《Chinese Journal of Rehabilitation Theory and Practice》 ›› 2022, Vol. 28 ›› Issue (11): 1342-1348.doi: 10.3969/j.issn.1006-9771.2022.11.014
Previous Articles Next Articles
LI Chaojinzi1,2a,HUANG Fubiao1,2b,DU Xiaoxia1,2a,ZHANG Haojie1,ZHANG Tong1,2a()
Received:
2022-08-28
Revised:
2022-09-26
Published:
2022-11-25
Online:
2022-12-20
Contact:
ZHANG Tong
E-mail:tom611@126.com
Supported by:
CLC Number:
LI Chaojinzi,HUANG Fubiao,DU Xiaoxia,ZHANG Haojie,ZHANG Tong. Brain functioning between dominant and non-dominant hemispheres during rehabilitation for subacute stroke[J]. 《Chinese Journal of Rehabilitation Theory and Practice》, 2022, 28(11): 1342-1348.
"
组别 | 脑区 | 治疗前 | 治疗后 |
---|---|---|---|
非优势半球组 (n = 10) | 同侧SMC | 2.66±2.24 | 2.67±1.69 |
对侧SMC | 4.32±3.41 | 4.60±4.62 | |
同侧PMC | 2.58±2.27 | 2.46±1.91 | |
对侧PMC | 4.28±3.82 | 3.77±2.61 | |
同侧PFC | 3.00±1.88 | 2.91±1.08 | |
对侧PFC | 3.85±2.47 | 3.77±2.68 | |
优势半球组 (n = 16) | 同侧SMC | 3.87±3.36 | 2.45±4.99 |
对侧SMC | 2.47±1.63 | 2.48±2.23 | |
同侧PMC | 3.67±3.00 | 5.05±6.80 | |
对侧PMC | 2.18±1.71 | 1.79±1.35 | |
同侧PFC | 2.75±3.24 | 3.69±3.70 | |
对侧PFC | 2.12±2.20 | 0.98±2.13 |
[1] |
CARLSON H L, CRAIG B T, HILDERLEY A J, et al. Structural and functional connectivity of motor circuits after perinatal stroke: a machine learning study[J]. Neuroimage Clin, 2020, 28: 102508.
doi: 10.1016/j.nicl.2020.102508 |
[2] |
KWAKKEL G, VAN PEPPEN R, WAGENAAR R C, et al. Effects of augmented exercise therapy time after stroke: a meta-analysis[J]. Stroke, 2004, 35(11): 2529-2539.
pmid: 15472114 |
[3] |
KWAKKEL G, KOLLEN B, TWISK J. Impact of time on improvement of outcome after stroke[J]. Stroke, 2006, 37(9): 2348-2353.
pmid: 16931787 |
[4] |
DOBKIN B H, CARMICHAEL S T. The specific requirements of neural repair trials for stroke[J]. Neurorehabil Neural Repair, 2016, 30(5): 470-478.
doi: 10.1177/1545968315604400 pmid: 26359342 |
[5] | 张豪杰, 王云雷, 樊令仲, 等. 亚急性期脑卒中康复过程中半球间皮质结构可塑性差异[J]. 中国康复理论与实践, 2021, 27(4): 436-444. |
ZHANG H J, WANG Y L, FAN L Z, et al. Differences of structural plasticity between hemispheres during rehabilitation for subacute stroke[J]. Chin J Rehabil Theory Pract, 2021, 27(4): 436-444. | |
[6] | 司娟宁, 张文玥, 李雅欣, 等. 功能近红外光谱成像技术在大脑认知功能中的应用[J]. 立体定向和功能性神经外科杂志, 2018, 31(3): 189-192. |
SI J N, ZHANG W Y, LI Y X, et al. Application of functional near-infrared spectroscopy in brain cognitive function[J]. J Stereotactic Functional Neurosurg, 2018, 31(3): 189-192. | |
[7] |
ZHANG Y, ZHU C. Assessing brain networks by resting-state dynamic functional connectivity: an fNIRS-EEG study[J]. Front Neurosci, 2020, 13: 1430.
