Literature DB >> 16629615

Degenerative and spontaneous regenerative processes after spinal cord injury.

Theo Hagg1, Martin Oudega.   

Abstract

Spinal cord injury results in acute as well as progressive secondary destruction of local and distant nervous tissue through a number of degenerative mechanisms. Spinal cord injury also initiates a number of endogenous neuroprotective and regenerative responses. Understanding of these mechanisms might identify potential targets for treatments after spinal cord injury in humans. Here, we first discuss recent developments in our understanding of the immediate traumatic and subsequent secondary degeneration of local tissue and long projecting pathways in animal models. These include the inflammatory and vascular responses during the acute phase, as well as cell death, demyelination and scar formation in the subacute and chronic phases. Secondly, we discuss the spontaneous axonal regeneration of injured and plasticity of uninjured systems, and other repair-related responses in animals, including the upregulation of regeneration-associated genes in some neurons, increases in neurotrophic factors in the spinal cord and remyelination by oligodendrocyte precursors and invading Schwann cells. Lastly, we comment on the still limited understanding of the neuropathology in humans, which is largely similar to that in rodents. However, there also are potentially important differences, including the reduced glial scarring, inflammation and demyelination, the increased Schwannosis and the protracted Wallerian degeneration in humans. The validity of current rodent models for human spinal cord injury is also discussed. The emphasis of this review is on the literature from 2002 to early 2005.

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Year:  2006        PMID: 16629615     DOI: 10.1089/neu.2006.23.263

Source DB:  PubMed          Journal:  J Neurotrauma        ISSN: 0897-7151            Impact factor:   5.269


  111 in total

1.  Attenuating the endoplasmic reticulum stress response improves functional recovery after spinal cord injury.

Authors:  Sujata Saraswat Ohri; Melissa A Maddie; Yongmei Zhao; Mengsheng S Qiu; Michal Hetman; Scott R Whittemore
Journal:  Glia       Date:  2011-06-02       Impact factor: 7.452

Review 2.  Reactive astrogliosis after spinal cord injury-beneficial and detrimental effects.

Authors:  Soheila Karimi-Abdolrezaee; Rohini Billakanti
Journal:  Mol Neurobiol       Date:  2012-06-09       Impact factor: 5.590

3.  Lentiviral Vector-Mediated p27kip1 Expression Facilitates Recovery After Spinal Cord Injury.

Authors:  Min-Hao Chen; Yong-Hua Liu; Hua Xu; Da-Wei Xu; Cheng-Niu Wang; Yi- Wang; Cheng-Wei Duan; Ying Zhou; Peng Kan; Ai-Guo Shen; You-Hua Wang
Journal:  Mol Neurobiol       Date:  2015-11-02       Impact factor: 5.590

4.  Aspiration of a cervical spinal contusion injury in preparation for delayed peripheral nerve grafting does not impair forelimb behavior or axon regeneration.

Authors:  Harra R Sandrow; Jed S Shumsky; Arthi Amin; John D Houle
Journal:  Exp Neurol       Date:  2007-12-15       Impact factor: 5.330

5.  Vascular Pathology as a Potential Therapeutic Target in SCI.

Authors:  Richard L Benton; Theo Hagg
Journal:  Transl Stroke Res       Date:  2011-11-29       Impact factor: 6.829

6.  High-frequency epidural stimulation across the respiratory cycle evokes phrenic short-term potentiation after incomplete cervical spinal cord injury.

Authors:  Elisa J Gonzalez-Rothi; Kristi A Streeter; Marie H Hanna; Anna C Stamas; Paul J Reier; David M Baekey; David D Fuller
Journal:  J Neurophysiol       Date:  2017-06-14       Impact factor: 2.714

7.  Transplantation of Human Amniotic Mesenchymal Stem Cells Promotes Functional Recovery in a Rat Model of Traumatic Spinal Cord Injury.

Authors:  Hong-Long Zhou; Xue-Jun Zhang; Mao-Ying Zhang; Zhong-Jie Yan; Zhi-Min Xu; Ru-Xiang Xu
Journal:  Neurochem Res       Date:  2016-06-28       Impact factor: 3.996

Review 8.  Mesenchymal Stem Cell-Macrophage Choreography Supporting Spinal Cord Repair.

Authors:  Inés Maldonado-Lasunción; Joost Verhaagen; Martin Oudega
Journal:  Neurotherapeutics       Date:  2018-07       Impact factor: 7.620

9.  Controlled release of neurotrophin-3 from fibrin-based tissue engineering scaffolds enhances neural fiber sprouting following subacute spinal cord injury.

Authors:  Philip J Johnson; Stanley R Parker; Shelly E Sakiyama-Elbert
Journal:  Biotechnol Bioeng       Date:  2009-12-15       Impact factor: 4.530

Review 10.  Imaging techniques in spinal cord injury.

Authors:  Benjamin M Ellingson; Noriko Salamon; Langston T Holly
Journal:  World Neurosurg       Date:  2012-12-12       Impact factor: 2.104

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