EFFECT OF BASIC FIBROBLAST GROWTH-FACTOR AND ALPHA-MELANOCYTIC STIMULATING HORMONE ON NERVE REGENERATION THROUGH A COLLAGEN CHANNEL

被引:57
作者
LAQUERRIERE, A
PEULVE, P
JIN, O
TIOLLIER, J
TARDY, M
VAUDRY, H
HEMET, J
TADIE, M
机构
[1] Pathology Laboratory, Charles Nicolle Hospital, Rouen
[2] Experimental Neurosurgery Laboratory, UER de Médecine, Rouvray
[3] IMEDEX, Chaponost
[4] European Institute for Peptide Research, Laboratory of Molecular Endocrinology, CNRS URA, UA INSERM, University of Rouen-Mont Saint Aignan
关键词
D O I
10.1002/micr.1920150312
中图分类号
R61 [外科手术学];
学科分类号
摘要
An experimental study on the rat sciatic nerve was performed to evaluate nerve regeneration through a collagen guide and to study the effects of alpha-melanocytic stimulating hormone (alpha-MSH) and basic fibroblast growth factor (b-FGF) in accelerating axonal elongation. After transection, nerves were repaired over a 7 mm gap using a placental collagen type IV guide. The channel was filled with either a b-FGF solution or an alpha-MSH solution or was produced with b-FGF incorporated into the guide. Four weeks later, only groups in which b-FGF had been injected or incorporated displayed a significant somatosensory evoked potential response. Histological and quantitative analysis of nerve fibres confirmed the existence of nerve continuity in groups receiving an alpha-MSH solution or a channel containing b-FGF. These results demonstrate that alpha-MSH in solution and b-FGF incorporated into a collagen type IV channel enhance peripheral nerve regeneration. However, at 4 weeks, only b-FGF (3 ng) restores functional activity. (C) 1994 Wiley-Liss, Inc.
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页码:203 / 210
页数:8
相关论文
共 27 条
[1]  
Lundborg G, Gelberman RH, Longo FM, Powell HC, Varon S, In vivo regeneration of cut nerves encased in silicone tubes, Journal of Neuropathology and Experimental Neurology, 41, pp. 412-422, (1982)
[2]  
Molander H, Olsson Y, Engkvist O, Bowald S, Eriksson I, Regeneration of peripheral nerve through a polyglactin tube, Muscle and Neeve, 5, pp. 54-57, (1982)
[3]  
Uzman BG, Villegas GM, Mouse sciatic nerve regeneration through semipermeable tubes: A quantitative model, Journal of Neuroscience Research, 9, pp. 325-338, (1983)
[4]  
Dellon AL, Mackinnon SE, An alternative to the classical nerve graft for the management of the short nerve gap, Plastic and Reconstructive Surgery, 82, pp. 849-856, (1988)
[5]  
Archibald SJ, Krarup C, Shefner J, Li ST, Madison RD, A collagenbased nerve guide conduit for peripheral nerve repair: An electrophysiological study of nerve regeneration in rodents and nonhuman primates, Journal of Comparative Neurology, 306, pp. 685-696, (1991)
[6]  
Fine EG, Valentini RF, Bellamkonda R, Aebischer P, Improved nerve regeneration through piezoelectric vinylidenefluoride‐trifluorthylene copolymer guidance channels, Biomaterials, 12, pp. 775-780, (1991)
[7]  
Lundborg G, Longo FM, Varon S, Nerve regeneration model and tmphic factors in vivo, Brain Research, 232, pp. 157-161, (1982)
[8]  
Cordeiro PG, Seckel BR, Lipton SA, D'Amore PA, Wagner J, Madison R, Acidic fibroblast growth factor enhances peripheral nerve regeneration in vivo, Plastic and Reconsrrucrive Surgery, 83, pp. 1013-1019, (1989)
[9]  
Danielsen N, Pettmann B, Vahlsing HL, Manthorpe M, Varon S, Fibroblast growth factor effects on peripheral nerve regeneration in a silicone chamber model, Journal of Neuroscience Research, 20, pp. 320-330, (1988)
[10]  
Aebischer P, Salessiotis AN, Winn SR, Basic fibroblast growth factor released from synthetic guidance channels facilitates peripheral nerve regeneration across long nerve gaps, Journal of Neuroscience Research, 23, pp. 282-289, (1989)