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PUBMED FOR HANDHELDS

Journal Abstract Search


666 related items for PubMed ID: 31962127

  • 1. Mutually beneficial effects of intensive exercise and GABAergic neural progenitor cell transplants in reducing neuropathic pain and spinal pathology in rats with spinal cord injury.
    Dugan EA, Jergova S, Sagen J.
    Exp Neurol; 2020 May; 327():113208. PubMed ID: 31962127
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  • 2. Intrathecal Transplantation of Embryonic Stem Cell-Derived Spinal GABAergic Neural Precursor Cells Attenuates Neuropathic Pain in a Spinal Cord Injury Rat Model.
    Hwang I, Hahm SC, Choi KA, Park SH, Jeong H, Yea JH, Kim J, Hong S.
    Cell Transplant; 2016 May; 25(3):593-607. PubMed ID: 26407027
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  • 3. Intensive Locomotor Training Provides Sustained Alleviation of Chronic Spinal Cord Injury-Associated Neuropathic Pain: A Two-Year Pre-Clinical Study.
    Dugan EA, Schachner B, Jergova S, Sagen J.
    J Neurotrauma; 2021 Mar 15; 38(6):789-802. PubMed ID: 33218293
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  • 4. An Intensive Locomotor Training Paradigm Improves Neuropathic Pain following Spinal Cord Compression Injury in Rats.
    Dugan EA, Sagen J.
    J Neurotrauma; 2015 May 01; 32(9):622-32. PubMed ID: 25539034
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  • 5. Delayed Exercise Is Ineffective at Reversing Aberrant Nociceptive Afferent Plasticity or Neuropathic Pain After Spinal Cord Injury in Rats.
    Detloff MR, Quiros-Molina D, Javia AS, Daggubati L, Nehlsen AD, Naqvi A, Ninan V, Vannix KN, McMullen MK, Amin S, Ganzer PD, Houlé JD.
    Neurorehabil Neural Repair; 2016 Aug 01; 30(7):685-700. PubMed ID: 26671215
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  • 7. Calcium channel alpha-2-delta-1 protein upregulation in dorsal spinal cord mediates spinal cord injury-induced neuropathic pain states.
    Boroujerdi A, Zeng J, Sharp K, Kim D, Steward O, Luo DZ.
    Pain; 2011 Mar 01; 152(3):649-655. PubMed ID: 21239111
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  • 10. Exercise training modulates glutamic acid decarboxylase-65/67 expression through TrkB signaling to ameliorate neuropathic pain in rats with spinal cord injury.
    Li X, Wang Q, Ding J, Wang S, Dong C, Wu Q.
    Mol Pain; 2020 Mar 01; 16():1744806920924511. PubMed ID: 32418502
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  • 12. Acrolein contributes to TRPA1 up-regulation in peripheral and central sensory hypersensitivity following spinal cord injury.
    Park J, Zheng L, Acosta G, Vega-Alvarez S, Chen Z, Muratori B, Cao P, Shi R.
    J Neurochem; 2015 Dec 01; 135(5):987-97. PubMed ID: 26365991
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  • 13. Self-assembling peptides optimize the post-traumatic milieu and synergistically enhance the effects of neural stem cell therapy after cervical spinal cord injury.
    Zweckberger K, Ahuja CS, Liu Y, Wang J, Fehlings MG.
    Acta Biomater; 2016 Sep 15; 42():77-89. PubMed ID: 27296842
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  • 14. Peripheral and central sensitization in remote spinal cord regions contribute to central neuropathic pain after spinal cord injury.
    Carlton SM, Du J, Tan HY, Nesic O, Hargett GL, Bopp AC, Yamani A, Lin Q, Willis WD, Hulsebosch CE.
    Pain; 2009 Dec 15; 147(1-3):265-76. PubMed ID: 19853381
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  • 15. Hyperbaric oxygenation alleviates chronic constriction injury (CCI)-induced neuropathic pain and inhibits GABAergic neuron apoptosis in the spinal cord.
    Fu H, Li F, Thomas S, Yang Z.
    Scand J Pain; 2017 Oct 15; 17():330-338. PubMed ID: 28927648
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  • 16. Contribution of the spinal cord BDNF to the development of neuropathic pain by activation of the NR2B-containing NMDA receptors in rats with spinal nerve ligation.
    Geng SJ, Liao FF, Dang WH, Ding X, Liu XD, Cai J, Han JS, Wan Y, Xing GG.
    Exp Neurol; 2010 Apr 15; 222(2):256-66. PubMed ID: 20079352
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  • 20. Early transplantation of mesenchymal stem cells after spinal cord injury relieves pain hypersensitivity through suppression of pain-related signaling cascades and reduced inflammatory cell recruitment.
    Watanabe S, Uchida K, Nakajima H, Matsuo H, Sugita D, Yoshida A, Honjoh K, Johnson WE, Baba H.
    Stem Cells; 2015 Jun 15; 33(6):1902-14. PubMed ID: 25809552
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