Literature DB >> 12450283

Peripheral nerve grafts promoting central nervous system regeneration after spinal cord injury in the primate.

Allan D O Levi1, Hector Dancausse, Xiuming Li, Suzanne Duncan, Laura Horkey, Maria Oliviera.   

Abstract

OBJECT: Partial restoration of hindlimb function in adult rats following spinal cord injury (SCI) has been demonstrated using a variety of transplantation techniques. The purpose of the present study was twofold: 1) to determine whether strategies designed to promote regeneration in the rat can yield similar results in the primate; and 2) to establish whether central nervous system (CNS) regeneration will influence voluntary grasping and locomotor function in the nonhuman primate.
METHODS: Ten cynomologus monkeys underwent T-11 laminectomy and resection of a 1-cm length of hemispinal cord. Five monkeys received six intercostal nerve autografts and fibrin glue containing acidic fibroblast growth factor (2.1 microg/ml) whereas controls underwent the identical laminectomy procedure but did not receive the nerve grafts. At 4 months postgrafting, the spinal cord-graft site was sectioned and immunostained for peripheral myelin proteins, biotinylated dextran amine, and tyrosine hydroxylase, whereas the midpoint of the graft was analyzed histologically for the total number of myelinated axons within and around the grafts. The animals underwent pre- and postoperative testing for changes in voluntary hindlimb grasping and gait.
CONCLUSIONS: 1) A reproducible model of SCI in the primate was developed. 2) Spontaneous recovery of the ipsilateral hindlimb function occurred in both graft- and nongraft-treated monkeys over time without evidence of recovering the ability for voluntary tasks. 3) Regeneration of the CNS from proximal spinal axons into the peripheral nerve grafts was observed; however, the grafts did not promote regeneration beyond the lesion site. 4) The grafts significantly enhanced (p < 0.0001) the regeneration of myelinated axons into the region of the hemisected spinal cord compared with the nongrafted animals.

Entities:  

Mesh:

Substances:

Year:  2002        PMID: 12450283     DOI: 10.3171/spi.2002.96.2.0197

Source DB:  PubMed          Journal:  J Neurosurg        ISSN: 0022-3085            Impact factor:   5.115


  22 in total

1.  In vivo tracing of neural tracts in the intact and injured spinal cord of marmosets by diffusion tensor tractography.

Authors:  Kanehiro Fujiyoshi; Masayuki Yamada; Masaya Nakamura; Junichi Yamane; Hiroyuki Katoh; Kazuya Kitamura; Kenji Kawai; Seiji Okada; Suketaka Momoshima; Yoshiaki Toyama; Hideyuki Okano
Journal:  J Neurosci       Date:  2007-10-31       Impact factor: 6.167

2.  Macro-architectures in spinal cord scaffold implants influence regeneration.

Authors:  Darice Y Wong; Jean-Christophe Leveque; Hunter Brumblay; Paul H Krebsbach; Scott J Hollister; Frank Lamarca
Journal:  J Neurotrauma       Date:  2008-08       Impact factor: 5.269

Review 3.  Cellular transplantation strategies for spinal cord injury and translational neurobiology.

Authors:  Paul J Reier
Journal:  NeuroRx       Date:  2004-10

Review 4.  Peripheral nerve grafts support regeneration after spinal cord injury.

Authors:  Marie-Pascale Côté; Arthi A Amin; Veronica J Tom; John D Houle
Journal:  Neurotherapeutics       Date:  2011-04       Impact factor: 7.620

5.  NT3-chitosan enables de novo regeneration and functional recovery in monkeys after spinal cord injury.

Authors:  Jia-Sheng Rao; Can Zhao; Aifeng Zhang; Hongmei Duan; Peng Hao; Rui-Han Wei; Junkui Shang; Wen Zhao; Zuxiang Liu; Juehua Yu; Kevin S Fan; Zhaolong Tian; Qihua He; Wei Song; Zhaoyang Yang; Yi Eve Sun; Xiaoguang Li
Journal:  Proc Natl Acad Sci U S A       Date:  2018-05-29       Impact factor: 11.205

Review 6.  Schwann cell transplantation and descending propriospinal regeneration after spinal cord injury.

Authors:  Ling-Xiao Deng; Chandler Walker; Xiao-Ming Xu
Journal:  Brain Res       Date:  2014-09-26       Impact factor: 3.252

Review 7.  Leveraging biomedical informatics for assessing plasticity and repair in primate spinal cord injury.

Authors:  Jessica L Nielson; Jenny Haefeli; Ernesto A Salegio; Aiwen W Liu; Cristian F Guandique; Ellen D Stück; Stephanie Hawbecker; Rod Moseanko; Sarah C Strand; Sharon Zdunowski; John H Brock; Roland R Roy; Ephron S Rosenzweig; Yvette S Nout-Lomas; Gregoire Courtine; Leif A Havton; Oswald Steward; V Reggie Edgerton; Mark H Tuszynski; Michael S Beattie; Jacqueline C Bresnahan; Adam R Ferguson
Journal:  Brain Res       Date:  2014-11-04       Impact factor: 3.252

Review 8.  Transplantation-mediated strategies to promote axonal regeneration following spinal cord injury.

Authors:  Xiao-Ming Xu; Stephen M Onifer
Journal:  Respir Physiol Neurobiol       Date:  2009-08-07       Impact factor: 1.931

Review 9.  Stem cell therapies for spinal cord injury.

Authors:  Vibhu Sahni; John A Kessler
Journal:  Nat Rev Neurol       Date:  2010-06-15       Impact factor: 42.937

10.  Expression of p27kip1 and Skp2 in the adult spinal cord following sciatic nerve injury.

Authors:  Shuxian Shi; Chun Cheng; Jian Zhao; Mengling Chen; Jing Qin; Shangfeng Gao; Aiguo Shen
Journal:  J Mol Neurosci       Date:  2007       Impact factor: 3.444

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.