• 文献检索
  • 文档翻译
  • 深度研究
  • 学术资讯
  • Suppr Zotero 插件Zotero 插件
  • 邀请有礼
  • 套餐&价格
  • 历史记录
应用&插件
Suppr Zotero 插件Zotero 插件浏览器插件Mac 客户端Windows 客户端微信小程序
定价
高级版会员购买积分包购买API积分包
服务
文献检索文档翻译深度研究API 文档MCP 服务
关于我们
关于 Suppr公司介绍联系我们用户协议隐私条款
关注我们

Suppr 超能文献

核心技术专利:CN118964589B侵权必究
粤ICP备2023148730 号-1Suppr @ 2026

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验

相似文献

1
Electrocorticographic Encoding of Human Gait in the Leg Primary Motor Cortex.腿部初级运动皮层的人类步态的脑电描记编码。
Cereb Cortex. 2018 Aug 1;28(8):2752-2762. doi: 10.1093/cercor/bhx155.
2
Dynamics of corticospinal motor control during overground and treadmill walking in humans.人类在地面和跑步机上行走时皮质脊髓运动控制的动力学。
J Neurophysiol. 2018 Sep 1;120(3):1017-1031. doi: 10.1152/jn.00613.2017. Epub 2018 May 30.
3
Contributions to the understanding of gait control.对步态控制理解的贡献。
Dan Med J. 2014 Apr;61(4):B4823.
4
Cortical control of normal gait and precision stepping: an fNIRS study.皮层对正常步态和精确踏步行走的控制:一项近红外光谱研究。
Neuroimage. 2014 Jan 15;85 Pt 1:415-22. doi: 10.1016/j.neuroimage.2013.04.070. Epub 2013 Apr 28.
5
Functional properties of human primary motor cortex gamma oscillations.人类初级运动皮层γ振荡的功能特性。
J Neurophysiol. 2010 Nov;104(5):2873-85. doi: 10.1152/jn.00607.2010. Epub 2010 Sep 8.
6
Level of participation in robotic-assisted treadmill walking modulates midline sensorimotor EEG rhythms in able-bodied subjects.参与机器人辅助跑步机行走的程度可调节健全受试者的中线感觉运动 EEG 节律。
Neuroimage. 2012 Nov 15;63(3):1203-11. doi: 10.1016/j.neuroimage.2012.08.019. Epub 2012 Aug 14.
7
Neural decoding of treadmill walking from noninvasive electroencephalographic signals.从非侵入性脑电信号中解码跑步机行走。
J Neurophysiol. 2011 Oct;106(4):1875-87. doi: 10.1152/jn.00104.2011. Epub 2011 Jul 13.
8
Characterization of electrocorticogram high-gamma signal in response to varying upper extremity movement velocity.针对不同上肢运动速度的脑电高gamma 信号特征。
Brain Struct Funct. 2017 Nov;222(8):3705-3748. doi: 10.1007/s00429-017-1429-8. Epub 2017 May 18.
9
Brain activation of lower extremity movement in chronically impaired stroke survivors.慢性功能受损中风幸存者下肢运动的脑激活情况
Neuroimage. 2005 May 15;26(1):184-94. doi: 10.1016/j.neuroimage.2005.01.027.
10
Sequential activation of premotor, primary somatosensory and primary motor areas in humans during cued finger movements.在提示手指运动过程中,人类运动前区、初级体感区和初级运动区的顺序激活。
Clin Neurophysiol. 2015 Nov;126(11):2150-61. doi: 10.1016/j.clinph.2015.01.005. Epub 2015 Jan 23.

引用本文的文献

1
At-Home Movement State Classification Using Totally Implantable Bidirectional Cortical-Basal Ganglia Neural Interface.使用完全植入式双向皮质-基底神经节神经接口的居家运动状态分类
Res Sq. 2025 Mar 12:rs.3.rs-6058394. doi: 10.21203/rs.3.rs-6058394/v1.
2
Could adaptive deep brain stimulation treat freezing of gait in Parkinson's disease?适应性深部脑刺激能否治疗帕金森病的步态冻结?
J Neurol. 2025 Mar 12;272(4):267. doi: 10.1007/s00415-025-13000-8.
3
Electrical brain activity during human walking with parametric variations in terrain unevenness and walking speed.在地形不平度和步行速度存在参数变化的情况下,人类行走过程中的脑电活动。
Imaging Neurosci (Camb). 2024;2. doi: 10.1162/imag_a_00097. Epub 2024 Feb 22.
4
Targeting auditory verbal hallucinations in schizophrenia: effective connectivity changes induced by low-frequency rTMS.针对精神分裂症中的听觉言语幻觉:低频 rTMS 诱导的有效连通性变化。
Transl Psychiatry. 2024 Sep 28;14(1):393. doi: 10.1038/s41398-024-03106-4.
5
Foot orientation and trajectory variability in locomotion: Effects of real-world terrain.运动中足的朝向和轨迹变化:真实地形的影响。
PLoS One. 2024 May 16;19(5):e0293691. doi: 10.1371/journal.pone.0293691. eCollection 2024.
6
Mobile neuroimaging: What we have learned about the neural control of human walking, with an emphasis on EEG-based research.移动神经影像学:我们从人类行走的神经控制中学到了什么,重点是基于脑电图的研究。
Neurosci Biobehav Rev. 2024 Jul;162:105718. doi: 10.1016/j.neubiorev.2024.105718. Epub 2024 May 12.
7
Human upper extremity motor cortex activity shows distinct oscillatory signatures for stereotyped arm and leg movements.人类上肢运动皮层活动显示出针对刻板的手臂和腿部运动的独特振荡特征。
Front Hum Neurosci. 2023 Aug 10;17:1212963. doi: 10.3389/fnhum.2023.1212963. eCollection 2023.
8
Walking naturally after spinal cord injury using a brain-spine interface.使用脑-脊髓接口实现脊髓损伤后的自然行走。
Nature. 2023 Jun;618(7963):126-133. doi: 10.1038/s41586-023-06094-5. Epub 2023 May 24.
9
Robust cortical encoding of 3D tongue shape during feeding in macaques.猴子进食过程中对 3D 舌形的稳健皮质编码。
Nat Commun. 2023 May 24;14(1):2991. doi: 10.1038/s41467-023-38586-3.
10
Mobile cognition: imaging the human brain in the 'real world'.移动认知:在“真实世界”中对人类大脑进行成像。
Nat Rev Neurosci. 2023 Jun;24(6):347-362. doi: 10.1038/s41583-023-00692-y. Epub 2023 Apr 12.

