Role of Neurotrophins in Spinal Plasticity and Locomotion

被引:12
|
作者
Arvanian, Victor [1 ,2 ]
机构
[1] VA Med Ctr, Northport, NY 11768 USA
[2] SUNY Stony Brook, Northport, NY USA
关键词
Motoneuron; synaptic transmission; motor function; neurotrophic factor; CENTRAL-NERVOUS-SYSTEM; NEURITE GROWTH-INHIBITORS; ACTIVITY-DEPENDENT PLASTICITY; PROMOTES FUNCTIONAL RECOVERY; MESSENGER-RNA EXPRESSION; MEDIATED GENE-TRANSFER; DORSAL-ROOT AFFERENTS; CORD INJURED RATS; NEURONS IN-VIVO; ADULT RATS;
D O I
10.2174/13816128113199990378
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Synaptic transmission through descending motor pathways to lumbar motoneurons and then to leg muscles is essential for walking in humans and rats. Spinal cord injury (SCI), even when incomplete, results in diminished transmission to motoneurons and very limited recovery of motor function. Neurotrophins have emerged as essential molecules known to promote cell survival and support anatomical reorganization in damaged spinal cord. This review will summarize the evidence implicating the role of neurotrophins in synaptic plasticity in both undamaged and damaged spinal cord, with special emphasis on the potential for neurotrophins to strengthen synaptic connections to motoneurons in support of the application of neurotrophins for recovery of locomotor function after SCI. An important consideration related to therapeutic use of neurotrophins is the successful delivery of these molecules. Prolonged delivery of neurotrophins to the spinal cord of adult mammals has recently become possible through advances in biotechnology. Fibroblasts engineered to secrete neurotrophins and gene transfer of neurotrophins via recombinant viral vectors are among the most promising therapeutic transgene delivery systems for safe and effective neurotrophin delivery. Administration of neurotrophins to the spinal cord using these delivery systems was found to enhance both anatomical and synaptic plasticity and improve functional recovery after SCI. The findings summarized here indicate that neurotrophins have translational research potential for SCI repair, most likely as an essential component of combination therapy.
引用
收藏
页码:4509 / 4516
页数:8
相关论文
共 50 条
  • [21] Regeneration and plasticity in the brain and spinal cord
    Johansson, Barbro B.
    JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 2007, 27 (08) : 1417 - 1430
  • [22] Origin of excitation underlying locomotion in the spinal circuit of zebrafish
    Eklof-Ljunggren, Emma
    Haupt, Sabine
    Ausborn, Jessica
    Dehnisch, Ivar
    Uhlen, Per
    Higashijima, Shin-ichi
    El Manira, Abdeljabbar
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2012, 109 (14) : 5511 - 5516
  • [23] Transplantation of Oligodendrocyte Precursor Cells Improves Locomotion Deficits in Rats with Spinal Cord Irradiation Injury
    Sun, Yan
    Xu, Chong-Chong
    Li, Jin
    Guan, Xi-Yin
    Gao, Lu
    Ma, Li-Xiang
    Li, Rui-Xi
    Peng, Yu-Wen
    Zhu, Guo-Pei
    PLOS ONE, 2013, 8 (02):
  • [24] Neurotrophins Role in Depression Neurobiology: A Review of Basic and Clinical Evidence
    Neto, Fani L.
    Borges, Gisela
    Torres-Sanchez, Sonia
    Mico, Juan A.
    Berrocoso, Esther
    CURRENT NEUROPHARMACOLOGY, 2011, 9 (04) : 530 - 552
  • [25] A select combination of neurotrophins enhances neuroprotection and functional recovery following spinal cord injury
    Sharma, Hari Shanker
    NEUROPROTECTIVE AGENTS: EIGHTH INTERNATIONAL NEUROPROTECTION SOCIETY MEETING, 2007, 1122 : 95 - 111
  • [26] Leveraging biomedical informatics for assessing plasticity and repair in primate spinal cord injury
    Nielson, Jessica L.
    Haefeli, Jenny
    Salegio, Ernesto A.
    Liu, Aiwen W.
    Guandique, Cristian F.
    Stueck, Ellen D.
    Hawbecker, Stephanie
    Moseanko, Rod
    Strand, Sarah C.
    Zdunowski, Sharon
    Brock, John H.
    Roy, Roland R.
    Rosenzweig, Ephron S.
    Nout-Lomas, Yvette S.
    Courtine, Gregoire
    Havton, Leif A.
    Steward, Oswald
    Edgerton, V. Reggie
    Tuszynski, Mark H.
    Beattie, Michael S.
    Bresnahan, Jacqueline C.
    Ferguson, Adam R.
    BRAIN RESEARCH, 2015, 1619 : 124 - 138
  • [27] Spinal cord injury and plasticity: Opportunities and challenges
    Fouad, Karim
    Krajacic, Aleksandra
    Tetzlaff, Wolfram
    BRAIN RESEARCH BULLETIN, 2011, 84 (4-5) : 337 - 342
  • [28] NEUROTROPHIC FACTORS IN DEVELOPMENT AND PLASTICITY OF SPINAL NEURONS
    HENDERSON, CE
    BLOCHGALLEGO, E
    CAMU, W
    GOUIN, A
    METTLING, C
    RESTORATIVE NEUROLOGY AND NEUROSCIENCE, 1993, 5 (01) : 15 - 28
  • [29] Neural plasticity after spinal cord injury
    Liu, Jian
    Yang, Xiaoyu
    Jiang, Lianying
    Wang, Chunxin
    Yang, Maoguang
    NEURAL REGENERATION RESEARCH, 2012, 7 (05) : 386 - 391
  • [30] Neural plasticity after spinal cord injury
    Jian Liu
    NeuralRegenerationResearch, 2012, 7 (05) : 386 - 391