Controlled fabrication of a biological vascular substitute

被引:305
作者
Stitzel, J
Liu, L
Lee, SJ
Komura, M
Berry, J
Soker, S
Lim, G
Van Dyke, M
Czerw, R
Yoo, JJ
Atala, A
机构
[1] Wake Forest Univ, Sch Biomed Engn & Sci, Virginia Tech, Winston Salem, NC 27109 USA
[2] NanoTechLabs Inc, Winston Salem, NC USA
[3] Wake Forest Univ, Wake Forest Inst Regenerat Med, Winston Salem, NC 27109 USA
关键词
collagen; elastin; electrospinning; mechanical properties; scaffold; vascular grafts;
D O I
10.1016/j.biomaterials.2005.07.048
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Autologous and synthetic vessel grafts have been used as a vascular substitute for cardiovascular bypass procedures. However, these materials are limited by the availability of appropriate caliber autologous vessels, increased susceptibility to thrombosis and intimal hyperplasia following surgery. Electrospinning technology offers the potential for controlling composition, structure and mechanical properties of biomaterials. Vascular graft scaffolds have been fabricated using electrospun polymer blends of Type I collagen, elastin from ligamentum nuchae, and Poly (D,-lactide-co-glycolide). This study demonstrates improved electrospinning characteristics versus previous studies by increasing polymer concentration and adding PLGA to the polymer blend. Additionally, new in vitro biocompatibility and mechanical testing data is presented. The scaffolds possess tissue composition and mechanical properties similar to native vessels. The electrospun vessel matrix is biocompatible and does not elicit local or systemic toxic effects when implanted in vivo. This study demonstrates the promise of electrospinning as a fabrication process for a functional vascular graft for clinical use. (c) 2005 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1088 / 1094
页数:7
相关论文
共 24 条
[1]   SMALL INTESTINAL SUBMUCOSA AS A LARGE DIAMETER VASCULAR GRAFT IN THE DOG [J].
BADYLAK, SF ;
LANTZ, GC ;
COFFEY, A ;
GEDDES, LA .
JOURNAL OF SURGICAL RESEARCH, 1989, 47 (01) :74-80
[2]   HEALING OF ARTERIAL PROSTHESES IN MAN - ITS INCOMPLETENESS [J].
BERGER, K ;
WOOD, SJ ;
SAUVAGE, LR ;
RAO, AM .
ANNALS OF SURGERY, 1972, 175 (01) :118-&
[3]   Electrospinning collagen and elastin: Preliminary vascular tissue engineering [J].
Boland, ED ;
Matthews, JA ;
Pawlowski, KJ ;
Simpson, DG ;
Wnek, GE ;
Bowlin, GL .
FRONTIERS IN BIOSCIENCE-LANDMARK, 2004, 9 :1422-1432
[4]   Controlling the fiber diameter during electrospinning [J].
Fridrikh, SV ;
Yu, JH ;
Brenner, MP ;
Rutledge, GC .
PHYSICAL REVIEW LETTERS, 2003, 90 (14) :4
[5]   Engineered collagen-PEO nanofibers and fabrics [J].
Huang, L ;
Nagapudi, K ;
Apkarian, RP ;
Chaikof, EL .
JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION, 2001, 12 (09) :979-993
[6]   Remodeling of an acellular collagen graft into a physiologically responsive neovessel [J].
Huynh, T ;
Abraham, G ;
Murray, J ;
Brockbank, K ;
Hagen, PO ;
Sullivan, S .
NATURE BIOTECHNOLOGY, 1999, 17 (11) :1083-1086
[7]   Functional small-diameter neovessels created using endothelial progenitor cells expanded ex vivo [J].
Kaushal, S ;
Amiel, GE ;
Guleserian, KJ ;
Shapira, OM ;
Perry, T ;
Sutherland, FW ;
Rabkin, E ;
Moran, AM ;
Schoen, FJ ;
Atala, A ;
Soker, S ;
Bischoff, J ;
Mayer, JE .
NATURE MEDICINE, 2001, 7 (09) :1035-1040
[8]   Electrospinning of poly(ethylene-co-vinyl alcohol) fibers [J].
Kenawy, ER ;
Layman, JM ;
Watkins, JR ;
Bowlin, GL ;
Matthews, JA ;
Simpson, DG ;
Wnek, GE .
BIOMATERIALS, 2003, 24 (06) :907-913
[9]   Electrospun nanofibrous polyurethane membrane as wound dressing [J].
Khil, MS ;
Cha, DI ;
Kim, HY ;
Kim, IS ;
Bhattarai, N .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2003, 67B (02) :675-679
[10]   Incorporation and controlled release of a hydrophilic antibiotic using poly(lactide-co-glycolide)-based electrospun nanofibrous scaffolds [J].
Kim, K ;
Luu, YK ;
Chang, C ;
Fang, DF ;
Hsiao, BS ;
Chu, B ;
Hadjiargyrou, M .
JOURNAL OF CONTROLLED RELEASE, 2004, 98 (01) :47-56