Controlled release of vascular endothelial growth factor by use of collagen hydrogels

被引:111
作者
Tabata, Y [1 ]
Miyao, M
Ozeki, M
Ikada, Y
机构
[1] Kyoto Univ, Inst Frontier Med Sci, Kyoto, Japan
[2] Suzuka Univ Med Sci, Mie, Japan
关键词
VEGF; collagen hydrogel; controlled release; hydrogel degradation; vascularization;
D O I
10.1163/156856200744101
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
In vivo profile of vascular endothelial growth factor (VEGF) release from collagen hydrogels was investigated comparing that of hydrogel degradation while angiogenesis induced by the released VEGF was assessed. Collagen sponges were chemically cross-linked with different amounts of glutaraldehyde for various time periods. When I-125-labeled collagen hydrogels incorporating VEGF were subcutaneously implanted into the back subcutis of mice, the hydrogel radioactivity decreased with time, the decrement profile depending on the cross-linking conditions. The radioactivity was retained for longer time periods as the glutaraldehyde concentration and cross-linking time increased. Implantation study of collagen hydrogels incorporating 125I-labeled VEGF revealed that the remaining VEGF radioactivity decreased with time and the retention period was prolonged with the decreased hydrogel biodegradation. The slower the hydrogel degradation, the longer the period of VEGF retention. The collagen hydrogel incorporating VEGF induced significant angiogenesis around the implanted hydrogel, in marked contrast to VEGF in the solution form and VEGF-free empty hydrogel. The retention period of angiogenesis became longer with a decrease of the in vivo degradation rate of hydrogels. It is possible that the slower degraded hydrogel achieves a longer period of VEGF release, resulting in prolonged angiogenetic effect. We concluded that in our hydrogel system, biologically-active VEGF was released as a result of in vivo degradation of the hydrogel.
引用
收藏
页码:915 / 930
页数:16
相关论文
共 28 条
[1]   Angiogenic growth factors: A review for tissue engineering [J].
Ahrendt, G ;
Chickering, DE ;
Ranieri, JP .
TISSUE ENGINEERING, 1998, 4 (02) :117-130
[2]   IMPLANTABLE BIOHYBRID ARTIFICIAL ORGANS [J].
COLTON, CK .
CELL TRANSPLANTATION, 1995, 4 (04) :415-436
[3]   HEPARIN-FIBROBLAST GROWTH FACTOR-FIBRIN COMPLEX - IN-VITRO AND IN-VIVO APPLICATIONS TO COLLAGEN-BASED MATERIALS [J].
DEBLOIS, C ;
COTE, MF ;
DOILLON, CJ .
BIOMATERIALS, 1994, 15 (09) :665-672
[4]   CONTROLLED AND MODULATED RELEASE OF BASIC FIBROBLAST GROWTH-FACTOR [J].
EDELMAN, ER ;
MATHIOWITZ, E ;
LANGER, R ;
KLAGSBRUN, M .
BIOMATERIALS, 1991, 12 (07) :619-626
[5]   STRUCTURAL CHARACTERIZATION AND BIOLOGICAL FUNCTIONS OF FIBROBLAST GROWTH-FACTOR [J].
GOSPODAROWICZ, D ;
FERRARA, N ;
SCHWEIGERER, L ;
NEUFELD, G .
ENDOCRINE REVIEWS, 1987, 8 (02) :95-114
[6]  
GOTO F, 1993, LAB INVEST, V69, P508
[7]   MECHANOCHEMICAL SWITCHING BETWEEN GROWTH AND DIFFERENTIATION DURING FIBROBLAST GROWTH FACTOR-STIMULATED ANGIOGENESIS INVITRO - ROLE OF EXTRACELLULAR-MATRIX [J].
INGBER, DE ;
FOLKMAN, J .
JOURNAL OF CELL BIOLOGY, 1989, 109 (01) :317-330
[8]   REGULATORS OF ANGIOGENESIS [J].
KLAGSBRUN, M .
ANNUAL REVIEW OF PHYSIOLOGY, 1991, 53 :217-239
[9]   POTENT ANTI-ANGIOGENIC ACTION OF AGM-1470 - COMPARISON TO THE FUMAGILLIN PARENT [J].
KUSAKA, M ;
SUDO, K ;
FUJITA, T ;
MARUI, S ;
ITOH, F ;
INGBER, D ;
FOLKMAN, J .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1991, 174 (03) :1070-1076
[10]   Collagen-binding growth factors: Production and characterization of functional fusion proteins having a collagen-binding domain [J].
Nishi, N ;
Matsushita, O ;
Yuube, K ;
Miyanaka, H ;
Okabe, A ;
Wada, F .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (12) :7018-7023