CONTENTS

Advance in Cognitive Impairment and Its Related Mechanisms for Patients with Spinal Cord Injury (review)

  • LUO Ze-ru-xin ,
  • TAN Bo-tao ,
  • WU Ya-min
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  • Daping Hospital of Third Military Medical University, Chongqing 400042, China

Received date: 2016-12-09

  Online published: 2017-05-17

Abstract

Dysfunction after spinal cord injury mainly focused on the loss of motor function and sensory function and its complications instead of cognitive impairment. In this paper, the relevant reports of cognitive impairment in patients with spinal cord injury were collected. The influencing factors mainly contained emotion, traumatic brain injury, alcohol intake, drug abuse and educational level, etc. The possible mechanisms included traumatic brain injury, structure change of brain, brain damage and functional change, and inappropriate treatment, etc.

Cite this article

LUO Ze-ru-xin , TAN Bo-tao , WU Ya-min . Advance in Cognitive Impairment and Its Related Mechanisms for Patients with Spinal Cord Injury (review)[J]. Chinese Journal of Rehabilitation Theory and Practice, 2017 , 23(4) : 390 -393 . DOI: 10.3969/j.issn.1006-9771.2017.04.005

References

[1] 李建军,杨明亮. 四肢瘫患者的上肢功能重建[J]. 中国康复理论与实践, 2002, 8(3): 142-146.
[2] Spinal Cord Injury (SCI) 2016 Facts and Figures at a Glance [J]. J Spinal Cord Med, 2016, 39(4): 493-494.
[3] Abdulkader SN, Atia A, Mostafa MM. Brain computer interfacing: applications and challenges [J]. Egypt Inform J, 2015, 16(2): 213-230.
[4] Wang W, Collinger JL, Perez MA, et al. Neural interface technology for rehabilitation: exploiting and promoting neuroplasticity [J]. Phys Med RehabilClin N Am, 2010, 21(21): 157-178.
[5] 马贇,王毅军,高小榕,等. 基于脑-机接口技术的虚拟现实康复训练平台[J]. 中国生物医学工程学报, 2007, 26(3): 373-378.
[6] Daly JJ, Wolpaw JR. Brain-computer interfaces in neurological rehabilitation [J]. Lancet Neurol, 2008, 7(11): 1032-1043.
[7] Bastos TF, Muller SM, Benevides AB, et al. Robotic wheelchair commanded by SSVEP, motor imagery and word generation [C]. Conf Proc IEEE Eng Med Biol Soc, 2011: 4753-4756.
[8] Mcfarland DJ, Sarnacki WA, Wolpaw JR. Electroencephalographic (EEG) control of three-dimensional movement [J]. J Neural Eng, 2010, 7(3): 189-190.
[9] Farwell LA, Donchin E. Talking off the top of your head: toward a mental prosthesis utilizing event-related brain potentials [J]. Electroencephalogr Clin Neurophysiol, 1988, 70(6): 510-523.
[10] 陈真诚,庞雪燕,孙统雷,等. 脑控智能轮椅控制系统[J]. 电子技术应用, 2014, 40(9): 126-129.
[11] 邢潇. 基于便携式脑-机接口的智能家电控制系统研究[D]. 天津:天津职业技术师范大学, 2014.
[12] 李耀楠,张小栋,王云霞. 脑-机接口驱动神经义肢手系统的研究[J]. 中国医疗设备, 2011, 26(4): 5-8.
[13] Bouton CE, Shaikhouni A, Annetta NV, et al. Restoring cortical control of functional movement in a human with quadriplegia [J]. Nature, 2016, 533(7602): 247-250.
[14] Schwartz AB, Cui XT, Weber DJ, et al. Brain-controlled interfaces: movement restoration with neural prosthetics [J]. Neuron, 2006, 52(1): 205-220.
[15] 程明,任宇鹏,高小榕,等. 脑电信号控制康复机器人的关键技术[J]. 机器人技术与应用, 2003(4): 45-48.
[16] 孟宪鹏. 多关节机械臂的脑机控制方法探索[D]. 长沙:国防科学技术大学, 2011.
