参考文献/References:
[1] DEWAN MC, RATTANI A, GUPTA S, et al. Estimating the global incidence of traumatic brain injury [J]. J Neurosurg, 2019, 130(4): 1080-1097.
[2] KHELLAF A, KHAN DZ, HELMY A. Recent advances in traumatic brain injury [J]. J Neurol, 2019, 266(11): 2878-2889.
[3] MCINNES K, FRIESEN CL, MACKENZIE DE, et al. Mild traumatic brain injury (mTBI) and chronic cognitive impairment: a scoping review [J]. PLoS One, 2017, 12(4): e0174847.
[4] WASHNIK NJ, ANJUM J, LUNDGREN K, et al. A review of the role of auditory evoked potentials in mild traumatic brain injury assessment [Z]. Los Angeles, CA: SAGE Publications, 2019: 23, 1534115490.
[5] KRISTMAN VL, BORG J, GODBOLT AK, et al. Methodological issues and research recommendations for prognosis after mild traumatic brain injury: results of the International Collaboration on Mild Traumatic Brain Injury Prognosis [J]. Arch Phys Med Rehabil, 2014, 95(3 Suppl): S265-S277.
[6] KAPPENMAN ES, LUCK SJ. Best practices for event-related potential research in clinical populations [J]. Biol Psychiatry Cogn Neurosci Neuroimaging, 2016, 1(2): 110-115.
[7] BROGLIO SP, MOORE RD, HILLMAN CH. A history of sport-related concussion on event-related brain potential correlates of cognition [J]. Int J Psychophysiol, 2011, 82(1): 16-23.
[8] FOLMER RL, BILLINGS CJ, DIEDESCH-ROUSE AC, et al. Electrophysiological assessments of cognition and sensory processing in TBI: applications for diagnosis, prognosis and rehabilitation [J]. Int J Psychophysiol, 2011, 82(1): 4-15.
[9] FAN J, MCCANDLISS BD, SOMMER T, et al. Testing the efficiency and independence of attentional networks [J]. J Cogn Neurosci, 2002, 14(3): 340-347.
[10] CHEN A, ZHANG Z, CAO C, et al. Altered attention network in paratroopers exposed to repetitive subconcussion: evidence based on behavioral and event-related potential results [J]. J Neurotrauma, 2021, 38(23): 3306-3314.
[11] BARONE V, DE KONING ME, VAN DER HORN HJ, et al. Neurophysiological signatures of mild traumatic brain injury in the acute and subacute phase [J]. Neurolog Sci, 2024, 45(7): 3313-3323.
[12] WU S, CHEN A, CAO C, et al. Repeated subconcussive exposure alters low-frequency neural oscillation in memory retrieval processing [J]. J Neurotrauma, 2022, 39(5-6): 398-410.
[13] ARCINIEGA H, SHIRES J, FURLONG S, et al. Impaired visual working memory and reduced connectivity in undergraduates with a history of mild traumatic brain injury [J]. Sci Rep, 2021, 11(1): 2789.
[14] BOTVINICK MM, BRAVER TS, BARCH DM, et al. Conflict monitoring and cognitive control [J]. Psycholog Rev, 2001, 108(3): 624-652.
[15] ARON AR, ROBBINS TW, POLDRACK RA. Inhibition and the right inferior frontal cortex [J]. Trends Cogn Sci, 2004, 8(4): 170-177.
[16] FU Z, LIU M, WANG S, et al. Impairment of inhibitory control due to repetitive subconcussions from indirect brain impacts: evidence from event-related potentials and resting-state EEG complexity in parachuters [J]. Brain Res Bull, 2024, 216: 111053.
[17] KORGAONKAR MS, WILLIAMSON T, BRYANT RA. Neural activity during response inhibition in mild traumatic brain injury and posttraumatic stress disorder [J]. Neurobiol Stress, 2021, 14: 100308.
[18] WYNN JK, GREEN MF. An EEG-based neuroplastic approach to predictive coding in people with schizophrenia or traumatic brain injury [J]. Clin EEG Neurosci, 2024, 55(4): 445-454.
