Mechanisms of disease:: what factors limit the success of peripheral nerve regeneration in humans?

被引:259
作者
Hoke, Ahmet [1 ]
机构
[1] Johns Hopkins Univ Hosp, Dept Neurol, Neuromuscular Div, Baltimore, MD 21287 USA
来源
NATURE CLINICAL PRACTICE NEUROLOGY | 2006年 / 2卷 / 08期
关键词
axotomy; chronic denervation; nerve regeneration; Schwann cells;
D O I
10.1038/ncpneuro0262
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Functional recovery after repair of peripheral nerve injury in humans is often suboptimal. Over the past quarter of a century, there have been significant advances in human nerve repair, but most of the developments have been in the optimization of surgical techniques. Despite extensive research, there are no current therapies directed at the molecular mechanisms of nerve regeneration. Multiple interventions have been shown to improve nerve regeneration in small animal models, but have not yet translated into clinical therapies for human nerve injuries. In many rodent models, regeneration occurs over relatively short distances, so the duration of denervation is short. By contrast, in humans, nerves often have to regrow over long distances, and the distal portion of the nerve progressively loses its ability to support regeneration during this process. This can be largely attributed to atrophy of Schwann cells and loss of a Schwann cell basal lamina tube, which results in an extracellular environment that is inhibitory to nerve regeneration. To develop successful molecular therapies for nerve regeneration, we need to generate animal models that can be used to address the following issues: improving the intrinsic ability of neurons to regenerate to increase the speed of axonal outgrowth; preventing loss of basal lamina and chronic denervation changes in the denervated Schwann cells; and overcoming inhibitory cues in the extracellular matrix.
引用
收藏
页码:448 / 454
页数:7
相关论文
共 58 条
[31]   Pathophysiology of nerve injury [J].
Maggi, SP ;
Lowe, JB ;
Mackinnon, SE .
CLINICS IN PLASTIC SURGERY, 2003, 30 (02) :109-+
[32]   INJURY-INDUCED PROTEOGLYCANS INHIBIT THE POTENTIAL FOR LAMININ-MEDIATED AXON GROWTH ON ASTROCYTIC SCARS [J].
MCKEON, RJ ;
HOKE, A ;
SILVER, J .
EXPERIMENTAL NEUROLOGY, 1995, 136 (01) :32-43
[33]   CONDITIONING NERVE CRUSH ACCELERATES CYTOSKELETAL PROTEIN-TRANSPORT IN SPROUTS THAT FORM AFTER A SUBSEQUENT CRUSH [J].
MCQUARRIE, IG ;
JACOB, JM .
JOURNAL OF COMPARATIVE NEUROLOGY, 1991, 305 (01) :139-147
[34]   STRUCTURAL PROTEIN-TRANSPORT IN ELONGATING MOTOR AXONS AFTER SCIATIC-NERVE CRUSH - EFFECT OF A CONDITIONING LESION [J].
MCQUARRIE, IG .
NEUROCHEMICAL PATHOLOGY, 1986, 5 (03) :153-164
[35]   AXONAL REGENERATION IN RAT SCIATIC-NERVE - EFFECT OF A CONDITIONING LESION AND OF DBCAMP [J].
MCQUARRIE, IG ;
GRAFSTEIN, B ;
GERSHON, MD .
BRAIN RESEARCH, 1977, 132 (03) :443-453
[36]   Regeneration of CNS axons back to their target following treatment of adult rat brain with chondroitinase ABC [J].
Moon, LDF ;
Asher, RA ;
Rhodes, KE ;
Fawcett, JW .
NATURE NEUROSCIENCE, 2001, 4 (05) :465-466
[37]   Regeneration of sensory axons within the injured spinal cord induced by intraganglionic cAMP elevation [J].
Neumann, S ;
Bradke, F ;
Tessier-Lavigne, M ;
Basbaum, AI .
NEURON, 2002, 34 (06) :885-893
[38]   Regeneration of dorsal column fibers into and beyond the lesion site following adult spinal cord injury [J].
Neumann, S ;
Woolf, CJ .
NEURON, 1999, 23 (01) :83-91
[39]   Analysis of upper and lower extremity peripheral nerve injuries in a population of patients with multiple injuries [J].
Noble, J ;
Munro, CA ;
Prasad, VSSV ;
Midha, R .
JOURNAL OF TRAUMA-INJURY INFECTION AND CRITICAL CARE, 1998, 45 (01) :116-122
[40]   Spinal axon regeneration induced by elevation of cyclic AMP [J].
Qiu, J ;
Cai, CM ;
Dai, HN ;
McAtee, M ;
Hoffman, PN ;
Bregman, BS ;
Filbin, MT .
NEURON, 2002, 34 (06) :895-903