVE AND COMPATIBLE POLYMERS, 2010, 25 (03) : 241 - 259
  • [3] Mechanical properties of electrospun bilayer fibrous membranes as potential scaffolds for tissue engineering
    Pu, Juan
    Komvopoulos, Kyriakos
    ACTA BIOMATERIALIA, 2014, 10 (06) : 2718 - 2726
  • [4] Degradation and Characterisation of Electrospun Polycaprolactone (PCL) and Poly(lactic-co-glycolic acid) (PLGA) Scaffolds for Vascular Tissue Engineering
    Bazgir, Morteza
    Zhang, Wei
    Zhang, Ximu
    Elies, Jacobo
    Saeinasab, Morvarid
    Coates, Phil
    Youseffi, Mansour
    Sefat, Farshid
    MATERIALS, 2021, 14 (17)
  • [5] Aligned PLGA/HA nanofibrous nanocomposite scaffolds for bone tissue engineering
    Jose, Moncy V.
    Thomas, Vinoy
    Johnson, Kalonda T.
    Dean, Derrick R.
    Nyalro, Elijah
    ACTA BIOMATERIALIA, 2009, 5 (01) : 305 - 315
  • [6] In Vitro Comparison Study of Plasma Treated Bilayer PGS/PCL and PGS/PLA Scaffolds for Vascular Tissue Engineering
    Heydari, Parisa
    Parham, Shokoh
    Kharazi, Anousheh Zargar
    Javanmard, Shaghayegh Haghjooy
    Asgary, Seddigheh
    FIBERS AND POLYMERS, 2022, 23 (09) : 2384 - 2393
  • [7] Electrospun Fibrous Scaffolds for Tissue Engineering: Viewpoints on Architecture and Fabrication
    Jun, Indong
    Han, Hyung-Seop
    Edwards, James R.
    Jeon, Hojeong
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2018, 19 (03)
  • [8] PCL/Alginate Composite Scaffolds for Hard Tissue Engineering: Fabrication, Characterization, and Cellular Activities
    Kim, Yong Bok
    Kim, Geun Hyung
    ACS COMBINATORIAL SCIENCE, 2015, 17 (02) : 87 - 99
  • [9] Fabrication and Characterization of Electrospun 75:25 PLGA Nanofibers for Skin Tissue Engineering
    Alnuman, Nasim
    Al-Jafary, Rezan
    Manna, Farah
    Almuhtaseb, Rawan
    2018 IEEE-EMBS CONFERENCE ON BIOMEDICAL ENGINEERING AND SCIENCES (IECBES), 2018, : 560 - 565
  • [10] Fabrication of Biocompatible PLGA/PCL/PANI Nanofibrous Scaffolds with Electrical Excitability
    Farkhondehnia, Houra
    Tehran, Mohammad Amani
    Zamani, Fatemeh
    FIBERS AND POLYMERS, 2018, 19 (09) : 1813 - 1819