索引超出了数组界限。
[ 1 ] Chang FS, Zhang Q, Sun M, et al. Epidemiological study of spinal cord injury individuals from halfway houses in Shanghai, China[J]. J Spinal Cord Med, 2018, 41(4): 450-458.
[ 2 ] Ahuja CS, Nori S, Tetreault L, et al. Traumatic spinal cord injury-repair and regeneration[J]. Neurosurgery, 2017, 80(Suppl 3): S9-S22.
[ 3 ] Ahuja CS, Martin AR, Fehlings M. Recent advances in managing a spinal cord injury secondary to trauma[J]. F1000Res, 2016, 5: F1000 Faculty Rev 1017.
[ 4 ] Ulndreaj A, Chio JC, Ahuja CS. Modulating the immune response in spinal cord injury[J]. Expert Rev Neurother, 2016, 16(10): 1127-1129.
[ 5 ] O'Shea TM, Burda JE, Sofroniew MV. Cell biology of spinal cord injury and repair[J]. J Clin Invest, 2017, 127(9): 3259-3270.
[ 6 ] Zhou T, Zheng Y, Sun L, et al. Microvascular endothelial cells engulf myelin debris and promote macrophage recruitment and fibrosis after neural injury[J]. Nat Neurosci, 2019, 22(3): 421-435.
[ 7 ] Wanner IB, Anderson MA, Song B, et al. Glial scar borders are formed by newly proliferated, elongated astrocytes that interact to corral inflammatory and fibrotic cells via STAT3-dependent mechanisms after spinal cord injury[J].J Neurosci, 2013, 33(31): 12870-12886.
[ 8 ] Burda JE, Sofroniew MV. Reactive gliosis and the multicellular response to CNS damage and disease[J]. Neuron, 2014, 81(2): 229-248.
[ 9 ] Rosenzweig ES, Courtine G, Jindrich DL, et al. Extensive spontaneous plasticity of corticospinal projections after primate spinal cord injury[J]. Nat Neurosci, 2010, 13(12): 1505-1510.
[10] Filli L, Zörner B, Weinmann O, et al. Motor deficits and recovery in rats with unilateral spinal cord hemisection mimic the Brown-Sequard syndrome[J]. Brain, 2011, 134(Pt 8): 2261-2273.
[11] Curcio M, Bradke F. Axon regeneration in the central nervous system: facing the challenges from the inside[J]. Annu Rev Cell Dev Biol, 2018, 34: 495-521.
[12] He Z, Jin Y. Intrinsic control of axon regeneration[J]. Neuron, 2016, 90(3): 437-451.
[13] Anderson MA, Burda JE, Ren Y, et al. Astrocyte scar formation aids central nervous system axon regeneration[J]. Nature, 2016, 532(7598): 195-200.
[14] Hossain-Ibrahim MK, Rezajooi K, Stallcup WB, et al. Analysis of axonal regeneration in the central and peripheral nervous systems of the NG2-deficient mouse[J]. BMC Neurosci, 2007, 8: 80.
[15] Zhou Y, Wang Z, Li J, et al. Fibroblast growth factors in the management of spinal cord injury[J]. J Cell Mol Med, 2018, 22(1): 25-37.
[16] Gensel JC, Zhang B. Macrophage activation and its role in repair and pathology after spinal cord injury[J]. Brain Res, 2015, 1619: 1-11.
[17] Shi LB, Tang PF, Zhang W, et al. Naringenin inhibits spinal cord injury-induced activation of neutrophils through miR-223[J]. Gene, 2016, 592(1): 128-133.
[18] Kurimoto T, Yin Y, Habboub G, et al. Neutrophils express oncomodulin and promote optic nerve regeneration[J]. J Neurosci, 2013, 33(37): 14816-14824.
[19] Ji XC, Dang YY, Gao HY, et al. Local Injection of lenti-BDNF at the lesion site promotes M2 macrophage polarization and inhibits inflammatory response after spinal cord injury in mice[J]. Cell Mol Neurobiol, 2015, 35(6): 881-890.
[20] Keefe KM, Sheikh IS, Smith GM. Targeting neurotrophins to specific populations of neurons: NGF, BDNF, and NT-3 and their relevance for treatment of spinal cord injury[J]. Int J Mol Sci, 2017, 18(3): 548.
[21] Chen BK, Madigan NN, Hakim JS, et al. GDNF Schwann cells in hydrogel scaffolds promote regional axon regeneration, remyelination and functional improvement after spinal cord transection in rats[J]. J Tissue Eng Regen Med, 2018, 12(1): e398-e407.
[22] Sámano C, Nistri A. Mechanism of neuroprotection against experimental spinal cord injury by riluzole or methylprednisolone[J]. Neurochem Res, 2019, 44(1): 200-213.
