Peripheral Nerve Grafts Support Regeneration after Spinal Cord Injury

被引:49
|
作者
Cote, Marie-Pascale [1 ]
Amin, Arthi A. [1 ]
Tom, Veronica J. [1 ]
Houle, John D. [1 ]
机构
[1] Drexel Univ, Spinal Cord Res Ctr, Dept Neurobiol & Anat, Coll Med, Philadelphia, PA 19129 USA
基金
美国国家卫生研究院;
关键词
Spinal cord injury; peripheral nerve graft; axon regeneration; transplantation; neuroplasticity; chondroitinase; PROMOTE AXONAL REGENERATION; MESSENGER-RNA EXPRESSION; ADULT PARAPLEGIC RATS; SCHWANN-CELL GRAFTS; BETA-II-TUBULIN; RUBROSPINAL NEURONS; ACELLULAR AUTOGRAFTS; NEUROTROPHIC FACTORS; GUIDANCE CHANNELS; SENSORY AXONS;
D O I
10.1007/s13311-011-0024-6
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Traumatic insults to the spinal cord induce both immediate mechanical damage and subsequent tissue degeneration leading to a substantial physiological, biochemical, and functional reorganization of the spinal cord. Various spinal cord injury (SCI) models have shown the adaptive potential of the spinal cord and its limitations in the case of total or partial absence of supraspinal influence. Meaningful recovery of function after SCI will most likely result from a combination of therapeutic strategies, including neural tissue transplants, exogenous neurotrophic factors, elimination of inhibitory molecules, functional sensorimotor training, and/or electrical stimulation of paralyzed muscles or spinal circuits. Peripheral nerve grafts provide a growth-permissive substratum and local neurotrophic factors to enhance the regenerative effort of axotomized neurons when grafted into the site of injury. Regenerating axons can be directed via the peripheral nerve graft toward an appropriate target, but they fail to extend beyond the distal graft-host interface because of the deposition of growth inhibitors at the site of SCI. One method to facilitate the emergence of axons from a graft into the spinal cord is to digest the chondroitin sulfate proteoglycans that are associated with a glial scar. Importantly, regenerating axons that do exit the graft are capable of forming functional synaptic contacts. These results have been demonstrated in acute injury models in rats and cats and after a chronic injury in rats and have important implications for our continuing efforts to promote structural and functional repair after SCI.
引用
收藏
页码:294 / 303
页数:10
相关论文
共 50 条
  • [41] Cortical plasticity and nerve regeneration after peripheral nerve injury
    Li, Ci
    Liu, Song-Yang
    Pi, Wei
    Zhang, Pei-Xun
    NEURAL REGENERATION RESEARCH, 2021, 16 (08) : 1518 - 1523
  • [42] Nutritional Support After Spinal Cord Injury
    Dhall, Sanjay S.
    Hadley, Mark N.
    Aarabi, Bizhan
    Gelb, Daniel E.
    Hurlbert, R. John
    Rozzelle, Curtis J.
    Ryken, Timothy C.
    Theodore, Nicholas
    Walters, Beverly C.
    NEUROSURGERY, 2013, 72 : 255 - 259
  • [43] Nutritional support after spinal cord injury
    Hadley, MN
    NEUROSURGERY, 2002, 50 (03) : S81 - S84
  • [44] Regeneration of immature mammalian spinal cord after injury
    Nicholls, J
    Saunders, N
    TRENDS IN NEUROSCIENCES, 1996, 19 (06) : 229 - 234
  • [45] Regeneration of immature mammalian spinal cord after injury
    Nicholls, JG
    JOURNAL OF NEUROCHEMISTRY, 1997, 69 : S261 - S261
  • [46] PERIPHERAL NERVE DEGENERATION FOLLOWING ACUTE SPINAL CORD INJURY
    White, Christopher
    Sayko, Oksana
    Riley, Danny
    William, Waring
    MUSCLE & NERVE, 2015, 52 : S129 - S129
  • [47] The Role of Biomaterials in Peripheral Nerve and Spinal Cord Injury: A Review
    Kaplan, Ben
    Levenberg, Shulamit
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2022, 23 (03)
  • [48] DIRECTING AXON REGENERATION AFTER SPINAL CORD INJURY
    Jin, Ying
    Smith, George
    JOURNAL OF NEUROTRAUMA, 2009, 26 (08) : A9 - A9
  • [49] UROTHELIAL HYPERPLASIA AND REGENERATION AFTER SPINAL CORD INJURY
    Kullmann, F. Aura
    Clayton, Dennis
    Apodaca, Gerard
    Zabbarova, Irina
    Ikeda, Youko
    Kanai, Anthony
    Birder, Lori
    JOURNAL OF UROLOGY, 2016, 195 (04): : E416 - E416
  • [50] Regeneration of a transected peripheral nerve by transplantation of spinal cord encapsulated in a vein
    Klinge, PM
    Groos, S
    Wewetzer, K
    Haastert, K
    Rosahl, S
    Vafa, MA
    Hosseini, H
    Samii, M
    Brinker, T
    NEUROREPORT, 2001, 12 (06) : 1271 - 1275