doi: 10.3389/fnins.2019.01430 |
[8] |
LI X, FANG F, LI R, et al. Functional brain controllability alterations in stroke[J]. Front Bioeng Biotechnol, 2022, 10: 925970.
doi: 10.3389/fbioe.2022.925970 |
[9] |
FERRARI M, QUARESIMA V. A brief review on the history of human functional near-infrared spectroscopy (fNIRS) development and fields of application[J]. Neuroimage, 2012, 63(2): 921-935.
doi: 10.1016/j.neuroimage.2012.03.049 pmid: 22510258 |
[10] |
CHEN W L, WAGNER J, HEUGEL N, et al. Functional near-infrared spectroscopy and its clinical application in the field of neuroscience: advances and future directions[J]. Front Neurosci, 2020, 14: 724.
doi: 10.3389/fnins.2020.00724 |
[11] |
LU K, XU G, LI W, et al. Frequency-specific functional connectivity related to the rehabilitation task of stroke patients[J]. Med Phys, 2019, 46(4): 1545-1560.
doi: 10.1002/mp.13398 pmid: 30675729 |
[12] |
LEFF D R, ORIHUELA-ESPINA F, ELWELL C E, et al. Assessment of the cerebral cortex during motor task behaviours in adults: a systematic review of functional near infrared spectroscopy (fNIRS) studies[J]. Neuroimage, 2011, 54(4): 2922-2936.
doi: 10.1016/j.neuroimage.2010.10.058 pmid: 21029781 |
[13] |
MIYAI I, YAGURA H, HATAKENAKA M, et al. Longitudinal optical imaging study for locomotor recovery after stroke[J]. Stroke, 2003, 34(12): 2866-2870.
pmid: 14615624 |
[14] |
WANG L, YU C, CHEN H, et al. Dynamic functional reorganization of the motor execution network after stroke[J]. Brain, 2010, 133(Pt 4): 1224-1238.
doi: 10.1093/brain/awq043 pmid: 20354002 |
[15] |
PARK C H, CHANG W H, OHN S H, et al. Longitudinal changes of resting-state functional connectivity during motor recovery after stroke[J]. Stroke, 2011, 42(5): 1357-1362.
doi: 10.1161/STROKEAHA.110.596155 |
[16] |
PUNDIK S, MCCABE J P, HROVAT K, et al. Recovery of post stroke proximal arm function, driven by complex neuroplastic bilateral brain activation patterns and predicted by baseline motor dysfunction severity[J]. Front Hum Neurosci, 2015, 9: 394.
doi: 10.3389/fnhum.2015.00394 pmid: 26257623 |
[17] | 李晁金子, 黄富表, 杜晓霞, 等. 功能性近红外光谱技术在利手、非利手主动抓握-释放任务下脑区激活研究中的应用[J]. 中国康复理论与实践, 2021, 27(9): 1066-1071. |
LI C J Z, HUANG F B, DU X X, et al. Application of functional near-infrared spectroscopy in brain area activation research: dominant and non-dominant hand under active grasp-release task[J]. Chin J Rehabil Theory Pract, 2021, 27(9): 1066-1071. | |
[18] |
LI C, WONG Y, LANGHAMMER B, et al. A study of dynamic hand orthosis combined with unilateral task-oriented training in subacute stroke: a functional near-infrared spectroscopy case series[J]. Front Neurol, 2022, 13: 907186.
doi: 10.3389/fneur.2022.907186 |
[19] | AHO K, HARMSEN P, HATANO S, et al. Cerebrovascular disease in the community: results of a WHO collaborative study[J]. Bull World Health Organ, 1980, 58(1): 113-130. |
[20] |
OLDFIELD R C. The assessment and analysis of handedness: the Edinburgh inventory[J]. Neuropsychologia, 1971, 9(1): 97-113.
