Cellulose acetate core-shell structured electrospun fiber: fabrication and characterization

被引:50
作者
Khalf, Abdurizzagh [1 ]
Singarapu, Kumar [1 ]
Madihally, Sundararajan V. [1 ]
机构
[1] Oklahoma State Univ, Sch Chem Engn, Stillwater, OK 74078 USA
关键词
Polymers; Mechanical properties; Electrospinning; Scanning electron microscopy; Rheology; STEM-CELLS; BIOACTIVE AGENTS; SOLVENT SYSTEM; DRUG-RELEASE; PORE-SIZE; TISSUE; NANOFIBERS; MEMBRANES; GELATIN; DELIVERY;
D O I
10.1007/s10570-015-0555-9
中图分类号
TB3 [工程材料学]; TS [轻工业、手工业、生活服务业];
学科分类号
0805 ; 080502 ; 0822 ;
摘要
This study explored the effect of type of core fluids on the fabrication of hollow and core-sheath cellulose acetate (CA) fiber. Tailoring the CA fiber with desirable features such as reinforced core, porous and hollow structure provides unique features for use in various applications. Fibers with such characteristics can be used for better controlled release drug delivery system or to promote cell adhesion in tissue engineering. Type of core material, tensile strength, and rheological properties were evaluated. DSC and FTIR analysis were performed to confirm the presence of core and sheath components. CA hollow structures were successfully obtained after selectively extracting the mineral oil. CA hollow fibers were twice the size of solid fiber despite similar solution and process conditions. Fiber morphologies indicated incomplete encapsulation by the CA when 80 kDa PCL molecular weight was used. This problem was not observed with 43 and 10 kDa PCL. DSC and FTIR analyses showed presence of both PCL and CA components. The rheology results suggest that the fibers could be formed when the viscosity of the core is less than that of sheath. Hydrated CA-43 kDa PCL fibers showed nearly ten-fold improvement in break point and stiffness. Human umbilical vein endothelial cells showed increased attachment and viability in both hollow CA and CA-PCL fibers relative to tissue culture plastic.
引用
收藏
页码:1389 / 1400
页数:12
相关论文
共 37 条
[1]   Effect of electrospinning parameters on the nanofiber diameter and length [J].
Beachley, Vince ;
Wen, Xuejun .
MATERIALS SCIENCE & ENGINEERING C-BIOMIMETIC AND SUPRAMOLECULAR SYSTEMS, 2009, 29 (03) :663-668
[2]   Cellulose/chitosan hybrid nanofibers from electrospinning of their ester derivatives [J].
Du, Jian ;
Hsieh, You-Lo .
CELLULOSE, 2009, 16 (02) :247-260
[3]  
Elahi W.L. Md. Fazley., 2013, Bioengineering Biomedical Sciences, V3, P2155
[4]   Development of silver-containing nanocellulosics for effective water disinfection [J].
Gouda, M. ;
Hebeish, A. A. ;
Al-Omair, M. A. .
CELLULOSE, 2014, 21 (03) :1965-1974
[5]  
Hong JK, 2011, TISSUE ENG PART B-RE, V17, P125, DOI [10.1089/ten.teb.2010.0552, 10.1089/ten.TEB.2010.0552]
[6]   Analysis of void shape and size in the collector plate and polycaprolactone molecular weight on electrospun scaffold pore size [J].
Hong, Jong Kyu ;
Xu, Guan ;
Piao, Daqing ;
Madihally, Sundararajan V. .
JOURNAL OF APPLIED POLYMER SCIENCE, 2013, 128 (03) :1583-1591
[7]   Three-dimensional scaffold of electrosprayed fibers with large pore size for tissue regeneration [J].
Hong, Jong Kyu ;
Madihally, Sundararajan V. .
ACTA BIOMATERIALIA, 2010, 6 (12) :4734-4742
[8]   Increased matrix synthesis by fibroblasts with decreased proliferation on synthetic chitosan-gelatin porous structures [J].
Iyer, Pooja ;
Walker, Kenneth J. ;
Madihally, Sundararajan V. .
BIOTECHNOLOGY AND BIOENGINEERING, 2012, 109 (05) :1314-1325
[9]   THERMAL-ANALYSIS OF CELLULOSE-ACETATE SOLIDS WITH TOTAL DEGREES OF SUBSTITUTION OF 0.49, 1.75, 2.46, AND 2.92 [J].
KAMIDE, K ;
SAITO, M .
POLYMER JOURNAL, 1985, 17 (08) :919-928
[10]   Electrospun Nanofibrous Materials for Neural Tissue Engineering [J].
Lee, Yee-Shuan ;
Arinzeh, Treena Livingston .
POLYMERS, 2011, 3 (01) :413-426