[1] BIE F, WANG KY, XU T, et al. The potential roles of circular RNAs as modulators in traumatic spinal cord injury. Biomed Pharmacother. 2021;141:111826.
[2] FISCHER I, DULIN JN, LANE MA. Transplanting neural progenitor cells to restore connectivity after spinal cord injury. Nat Rev Neurosci. 2020;21(7):366-383.
[3] KARSY M, HAWRYLUK G. Modern Medical Management of Spinal Cord Injury. Curr Neurol Neurosci. 2019;19(9):65
[4] LIN JL, XIONG ZC, GU JH, et al. Sirtuins: Potential Therapeutic Targets for Defense against Oxidative Stress in Spinal Cord Injury. Oxid Med Cell Longev. 2021;2021:7207692.
[5] XIANG XN, ZONG HY, OU Y, et al. Exoskeleton-assisted walking improves pulmonary function and walking parameters among individuals with spinal cord injury: a randomized controlled pilot study. J Neuroeng Rehabil. 2021;18(1):120.
[6] FLACK JA, SHARMA KD, XIE JYH. Delving into the recent advancements of spinal cord injury treatment: a review of recent progress. Neural Regen Res. 2022;17(2):283-291.
[7] QUADRI SA, FAROOQUI M, IKRAM A, et al. Recent update on basic mechanisms of spinal cord injury. Neurosurg Rev. 2020;43(2):425-441.
[8] SONG YH, AGRAWAL NK, GRIFFIN JM, et al. Recent advances in nanotherapeutic strategies for spinal cord injury repair. Adv Drug Deliver Rev. 2019;148:38-59.
[9] BADHIWALA JH, WILSON JR, FEHLINGS MG. Global burden of traumatic brain and spinal cord injury. Lancet Neurol. 2019;18(1):24-25.
[10] BARONCINI A, MAFFULLI N, ESCHWEILER J, et al. Pharmacological management of secondary spinal cord injury. Expert Opin Pharmaco. 2021; 22(13):1793-1800.
[11] YING YB, ZHANG YF, TU YR, et al. Hypoxia Response Element-Directed Expression of aFGF in Neural Stem Cells Promotes the Recovery of Spinal Cord Injury and Attenuates SCI-Induced Apoptosis. Front Cell Dev Biol. 2021;9:693694.
[12] MORCIANO G, PEDRIALI G, SBANO L, et al. Intersection of mitochondrial fission and fusion machinery with apoptotic pathways: Role of Mcl-1. Biol Cell. 2016;108(10):279-293.
[13] PATEL VA, MASSENBURG D, VUJICIC S, et al. Apoptotic Cells Activate AMP-activated Protein Kinase (AMPK) and Inhibit Epithelial Cell Growth without Change in Intracellular Energy Stores. J Biol Chem. 2015;290(37):22352-22369.
[14] NEGANOVA ME, ALEKSANDROVA YR, NEBOGATIKOV VO, et al. Promising Molecular Targets for Pharmacological Therapy of Neurodegenerative Pathologies. Acta Naturae. 2020;12(3):60-80.
[15] YIN MC, XU CQ, MA JM, et al. A Bibliometric Analysis and Visualization of Current Research Trends in the Treatment of Cervical Spondylotic Myelopathy. Glob Spine J. 2021;11(6):988-998.
[16] LIN GX, KOTHEERANURAK V, MAHATTHANATRAKUL A, et al. Worldwide research productivity in the field of full-endoscopic spine surgery: a bibliometric study. Eur Spine J. 2020;29(1):153-160.
[17] ZHENG KY, DAI GY, LAN Y, et al. Trends of Repetitive Transcranial Magnetic Stimulation From 2009 to 2018: A Bibliometric Analysis. Front Neurosci-Switz. 2020;14:586314.
[18] CHUNG H, DAI TH, SHARMA SK, et al. The Nuts and Bolts of Low-level Laser (Light) Therapy. Ann Biomed Eng. 2012;40(2):516-533.
[19] DUMONT RJ, OKONKWO DO, VERMA S, et al. Acute spinal cord injury, part I: pathophysiologic mechanisms. Clin Neuropharmacol. 2001;24(5): 254-264.