pmid: 5146491 |
[21] | WANG Y. Relations between the sides of linguistic cerebral dominance and manuality in Chinese aphasics[J]. Chin Med J (Engl), 1996, 109(7): 572-575. |
[22] |
ARYA K N, VERMA R, GARG R K, et al. Meaningful task-specific training (MTST) for stroke rehabilitation: a randomized controlled trial[J]. Top Stroke Rehabil, 2012, 19(3): 193-211.
doi: 10.1310/tsr1903-193 pmid: 22668675 |
[23] | 赵江莉, 毛玉瑢, 徐智勤, 等. 中文版上肢动作研究量表在早期脑梗死患者中的效度[J]. 中国康复理论与实践, 2019, 25(8): 946-955. |
ZHAO J L, MAO Y R, XU Z Q, et al. Validity of Chinese version of Action Research Arm Test in patients with early cerebral infarction[J]. Chin J Rehabil Theory Pract, 2019, 25(8): 946-955. | |
[24] |
WONG Y, LI C J, ADA L, et al. Upper limb training with a dynamic hand orthosis in early subacute stroke: a pilot randomized trial[J]. J Rehabil Med, 2022, 54: jrm00279.
doi: 10.2340/jrm.v54.2231 |
[25] |
FRANCESCHINI M A, JOSEPH D K, HUPPERT T J, et al. Diffuse optical imaging of the whole head[J]. J Biomed Opt, 2006, 11(5): 054007.
doi: 10.1117/1.2363365 |
[26] |
JULIEN C. The enigma of Mayer waves: facts and models[J]. Cardiovasc Res, 2006, 70(1): 12-21.
pmid: 16360130 |
[27] | 桑妮, 张璇, 朱玲, 等. 任务导向性功能性训练对脑卒中偏瘫患者肢体功能的改善效果[J]. 中国医药导报, 2021, 18(36): 154-157. |
SANG N, ZHAHG X, ZHU L, et al. Improvement effect of task-oriented functional training on limb function in stroke patients with hemiplegia[J]. Chin Med Herald, 2021, 18(36): 154-157. | |
[28] | BOSCH J, O'DONNELL M J, BARRECA S, et al. Does task-oriented practice improve upper extremity motor recovery after stroke? A systematic review[J]. ISRN Stroke, 2014, 2014: 1-10. |
[29] |
TURTON A J, CUNNINGHAM P, VAN WIJCK F, et al. Home-based reach-to-grasp training for people after stroke is feasible: a pilot randomised controlled trial[J]. Clin Rehabil, 2017, 31(7): 891-903.
doi: 10.1177/0269215516661751 pmid: 27470470 |
[30] | LEE H C, KUO F L, LIN Y N, et al. Effects of robot-assisted rehabilitation on hand function of people with stroke: a randomized, crossover-controlled, assessor-blinded study[J]. Am J Occup Ther, 2021, 75(1): 7501205020p1-7501205020p11. |
[31] |
TORRISI M, MAGGIO M G, COLA M, et al. Beyond motor recovery after stroke: the role of hand robotic rehabilitation plus virtual reality in improving cognitive function[J]. J Clin Neurosci, 2021, 92(9859): 11-16.
