[1] Thelin EP, Nelson DW, Bellander BM. A review of the clinical utility of serum S100B protein levels in the assessment of traumatic brain injury [J]. Acta Neurochir, 2017, 159(2): 209-225.
[2] Arciniegas DB, Mcallister TW. Neurobehavioral management of traumatic brain injury in the critical care setting [J]. Crit Care Clin, 2017, 24(4): 737-765.
[3] Sun Sh, Zhang LX, Zhang ZhQ. Effect of BMSCs transplantation on axon regeneration and Nogo-A protein expression after spinal cord injury [J]. Journal of Anatomy, 2016, 39 (2): 229-232.(in chinese)
孙师, 张立新, 张志强. 骨髓间充质干细胞移植对脊髓损伤后轴突再生及Nogo-A蛋白表达的影响[J]. 解剖学杂志, 2016, 39(2): 229-232.
[4] Beretta S, Cunningham KM, Haus DL, et al. Effects of human ES-derived neural stem cell transplantation and kindling in a rat model of traumatic brain injury [J]. Cell Transplant, 2017, 26(7): 1247-1261.
[5]Jia J, Chen F, Wu Y. Recombinant PEP-1-SOD1 improves functional recovery after neural stem cell transplantation in rats with traumatic brain injury [J]. Exp Ther Med, 2018, 15(3): 2929-2935.
[6] Pang AL, Xiong LL, Xia QJ, et al. Neural stem cell transplantation is associated with inhibition of apoptosis, Bcl-xL upregulation, and recovery of neurological function in a rat model of traumatic brain injury[J]. Cell Transplant, 2017, 26(7): 1262-1275.
[7] Xiong Y, Mahmood A, Chopp M. Animal models of traumatic brain injury [J]. Nat Rev Neurosci, 2013, 14(2): 128-142.
[8] Heile AMB, Wallrapp C, Klinge PM, et al. Cerebral transplantation of encapsulated mesenchymal stem cells improves cellular pathology after experimental traumatic brain injury [J]. Neurosci Lett, 2009, 463(3): 176-181.
[9] Chen T, Yu Y, Tang LJ, et al. Neural stem cells over-expressing brain-derived neurotrophic factor promote neuronal survival and cytoskeletal protein expression in traumatic brain injury sites[J]. Neural Regen Res, 2017, 12(3): 433-439.
[10] Cox CS, Hetz RA, Liao GP, et al. Treatment of severe adult traumatic brain injury using bone marrow mononuclear cells [J]. Stem Cells, 2017, 35(4): 1065-1079.
[11] Volpe A, Alaggio R, Midrio P, et al. Calretinin, β-tubulin immunohistochemistry, and submucosal nerve trunks morphology in Hirschsprung disease: possible applications in clinical practice[J]. J Pediatr Gastroenterol Nutr, 2013, 57(6): 780-787.
[12] Motaghinejad M, Motevalian M, Fatima S, et al. The neuroprotective effect of curcumin against nicotine-induced neurotoxicity is mediated by CREB-BDNF signaling pathway [J]. Neurochem Res, 2017, 42(10): 2921-2932.
|