Literature DB >> 24747827

A re-assessment of long distance growth and connectivity of neural stem cells after severe spinal cord injury.

Kelli G Sharp1, Kelly Matsudaira Yee1, Oswald Steward2.   

Abstract

As part of the NIH "Facilities of Research Excellence-Spinal Cord Injury" project to support independent replication, we repeated key parts of a study reporting robust engraftment of neural stem cells (NSCs) treated with growth factors after complete spinal cord transection in rats. Rats (n=20) received complete transections at thoracic level 3 (T3) and 2weeks later received NSC transplants in a fibrin matrix with a growth factor cocktail using 2 different transplantation methods (with and without removal of scar tissue). Control rats (n=9) received transections only. Hindlimb locomotor function was assessed with the BBB scale. Nine weeks post injury, reticulospinal tract axons were traced in 6 rats by injecting BDA into the reticular formation. Transplants grew to fill the lesion cavity in most rats although grafts made with scar tissue removal had large central cavities. Grafts blended extensively with host tissue obliterating the astroglial boundary at the cut ends, but in most cases there was a well-defined partition within the graft that separated rostral and caudal parts of the graft. In some cases, the partition contained non-neuronal scar tissue. There was extensive outgrowth of GFP labeled axons from the graft, but there was minimal ingrowth of host axons into the graft revealed by tract tracing and immunocytochemistry for 5HT. There were no statistically significant differences between transplant and control groups in the degree of locomotor recovery. Our results confirm the previous report that NSC transplants can fill lesion cavities and robustly extend axons, but reveal that most grafts do not create a continuous bridge of neural tissue between rostral and caudal segments.
Copyright © 2014 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  5HT; Axon regeneration; Axonal growth; BBB scale; Fibrin; Motor system; Rat; Recovery of function; Reticulospinal tract; Serotonin; Spinal cord injury; Sprouting; Thrombin

Mesh:

Substances:

Year:  2014        PMID: 24747827      PMCID: PMC4123968          DOI: 10.1016/j.expneurol.2014.04.008

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


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Review 1.  The Nogo signaling pathway for regeneration block.

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2.  Comparison of the growth and fate of fetal spinal iso- and allografts in the adult rat injured spinal cord.

Authors:  D P Theele; G W Schrimsher; P J Reier
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3.  Long-distance migration and colonization of transplanted neural stem cells.

Authors:  Oswald Steward; Kelli G Sharp; Kelly Matsudaira Yee
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5.  A sensitive and reliable locomotor rating scale for open field testing in rats.

Authors:  D M Basso; M S Beattie; J C Bresnahan
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6.  Axonal elongation into peripheral nervous system "bridges" after central nervous system injury in adult rats.

Authors:  S David; A J Aguayo
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7.  Transplants of fibroblasts genetically modified to express BDNF promote axonal regeneration from supraspinal neurons following chronic spinal cord injury.

Authors:  Ying Jin; Itzhak Fischer; Alan Tessler; John D Houle
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8.  Axonal projections between fetal spinal cord transplants and the adult rat spinal cord: a neuroanatomical tracing study of local interactions.

Authors:  L B Jakeman; P J Reier
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10.  Intraspinal transplantation of embryonic spinal cord tissue in neonatal and adult rats.

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