[20] MARTIN LJ, AL-ABDULLA NA, BRAMBRINK AM, et al. Neurodegeneration in excitotoxicity, global cerebral ischemia, and target deprivation: A perspective on the contributions of apoptosis and necrosis. Brain Res Bull. 1998;46(4):281-309.
[21] SULLIVAN PG, KRISHNAMURTHY S, PATEL SP, et al. Temporal characterization of mitochondrial bioenergetics after spinal cord injury. J Neurotrauma. 2007;24(6):991-999.
[22] BASSO DM, BEATTIE MS, BRESNAHAN JC. A sensitive and reliable locomotor rating scale for open field testing in rats. J Neurotrauma. 1995; 12(1):1-21.
[23] SULLIVAN PG, RABCHEVSKY AG, KELLER JN, et al. Intrinsic differences in brain and spinal cord mitochondria: Implication for therapeutic interventions. J Comp Neurol. 2004;474(4):524-534.
[24] ZHOU K, ZHOU Y, ZENG Y, et al. Research Hotspots and Global Trends of Transcranial Direct Current Stimulation in Stroke: A Bibliometric Analysis. Neuropsychiatr Dis Treat. 2023;19:601-613.
[25] ELI I, LERNER DP, GHOGAWALA Z. Acute Traumatic Spinal Cord Injury. Neurol Clin. 2021;39(2):471-488.
[26] AHUJA CS, NORI S, TETREAULT L, et al. Traumatic Spinal Cord Injury-Repair and Regeneration. Neurosurgery. 2017;80(3):S9-S22.
[27] SLATER PG, DOMíNGUEZ-ROMERO ME, VILLARREAL M, et al. Mitochondrial function in spinal cord injury and regeneration. Cell Mol Life Sci. 2022;79(5):233.DOI:10.1007/s00018-022-04211-7
[28] SHANG ZZ, WANYAN P, WANG MC, et al. Bibliometric analysis of stem cells for spinal cord injury: current status and emerging frontiers. Front Pharmacol. 2023;14:1235324
[29] CAJIGAS I, VEDANTAM A. Brain-Computer Interface, Neuromodulation, and Neurorehabilitation Strategies for Spinal Cord Injury. Neurosurg Clin N Am. 2021;32(3):407-417.
[30] AHUJA CS, MOTHE A, KHAZAEI M, et al. The leading edge: Emerging neuroprotective and neuroregenerative cell-based therapies for spinal cord injury. Stem Cell Transl Med. 2020;9(12): 1509-1530.
[31] YAMAZAKI K, KAWABORI M, SEKI T, et al. Clinical Trials of Stem Cell Treatment for Spinal Cord Injury. Int J Mol Sci. 2020;21(11):6234.DOI:10.3390/ijms21116234
[32] CERVERA MA, SOEKADAR SR, USHIBA J, et al. Brain-computer interfaces for post-stroke motor rehabilitation: a meta-analysis. Ann Clin Transl Neur. 2018;5(5):651-663.
[33] HUANG LY, ZHANG Q, FU CY, et al. Effects of hyperbaric oxygen therapy on patients with spinal cord injury: A systematic review and meta-analysis of Randomized Controlled Trials. J Back Musculoskelet. 2021;34(6):905-913.
[34] ZHANG LG, FISHER JP, LEONG KW, et al. 3D bioprinting and nanotechnology in tissue engineering and regenerative medicine. London, England: Academic Press, 2015.
[35] MCEWEN ML, SULLIVAN PG, RABCHEVSKY AG, et al. Targeting Mitochondrial Function for the Treatment of Acute Spinal Cord Injury. Neurotherapeutics. 2011;8(2):168-179.
[36] SPRINGER JE, PRAJAPATI P, SULLIVAN PG. Targeting the mitochondrial permeability transition pore in traumatic central nervous system injury. Neural Regen Res. 2018;13(8):1338-1341.
[37] KIM JW, MAHAPATRA C, HONG JY, et al. Functional Recovery of Contused Spinal Cord in Rat with the Injection of Optimal-Dosed Cerium Oxide Nanoparticles. Adv Sci. 2017;4(10):1700034.
[38] LUO WQ, WANG YM, LIN F, et al. Selenium-Doped Carbon Quantum Dots Efficiently Ameliorate Secondary Spinal Cord Injury via Scavenging Reactive Oxygen Species. Int J Nanomed. 2020;15: 10113-10125.
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