The impact of motor and sensory nerve architecture on nerve regeneration

被引:128
作者
Moradzadeh, Arash [2 ]
Borschel, Gregory H.
Luciano, Janina P.
Whitlock, Elizabeth L.
Hayashi, Ayato
Hunter, Daniel A.
Mackinnon, Susan E. [1 ,2 ]
机构
[1] Washington Univ, Sch Med, Div Plast Surg, Div Plast & Reconstruct Surg, St Louis, MO 63110 USA
[2] Washington Univ, Dept Otolaryngol Head & Neck Surg, St Louis, MO 63110 USA
关键词
nerve regeneration; peripheral nerve; motor nerve; preferential motor reinnervation; nerve architecture; acellularized nerve; nerve graft; sensory nerve; nerve transfer;
D O I
10.1016/j.expneurol.2008.04.012
中图分类号
Q189 [神经科学];
学科分类号
071006 [神经生物学];
摘要
Sensory nerve autografting is the standard of care for injuries resulting in a nerve gap. Recent work demonstrates superior regeneration with motor nerve grafts. Improved regeneration with motor grafting may be a result of the nerve's Schwann cell basal lamina tube size. Motor nerves have larger SC basal lamina tubes, which may allow More nerve fibers to cross a nerve graft repair. Architecture may partially explain the suboptimal clinical results seen with sensory nerve grafting techniques. To define the role of nerve architecture, we evaluated regeneration through acellular motor and sensory nerve grafts. Thirty-six Lewis rats underwent tibial nerve repairs with 5 mm double-cable motor or triple-cable sensory nerve isografts. Grafts were harvested and acellularized in University of Wisconsin solution. Control animals received fresh Motor or sensory cable isografts. Nerves were harvested after 4 weeks and histomorphometry was performed. In 6 animals per group from the fresh motor and sensory cable graft groups, weekly walking tracks and wet muscle mass ratios were performed at 7 weeks. Histomorphometry revealed more robust nerve regeneration in both acellular and cellular motor grafts. Sensory groups showed poor regeneration with significantly decreased percent nerve, fiber count, and density (p<0.05). Walking tracks revealed a trend toward improved functional recovery in the motor group. Gastrocnemius wet muscle mass ratios show a significantly greater muscle mass recovery in the motor group (p<0.05). Nerve architecture (size of SC basal lamina tubes) plays an important role in nerve regeneration in a mixed nerve gap model. (C) 2008 Elsevier Inc. All rights reserved.
引用
收藏
页码:370 / 376
页数:7
相关论文
共 57 条
[1]
ARAKAWA Y, 1990, J NEUROSCI, V10, P3507
[2]
FUNCTIONAL-EVALUATION OF COMPLETE SCIATIC, PERONEAL, AND POSTERIOR TIBIAL NERVE LESIONS IN THE RAT [J].
BAIN, JR ;
MACKINNON, SE ;
HUNTER, DA .
PLASTIC AND RECONSTRUCTIVE SURGERY, 1989, 83 (01) :129-136
[3]
Motoneurons crave glial cell line-derived neurotrophic factor [J].
Bohn, MC .
EXPERIMENTAL NEUROLOGY, 2004, 190 (02) :263-275
[4]
60 LATISSIMUS-DORSI FLAPS [J].
BOSTWICK, J ;
NAHAI, F ;
WALLACE, JG ;
VASCONEZ, LO .
PLASTIC AND RECONSTRUCTIVE SURGERY, 1979, 63 (01) :31-41
[5]
A TECHNIQUE FOR MAXIMIZING BICEPS RECOVERY IN BRACHIAL-PLEXUS RECONSTRUCTION [J].
BRANDT, KE ;
MACKINNON, SE .
JOURNAL OF HAND SURGERY-AMERICAN VOLUME, 1993, 18A (04) :726-733
[6]
Role of timing in assessment of nerve regeneration [J].
Brenner, Michael J. ;
Moradzadeh, Arash ;
Myckatyn, Terence M. ;
Tung, Thomas H. H. ;
Mendez, Allen B. ;
Hunter, Daniel A. ;
Mackinnon, Susan E. .
MICROSURGERY, 2008, 28 (04) :265-272
[7]
Repair of motor nerve gaps with sensory nerve inhibits regeneration in rats [J].
Brenner, Michael J. ;
Hess, Jason R. ;
Myckatyn, Terence M. ;
Hayashi, Ayato ;
Hunter, Daniel A. ;
Mackinnon, Susan E. .
LARYNGOSCOPE, 2006, 116 (09) :1685-1692
[8]
Effects of Schwann cells and donor antigen on long-nerve allograft regeneration [J].
Brenner, MJ ;
Lowe, JB ;
Fox, IK ;
Mackinnon, SE ;
Hunter, DA ;
Darcy, MD ;
Duncan, JR ;
Wood, P ;
Mohanakumar, T .
MICROSURGERY, 2005, 25 (01) :61-70
[9]
SELF-EVALUATION OF WALKING-TRACK MEASUREMENT USING A SCIATIC FUNCTION INDEX [J].
BROWN, CJ ;
MACKINNON, SE ;
EVANS, PJ ;
BAIN, JR ;
MAKINO, AP ;
HUNTER, DA ;
HARE, GMT .
MICROSURGERY, 1989, 10 (03) :226-235
[10]
BROWN MC, 1981, J PHYSIOL-LONDON, V318, P365