[19] MYERS MH, KALYANAKUMAR N, HARRIS P. Visual evoked potential effects on magnocellular and parvocellular pathways from athletes after mild traumatic brain injuries [J]. Neurosci Insights, 2024, 19: 1976036227.
[20] MANNING FRANKE L, PERERA RA, AYGEMANG AA, et al. Auditory evoked brain potentials as markers of chronic effects of mild traumatic brain injury in mid-life [J]. Clin Neurophysiol, 2021, 132 (12): 2979-2988.
[21] KIM E, YOO R, SEONG MY, et al. A systematic review and data synthesis of longitudinal changes in white matter integrity after mild traumatic brain injury assessed by diffusion tensor imaging in adults [J]. Eur J Radiol, 2022, 147: 110117.
[22] STENBERG J, EIKENES L, MOEN KG, et al. Acute diffusion tensor and kurtosis imaging and outcome following mild traumatic brain injury [J]. J Neurotrauma, 2021, 38(18): 2560-2571.
[23] VEERAMUTHU V, NARAYANAN V, KUO TL, et al. Diffusion tensor imaging parameters in mild traumatic brain injury and its correlation with early neuropsychological impairment: a longitudinal study [J]. J Neurotrauma, 2015, 32(19): 1497-1509.
[24] GOSSELIN N, BOTTARI C, CHEN J, et al. Electrophysiology and functional MRI in post-acute mild traumatic brain injury [J]. J Neurotrauma, 2011, 28(3): 329-341.
[25] ZHANG J, WANG R, WANG H, et al. Activation of brain regions using task-state FMRI in patients with mild traumatic brain injury: a meta-analysis [J]. Int J Clin Exp Pathol, 2020, 13(12): 2918-2926.
[26] DETTWILER A, MURUGAVEL M, PUTUKIAN M, et al. Persistent differences in patterns of brain activation after sports-related concussion: a longitudinal functional magnetic resonance imaging study [J]. J Neurotrauma, 2014, 31(2): 180-188.
[27] JACK CRJ, BENNETT DA, BLENNOW K, et al. NIA-AA research framework: toward a biological definition of Alzheimer's disease [J]. Alzheimers Dement, 2018, 14(4): 535-562.
[28] LI G, ILIFF J, SHOFER J, et al. CSF β-amyloid and tau biomarker changes in veterans with mild traumatic brain injury [J]. Neurology, 2024, 102(7): e209197.
[29] FEINBERG C, MAYES KD, PORTMAN E, et al. Non-invasive fluid biomarkers in the diagnosis of mild traumatic brain injury (mTBI): a systematic review [J]. J Neurol Neurosurg Psychiatry, 2024, 95(2): 184-192.
[30] HICKS SD, ONKS C, KIM RY, et al. Diagnosing mild traumatic brain injury using saliva RNA compared to cognitive and balance testing [J]. Clin Transl Med, 2020, 10(6): e197.
[31] HICKS SD, ONKS C, KIM RY, et al. Refinement of saliva microRNA biomarkers for sports-related concussion [J]. J Sport Health Sci, 2023, 12(3): 369-378.
相似文献/References:
[1]吴 鹏 王跃飞 邵灵敏 陈谦学.神经节苷脂对颅脑损伤后认知功能障碍疗效的系统评价[J].中国临床神经外科杂志,2015,(07):395.[doi:10.13798/j.issn.1009-153X.2015.07.004]
WU Peng,WANG Yue-feng,SHAO Ling-min,et al.Meta analysis of curative effect of ganglioside on cognitive dysfunction in the patients with traumatic brain injury[J].,2015,(12):395.[doi:10.13798/j.issn.1009-153X.2015.07.004]
[2]袁红刚 黄书岚 刘华明 张纯伟.黄芪多糖对颅脑损伤大鼠学习记忆能力及海马BDNF表达的影响[J].中国临床神经外科杂志,2017,(06):419.[doi:10.13798/j.issn.1009-153X.2017.06.018]
YUAN Hong-gang,HUANG Shu-lan,LIU Hua-ming,et al.Effects of astraglaus polysaccharide on learning and mermory and hippocampal BDNF expression in rats with traumatic brain injury[J].,2017,(12):419.[doi:10.13798/j.issn.1009-153X.2017.06.018]
[3]郑锐哲 孙兆良 综述 冯东福 审校.弥漫性轴索损伤后认知功能障碍与神经网络的研究进展[J].中国临床神经外科杂志,2018,(02):132.