[23] Martins BC, Torres BB, de Oliveira KM, et al. Association of riluzole and dantrolene improves significant recovery after acute spinal cord injury in rats[J]. Spine J, 2018, 18(3): 532-539.
[24] Kitamura K, Fujiyoshi K, Yamane J, et al. Human hepatocyte growth factor promotes functional recovery in primates after spinal cord injury[J]. PLoS One, 2011, 6(11): e27706.
[25] Wallner S, Peters S, Pitzer C, et al. The granulocyte-colony stimulating factor has a dual role in neuronal and vascular plasticity[J]. Front Cell Dev Biol, 2015, 3: 48.
[26] Bakar D, Tanenbaum JE, Phan K, et al. Decompression surgery for spinal metastases: a systematic review[J]. Neurosurg Focus, 2016, 41(2): E2.
[27] Saadeh YS, Smith BW, Joseph JR, et al. The impact of blood pressure management after spinal cord injury: a systematic review of the literature[J]. Neurosurg Focus, 2017, 43(5): E20.
[28] Wang J, Pearse DD. Therapeutic hypothermia in spinal cord injury: the status of its use and open questions[J]. Int J Mol Sci, 2015, 16(8): 16848-16879.
[29] Martirosyan NL, Kalani MY, Bichard WD, et al. Cerebrospinal fluid drainage and induced hypertension improve spinal cord perfusion after acute spinal cord injury in pigs[J]. Neurosurgery, 2015, 76(4): 461-468.
[30] Monnier PP, Sierra A, Schwab JM, et al. The Rho/ROCK pathway mediates neurite growth-inhibitory activity associated with the chondroitin sulfate proteoglycans of the CNS glial scar[J]. Mol Cell Neurosci, 2003, 22(3): 319-330.
[31] Forgione N, Fehlings MG. Rho-ROCK inhibition in the treatment of spinal cord injury[J]. World Neurosurg, 2014, 82(3-4): e535-e539.
[32] Fehlings MG, Kim KD, Aarabi B, et al. Rho inhibitor VX-210 in acute traumatic subaxial cervical spinal cord injury: design of the SPinal cord Injury Rho INhibition InvestiGation(SPRING)clinical trial[J]. J Neurotrauma, 2018, 35(9): 1049-1056.
[33] Chen K, Marsh BC, Cowan M, et al. Sequential therapy of anti-Nogo-A antibody treatment and treadmill training leads to cumulative improvements after spinal cord injury in rats[J]. Exp Neurol, 2017, 292: 135-144.
[34] Desai J, Steiger S, Anders HJ. Molecular pathophysiology of gout[J]. Trends Mol Med, 2017, 23(8): 756-768.
[35] Ahuja CS, Fehlings M. Concise review: bridging the gap: novel neuroregenerative and neuroprotective strategies in spinal cord injury[J]. Stem Cells Transl Med, 2016, 5(7): 914-924.
[36] Dasari VR, Veeravalli KK, Dinh DH. Mesenchymal stem cells in the treatment of spinal cord injuries: a review[J]. World J Stem Cells, 2014, 6(2): 120-133.
[37] Wiliams RR, Bunge MB. Schwann cell transplantation: a repair strategy for spinal cord injury?[J]. Prog Brain Res, 2012, 201: 295-312.
[38] Bunge MB, Monje PV, Khan A, et al. From transplanting Schwann cells in experimental rat spinal cord injury to their transplantation into human injured spinal cord in clinical trials[J]. Prog Brain Res, 2017, 231: 107-133.
[39] Cattin AL, Burden JJ, Van Emmenis L, et al. Macrophage-induced blood vessels guide schwann cell-mediated regeneration of peripheral nerves[J]. Cell, 2015, 162(5): 1127-1139.
[40] Liu J, Chen P, Wang Q, et al. Meta analysis of olfactory ensheathing cell transplantation promoting functional recovery of motor nerves in rats with complete spinal cord transection[J]. Neural Regen Res, 2014, 9(20): 1850-1858.
[41] Günther MI, Weidner N, Müller R, et al. Cell-seeded alginate hydrogel scaffolds promote directed linear axonal regeneration in the injured rat spinal cord[J]. Acta Biomater, 2015, 27: 140-150.
[42] Wen Y, Yu S, Wu Y, et al. Spinal cord injury repair by implantation of structured hyaluronic acid scaffold with PLGA microspheres in the rat[J]. Cell Tissue Res, 2016, 364(1): 17-28.
[43] Lee YS, Wu S, Arinzeh TL, et al. Enhanced noradrenergic axon regeneration into Schwann cell-filled PVDF-TrFE conduits after complete spinal cord transection[J]. Biotechnol Bioeng, 2017, 114(2): 444-456.