Literature DB >> 8405277

Recovery of function after spinal cord injury: mechanisms underlying transplant-mediated recovery of function differ after spinal cord injury in newborn and adult rats.

B S Bregman1, E Kunkel-Bagden, P J Reier, H N Dai, M McAtee, D Gao.   

Abstract

Fetal spinal cord transplants placed into the site of spinal cord injury support axonal growth of host systems in both newborn and adult animals. The amount of axonal growth, however, is much more robust in the newborn animals. The current studies were designed to determine if the differences in the magnitude of the anatomical plasticity of host pathways in the presence of transplants is reflected in differences in recovery of function between the neonatal and adult operates. Newborn and adult rats received a midthoracic "overhemisection." Immediately following the hemisection embryonic (E14) spinal cord transplants were placed into the lesion site. All animals were trained and tested as adults, on a battery of qualitative and quantitative tests of motor function. Immunocytochemical methods were used to compare the extent of growth of descending (serotonergic and noradrenergic) and segmental (calcitonin gene-related peptide containing dorsal root axons) pathways in both groups. The growth of descending pathways into the transplants was substantially greater in density and spatial extent after lesions at birth than at maturity. The distribution of segmental dorsal root axons, in contrast, was similar in both groups. Fetal spinal cord transplants promoted recovery of motor function in both newborn and adult operates. The particular aspects of locomotor function which recover differ between the neonatal and adult operates, suggesting that the mechanisms underlying recovery of function must differ between the two groups.

Entities:  

Mesh:

Year:  1993        PMID: 8405277     DOI: 10.1006/exnr.1993.1136

Source DB:  PubMed          Journal:  Exp Neurol        ISSN: 0014-4886            Impact factor:   5.330


  41 in total

1.  Marrow stromal cells form guiding strands in the injured spinal cord and promote recovery.

Authors:  C P Hofstetter; E J Schwarz; D Hess; J Widenfalk; A El Manira; Darwin J Prockop; L Olson
Journal:  Proc Natl Acad Sci U S A       Date:  2002-02-19       Impact factor: 11.205

Review 2.  Gene therapy approaches to enhancing plasticity and regeneration after spinal cord injury.

Authors:  Steffen Franz; Norbert Weidner; Armin Blesch
Journal:  Exp Neurol       Date:  2011-01-31       Impact factor: 5.330

3.  Cellular delivery of neurotrophin-3 promotes corticospinal axonal growth and partial functional recovery after spinal cord injury.

Authors:  R Grill; K Murai; A Blesch; F H Gage; M H Tuszynski
Journal:  J Neurosci       Date:  1997-07-15       Impact factor: 6.167

4.  Modulation of dendritic spine remodeling in the motor cortex following spinal cord injury: effects of environmental enrichment and combinatorial treatment with transplants and neurotrophin-3.

Authors:  Byung G Kim; Hai-Ning Dai; Marietta McAtee; Barbara S Bregman
Journal:  J Comp Neurol       Date:  2008-05-20       Impact factor: 3.215

Review 5.  Don't fence me in: harnessing the beneficial roles of astrocytes for spinal cord repair.

Authors:  Robin E White; Lyn B Jakeman
Journal:  Restor Neurol Neurosci       Date:  2008       Impact factor: 2.406

Review 6.  Cell therapy for spinal cord injury by neural stem/progenitor cells derived from iPS/ES cells.

Authors:  Osahiko Tsuji; Kyoko Miura; Kanehiro Fujiyoshi; Suketaka Momoshima; Masaya Nakamura; Hideyuki Okano
Journal:  Neurotherapeutics       Date:  2011-10       Impact factor: 7.620

7.  A Novel Multi-Dimensional Analysis of Rodent Gait Reveals the Compensation Strategies Used during Spontaneous Recovery from Spinal Cord and Traumatic Brain Injury.

Authors:  Nathan D Neckel; Haining Dai; Mark P Burns
Journal:  J Neurotrauma       Date:  2019-11-08       Impact factor: 5.269

Review 8.  Bridging spinal cord injuries.

Authors:  James W Fawcett
Journal:  J Biol       Date:  2008-10-15

9.  Functional recovery and neural differentiation after transplantation of allogenic adipose-derived stem cells in a canine model of acute spinal cord injury.

Authors:  Hak Hyun Ryu; Ji Hey Lim; Ye Eun Byeon; Jeong Ran Park; Min Soo Seo; Young Won Lee; Wan Hee Kim; Kyung Sun Kang; Oh Kyeong Kweon
Journal:  J Vet Sci       Date:  2009-12       Impact factor: 1.672

10.  Strategies for regenerating injured axons after spinal cord injury - insights from brain development.

Authors:  Masaki Ueno; Toshihide Yamashita
Journal:  Biologics       Date:  2008-06
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