doi: 10.1016/j.jocn.2021.07.053 |
[32] | 骆丽, 黄宋余, 邹晶晶, 等. 运动想象疗法联合任务导向性训练对脑卒中偏瘫患者上肢运动功能的影响[J]. 按摩与康复医学, 2022, 13(9): 14-17. |
LUO L, HUANG S Y, ZOU J J, et al. Effect of motor imagery combined with task oriented training on upper limb motor function of stroke patients[J]. Chin Manipulat Rehabil, 2022, 13(9): 14-17. | |
[33] | 赵琴, 费世早, 方芬, 等. 高频重复经颅磁刺激联合任务导向性训练对脑卒中后偏瘫患者上肢运动功能康复效果的影响[J]. 实用心脑肺血管病杂志, 2022, 30(1): 113-116, 123. |
ZHAO Q, FEI S Z, FANG F, et al. Impact on rehabilitation effects of high-frequency repetitive transcranial magnetic stimulation combined with task oriented training on upper limb motor function in patients with hemiplegia after stroke[J]. Pract J Cardiac Cereb Pneum Vasc Dis, 2022, 30(1): 113-116, 123. | |
[34] | 梁明, 徐奕鹏, 曲源, 等. 基于3D环境的虚拟现实任务导向训练在脑卒中患者平衡功能康复中的应用[J]. 临床神经病学杂志, 2021, 34(5): 348-351. |
LIANG M, XU Y P, QU Y, et al. Application of virtual reality task oriented training based on 3D environments balance rehabilitation in stroke patients[J]. J Clin Neurol, 2021, 34(5): 348-351. | |
[35] | 孙丽春, 王亚苗, 吴乾利, 等. A型肉毒毒素结合任务导向训练治疗脑卒中后上肢痉挛[J]. 中国临床研究, 2020, 33(10): 1377-1382. |
SUN L C, WANG Y M, WU Q L, et al. Botulinum toxin type A combined with task-oriented training in the treatment of upper limb spasticity after stroke[J]. Chin J Clin Res, 2020, 33(10): 1377-1382. | |
[36] |
HUNG J W, YEN C L, CHANG K C, et al. A pilot randomized controlled trial of botulinum toxin treatment combined with robot-assisted therapy, mirror therapy, or active control treatment in patients with spasticity following stroke[J]. Toxins (Basel), 2022, 14(6): 415.
doi: 10.3390/toxins14060415 |
[37] | 胡非非, 王磊磊, 罗鑫. 头针联合任务导向性训练对脑卒中下肢运动功能的影响[J]. 中国医药导报, 2020, 17(14): 82-85. |
HU F F, WANG L L, LUO X. Effect of head needle combined with task orientation training on lower limb motor function in stroke[J]. Chin Med Herald, 2020, 17(14): 82-85. | |
[38] | 梁森, 蔡庆, 陈曦, 等. 任务导向训练改善脑卒中患者上肢运动功能和日常生活能力的系统评价[J]. 中华物理医学与康复杂志, 2021, 43(8): 744-747. |
LIANG S, CAI Q, CHEN X, et al. Chin J Phys Med Rehabil, 2021, 43(8): 744-747. | |
[39] |
BAJAJ S, DRAKE D, BUTLER A J, et al. Oscillatory motor network activity during rest and movement: an fNIRS study[J]. Front Syst Neurosci, 2014, 8: 13.
doi: 10.3389/fnsys.2014.00013 pmid: 24550793 |
[40] |
BUETEFISCH C M. Role of the contralesional hemisphere in post-stroke recovery of upper extremity motor function[J]. Front Neurol, 2015, 6: 214.
doi: 10.3389/fneur.2015.00214 pmid: 26528236 |
[41] |
REHME A K, FINK G R, VON CRAMON D Y, et al. The role of the contralesional motor cortex for motor recovery in the early days after stroke assessed with longitudinal fMRI[J]. Cereb Cortex, 2011, 21(4): 756-768.
doi: 10.1093/cercor/bhq140 pmid: 20801897 |
[42] |
FAVRE I, ZEFFIRO T A, DETANTE O, et al. Upper limb recovery after stroke is associated with ipsilesional primary motor cortical activity: a meta-analysis[J]. Stroke, 2014, 45(4): 1077-1083.
doi: 10.1161/STROKEAHA.113.003168 pmid: 24525953 |
[43] |
REHME A K, GREFKES C. Cerebral network disorders after stroke: evidence from imaging-based connectivity analyses of active and resting brain states in humans[J]. J Physiol, 2013, 591(1): 17-31.
doi: 10.1113/jphysiol.2012.243469 |
[44] |
GREFKES C, FINK G R. Connectivity-based approaches in stroke and recovery of function[J]. Lancet Neurol, 2014, 13(2): 206-216.
doi: 10.1016/S1474-4422(13)70264-3 pmid: 24457190 |
[45] |
VIDAL A C, BANCA P, PASCOAL A G, et al. Bilateral versus ipsilesional cortico-subcortical activity patterns in stroke show hemispheric dependence[J]. [ahead of print]. Int J Stroke, 2018. doi: 10.1177/1747493018767164.