[17] 任宇鹏,王广志,程明,等. 基于脑-机接口的康复辅助机械手控制[J]. 中国康复医学杂志, 2004, 19(5): 330-333.
[18] Yahud S, Osman NAA. Prosthetic Hand for the Brain-computer Interface System. 3rd Kuala Lumpur International Conference on Biomedical Engineering, 2006 [M]. Berlin: Springer, 2007: 643-646.
[19] Simeral JD, Kim SP, Black MJ, et al. Neural control of cursor trajectory and click by a human with tetraplegia 1000 days after implant of an intracortical microelectrode array [J]. J Neural Eng, 2011, 8(2): 587-589.
[20] Hochberg LR, Bacher D, Jarosiewicz B, et al. Reach and grasp by people with tetraplegia using a neurally controlled robotic arm [J]. Nature, 2012, 485(7398): 372-375.
[21] Collinger JL, Wodlinger B, Downey JE, et al. High-performance neuroprosthetic control by an individual with tetraplegia [J]. Lancet, 2013, 381(9866): 557-564.
[22] McDonnell M. Action research arm test [J]. Aust J Physiother, 2008, 54(3): 220.
[23] Lee K, Liu D, Perroud L, et al. A brain-controlled exoskeleton with cascaded event-related desynchronization classifiers [J]. Robot Auton Syst, 2017. 90: 15-23.
[24] Collinger JL, Boninger ML, Bruns TM, et al. Functional priorities, assistive technology, and brain-computer interfaces after spinal cord injury [J]. J Rehabil Res Dev, 2013, 50(2): 145-160.
[25] Gorman PH, Wuolle KS, Peckham PH, et al. Patient selection for an upper extremity neuroprosthesis in tetraplegic individuals [J]. Spinal Cord, 1997, 35(9): 569-573.
[26] Mcfarland DJ, Wolpaw JR. Brain-computer interfaces for communication and control [J]. Commun ACM, 2011, 54(5): 60-66.
[27] Osuagwu BC, Wallace L, Fraser M, et al. Rehabilitation of hand in subacute tetraplegic patients based on brain computer interface and functional electrical stimulation: a randomised pilot study [J]. J Neural Eng, 2016, 13(6): 065002.
[28] Vidaurre C, Klauer C, Schauer T, et al. EEG-based BCI for the linear control of an upper-limb neuroprosthesis [J]. Med Eng Phys, 2016, 38(11): 1195-1204.
[29] Vu?kovi? A, Wallace L, Allan DB. Hybrid brain-computer interface and functional electrical stimulation for sensorimotor training in participants with tetraplegia [J]. J Neurol Phys Ther, 2015, 39(1): 3-14.
[30] Rohm M, Schneiders M, Müller C, et al. Hybrid brain-computer interfaces and hybrid neuroprostheses for restoration of upper limb functions in individuals with high-level spinal cord injury [J]. Artif Intell Med, 2013, 59(2): 133-142.
[31] Rohm M, Müller-Putz GR, Ascheberg AV, et al. Modular FES-hybrid orthosis for individualized setup of BCI controlled motor substitution and recovery [J]. Inter J Bioelectromag, 2011, 13(3): 127-128.
[32] 周鹏,曹红宝,熊屹,等. 基于脑机接口的智能康复系统的设计[J]. 计算机工程与应用, 2007, 43(26):1-4.
[33] Do AH, Wang PT, King CE, et al. Brain-computer interface controlled functional electrical stimulation system for ankle movement [J]. J Neuroeng Rehabil, 2011, 8(1): 49.
[34] 姚林,张定国,王颖. 脑机接口控制的下肢功能性电刺激系统研究[J]. 中国生物医学工程学报, 2012, 31(5): 690-696.
[35] Gourab K, Schmit BD. Changes in movement-related β-band EEG signals in human spinal cord injury [J]. Clin Neurophysiol, 2010, 121(12): 2017-2023.
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