[4]林 靖 张 炜 郑小强 程宏伟 高瑞庭 宋朝理.大鼠轻型颅脑损伤后星形胶质细胞与神经元的病理改变[J].中国临床神经外科杂志,2018,(04):246.[doi:10.13798/j.issn.1009-153X.2018.04.008]
LIN Jing,ZHANG Wei,ZHENG Xiao-qiang,et al.Pathological changes in astrocytes and neurons after mild traumatic brain injury in rats[J].,2018,(12):246.[doi:10.13798/j.issn.1009-153X.2018.04.008]
[5]王 阳 平建峰 刘会星.缺血性脑卒中后认知功能障碍病人血清胱抑素-C水平变化及其意义[J].中国临床神经外科杂志,2020,(04):212.[doi:10.13798/j.issn.1009-153X.2020.04.007]
WANG Yang,PING Jian-feng,LIU Hui-xing..Change of serum level of cystatin C and its meanings in patients with cognitive dysfunction after ischemic stroke[J].,2020,(12):212.[doi:10.13798/j.issn.1009-153X.2020.04.007]
[6]马生辉 王铄辰 陈奥博等.轻型颅脑损伤病人认知功能障碍的研究进展[J].中国临床神经外科杂志,2021,26(12):956.[doi:10.13798/j.issn.1009-153X.2021.12.021]
[7]潘圆圆,刘学友,郭社卫.血清NFL水平与脑小血管病病人认知功能障碍的关系[J].中国临床神经外科杂志,2022,27(06):452.[doi:10.13798/j.issn.1009-153X.2022.06.006]
PAN Yuan-yuan,LIU Xue-you,GUO she-wei.Relationship between serum neurofilament light chain level and cognitive dysfunction of patients with cerebral small vessel disease[J].,2022,27(12):452.[doi:10.13798/j.issn.1009-153X.2022.06.006]
[8]陈鹤,赵玉龙,刘佳明,等.前交通动脉破裂动脉瘤术后认知功能障碍的影响因素[J].中国临床神经外科杂志,2022,27(05):366.[doi:10.13798/j.issn.1009-153X.2022.05.010]
CHEN He,ZHAO Yu-long,LIU Jia-ming,et al.Risk factors for postoperative cognitive imparment in patients with ruptured anterior communicating aneurysm[J].,2022,27(12):366.[doi:10.13798/j.issn.1009-153X.2022.05.010]
[9]冯勇,郭伟,王晓宏.2岁以下婴儿非交通事故性轻型颅脑损伤发生颅内异常的危险因素分析[J].中国临床神经外科杂志,2023,28(06):375.[doi:10.13798/j.issn.1009-153X.2023.06.007]
Feng Yong,Guo Wei,Wang Xiao-hong.Risk factors for intracranial abnormalities of infants under 2 years old with mild traumatic brain injury due to causes other than traffic accidents[J].,2023,28(12):375.[doi:10.13798/j.issn.1009-153X.2023.06.007]
[10]陈振寰,李梦珠,潘起航,等.细胞死亡在颅脑损伤后认知功能障碍中作用机制的研究进展[J].中国临床神经外科杂志,2024,29(02):111.[doi:10.13798/j.issn.1009-153X.2024.02.010]
CHEN Zhen-huan,LI Meng-zhu,PAN Qi-hang,et al.Research progress on the mechanism of cell death in cognitive impairment after traumatic brain injury[J].,2024,29(12):111.[doi:10.13798/j.issn.1009-153X.2024.02.010]