doi: 10.1177/1747493018767164 |
[46] | LIEW S L, GARRISON K A, ITO K L, et al. Laterality of poststroke cortical motor activity during action observation is related to hemispheric dominance[J]. Neural Plast, 2018, 2018: 3524960. |
[47] |
YUAN Z, XU W, BAO J, et al. Task-state cortical motor network characteristics by functional near-infrared spectroscopy in subacute stroke show hemispheric dominance[J]. Front Aging Neurosci, 2022, 14: 932318.
doi: 10.3389/fnagi.2022.932318 |
[48] |
LU K, XU G, LI W, et al. Frequency-specific functional connectivity related to the rehabilitation task of stroke patients[J]. Med Phys, 2019, 46(4): 1545-1560.
doi: 10.1002/mp.13398 pmid: 30675729 |
[49] |
ARUN K M, SMITHA K A, SYLAJA P N, et al. Identifying resting-state functional connectivity changes in the motor cortex using fNIRS during recovery from stroke[J]. Brain Topogr, 2020, 33(6): 710-719.
doi: 10.1007/s10548-020-00785-2 |
[50] |
HARVEY R L, EDWARDS D, DUNNING K, et al. Randomized sham-controlled trial of navigated repetitive transcranial magnetic stimulation for motor recovery in stroke[J]. Stroke, 2018, 49(9): 2138-2146.
doi: 10.1161/STROKEAHA.117.020607 pmid: 30354990 |
[51] |
YANG Y, PAN H, PAN W, et al. Repetitive transcranial magnetic stimulation on the affected hemisphere enhances hand functional recovery in subacute adult stroke patients: a randomized trial[J]. Front Aging Neurosci, 2021, 13: 636184.
doi: 10.3389/fnagi.2021.636184 |
[52] |
BERNHARDT J, HAYWARD K S, KWAKKEL G, et al. Agreed definitions and a shared vision for new standards in stroke recovery research: the Stroke Recovery and Rehabilitation Roundtable taskforce[J]. Int J Stroke, 2017, 12(5): 444-450.
doi: 10.1177/1747493017711816 pmid: 28697708 |
[53] |
ISSARD C, GERVAIN J. Variability of the hemodynamic response in infants: influence of experimental design and stimulus complexity[J]. Dev Cogn Neurosci, 2018, 33: 182-193.
doi: 10.1016/j.dcn.2018.01.009 |
[54] |
BENDAHAN D, CHATEL B, JUE T. Comparative NMR and NIRS analysis of oxygen-dependent metabolism in exercising finger flexor muscles[J]. Am J Physiol Regul Integr Comp Physiol, 2017, 313(6): R740-R753.
doi: 10.1152/ajpregu.00203.2017 |
[1] | LIN Na, GAO Hanlu, LU Huiping, CHEN Yanqing, ZHENG Junfan, CHEN Shurong. Effect of virtual reality on upper limb function after stroke: a study of diffusion tensor imaging [J]. 《Chinese Journal of Rehabilitation Theory and Practice》, 2024, 30(1): 61-67. |
[2] | WANG Haoyi, SHI Yawei, LU Jun, XU Guangxu. Impact of subjective vertical perception impairment on function in stroke patients: a retrospective study [J]. 《Chinese Journal of Rehabilitation Theory and Practice》, 2024, 30(1): 68-73. |
[3] | CHEN Junwen, CHEN Qian, CHEN Cheng, LI Shuyue, LIU Lingling, WU Cunshu, GONG Xiang, LU Jun, XU Guangxu. Effect of modified Baduanjin exercise on cardiopulmonary function, motor function and activities of daily living for stroke patients [J]. 《Chinese Journal of Rehabilitation Theory and Practice》, 2024, 30(1): 74-80. |
[4] | HU Yonglin, MA Ying, DOU Chao, LU Anmin, JIANG Xiaoge, SONG Xinjian, XIAO Yuhua. Effect of neural mobilization based on shoulder control training on shoulder pain and upper limb function in stroke patients with hemiplegia [J]. 《Chinese Journal of Rehabilitation Theory and Practice》, 2024, 30(1): 81-86. |
[5] | WANG He, HAN Liang, KAN Mengfan, YU Shaohong. Efficacy of electrical stimulation on shoulder-hand syndrome after stroke: a systematic review and meta-analysis [J]. 《Chinese Journal of Rehabilitation Theory and Practice》, 2023, 29(9): 1048-1056. |
[6] | SUN Tengfang, REN Mengting, YANG Lin, WANG Yaoting, WANG Hongyu, YAN Xingzhou. Effect of hyperbaric oxygen therapy combined with repetitive peripheral magnetic stimulation on ankle motor function and balance of stroke patients [J]. 《Chinese Journal of Rehabilitation Theory and Practice》, 2023, 29(8): 875-881. |
[7] | WANG Ya'nan, LIU Xihua. Correlation and predictive effect of subjective and objective balance function measurements in stroke patients with hemiplegia [J]. 《Chinese Journal of Rehabilitation Theory and Practice》, 2023, 29(8): 890-895. |
[8] | WANG Haiyun, WANG Yin, ZHOU Xinjie, HE Aiqun. Effect of transcranial direct current stimulation combined with acupuncture on central and upper limb function in stroke patients based on central-peripheral-central theory [J]. 《Chinese Journal of Rehabilitation Theory and Practice》, 2023, 29(8): 919-925. |
[9] | CHEN Yiting, WANG Qian, CUI Shenhong, LI Yingcai, ZHANG Siyu, WEI Yanxu, REN Hui, LENG Jun, CHEN Bin. Effect of bilateral sequential repetitive transcranial magnetic stimulation on motor function of upper limbs in stroke patients [J]. 《Chinese Journal of Rehabilitation Theory and Practice》, 2023, 29(8): 926-932. |
[10] | LI Zhenya, SUN Jie, GUO Pengfei, WANG Guangming. Correlation between changes of swallowing function in oral and pharyngeal phases, and aspiration in stroke patients based on videofluroscopic swallowing study [J]. 《Chinese Journal of Rehabilitation Theory and Practice》, 2023, 29(8): 933-939. |
[11] | HUA Ling, ZHANG Yi'nan, ZHENG Yu, SUN Qiaoyi, FANG Hui, SONG Da. Effect of hand controlled rhythm music therapy on unilateral spatial neglect after stroke [J]. 《Chinese Journal of Rehabilitation Theory and Practice》, 2023, 29(7): 833-838. |
[12] | JIANG Xiaocui, LIU Zhen, SU Qinglun, ZHAO Qin, XIA Xiaomei, LU Fei. Effect of intermittent theta burst transcranial magnetic stimulation on non-fluent aphasia after stroke [J]. 《Chinese Journal of Rehabilitation Theory and Practice》, 2023, 29(7): 839-843. |
[13] | XU Miaomiao, LI Nan, YING Ying, YANG Kaixiang, YANG Jingrui, LI Jie, QIU Yanqun. Effect of repetitive peripheral magnetic stimulation on upper limb motor function of stroke patients after contralateral seventh cervical nerve transfer [J]. 《Chinese Journal of Rehabilitation Theory and Practice》, 2023, 29(6): 686-690. |
[14] | ZHENG Li, BAO Zhicheng, ZHANG Qi, REN Xuyan, SU Min. Effect of transcutaneous auricular vagus nerve stimulation combined with robot-assisted therapy on upper limb function of stroke patients [J]. 《Chinese Journal of Rehabilitation Theory and Practice》, 2023, 29(6): 691-696. |
[15] | GU Bin, ZHANG Jinqin, XIA Yuanhao, HU Jingran, NAOKI Morohashi, HUANG Fubiao. Effect of repetitive facilitative exercise on hand function of stroke patients with hemiplegic during recovery period [J]. 《Chinese Journal of Rehabilitation Theory and Practice》, 2023, 29(6): 697-702. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||
|