本文引用的文献

1
Comparison of decoding resolution of standard and high-density electrocorticogram electrodes.标准与高密度皮层脑电图电极解码分辨率的比较
J Neural Eng. 2016 Apr;13(2):026016. doi: 10.1088/1741-2560/13/2/026016. Epub 2016 Feb 9.
2
Multi-scale analysis of neural activity in humans: Implications for micro-scale electrocorticography.人类神经活动的多尺度分析:对微尺度皮层脑电图的启示。
Clin Neurophysiol. 2016 Jan;127(1):591-601. doi: 10.1016/j.clinph.2015.06.002. Epub 2015 Jun 11.
3
Isolating gait-related movement artifacts in electroencephalography during human walking.在人类行走过程中,从脑电图中分离与步态相关的运动伪迹。
J Neural Eng. 2015 Aug;12(4):046022. doi: 10.1088/1741-2560/12/4/046022. Epub 2015 Jun 17.
4
Neurophysiology. Decoding motor imagery from the posterior parietal cortex of a tetraplegic human.神经生理学。从一名四肢瘫痪患者的顶叶后皮质解码运动想象。
Science. 2015 May 22;348(6237):906-10. doi: 10.1126/science.aaa5417.
5
EEG Single-Trial Detection of Gait Speed Changes during Treadmill Walk.跑步机行走过程中步态速度变化的脑电图单次试验检测
PLoS One. 2015 May 1;10(5):e0125479. doi: 10.1371/journal.pone.0125479. eCollection 2015.
6
High and low gamma EEG oscillations in central sensorimotor areas are conversely modulated during the human gait cycle.在人类步态周期中,中央感觉运动区的高伽马和低伽马脑电振荡呈现相反的调制。
Neuroimage. 2015 May 15;112:318-326. doi: 10.1016/j.neuroimage.2015.03.045. Epub 2015 Mar 24.
7
Human spinal locomotor control is based on flexibly organized burst generators.人类脊髓运动控制基于灵活组织的爆发发生器。
Brain. 2015 Mar;138(Pt 3):577-88. doi: 10.1093/brain/awu372. Epub 2015 Jan 12.
8
EEG beta suppression and low gamma modulation are different elements of human upright walking.脑电图β波抑制和低γ波调制是人类直立行走的不同组成部分。
Front Hum Neurosci. 2014 Jul 8;8:485. doi: 10.3389/fnhum.2014.00485. eCollection 2014.
9
Altering spinal cord excitability enables voluntary movements after chronic complete paralysis in humans.改变脊髓兴奋性可使人在慢性完全瘫痪后进行自主运动。
Brain. 2014 May;137(Pt 5):1394-409. doi: 10.1093/brain/awu038. Epub 2014 Apr 8.
10
About the cortical origin of the low-delta and high-gamma rhythms observed in EEG signals during treadmill walking.关于在跑步机行走过程中脑电图信号中观察到的低频 delta 和高频 gamma 节律的皮质起源。
Neurosci Lett. 2014 Feb 21;561:166-70. doi: 10.1016/j.neulet.2013.12.059. Epub 2014 Jan 8.

腿部初级运动皮层的人类步态的脑电描记编码。

Electrocorticographic Encoding of Human Gait in the Leg Primary Motor Cortex.

机构信息

Department of Biomedical Engineering, University of California Irvine, Irvine, CA, USA.

Department of Electrical Engineering and Computer Science, University of California Irvine, Irvine, CA, USA.

出版信息

Cereb Cortex. 2018 Aug 1;28(8):2752-2762. doi: 10.1093/cercor/bhx155.

DOI:10.1093/cercor/bhx155
PMID:28981644
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6248549/
Abstract

While prior noninvasive (e.g., electroencephalographic) studies suggest that the human primary motor cortex (M1) is active during gait processes, the limitations of noninvasive recordings make it impossible to determine whether M1 is involved in high-level motor control (e.g., obstacle avoidance, walking speed), low-level motor control (e.g., coordinated muscle activation), or only nonmotor processes (e.g., integrating/relaying sensory information). This study represents the first invasive electroneurophysiological characterization of the human leg M1 during walking. Two subjects with an electrocorticographic grid over the interhemispheric M1 area were recruited. Both exhibited generalized γ-band (40-200 Hz) synchronization across M1 during treadmill walking, as well as periodic γ-band changes within each stride (across multiple walking speeds). Additionally, these changes appeared to be of motor, rather than sensory, origin. However, M1 activity during walking shared few features with M1 activity during individual leg muscle movements, and was not highly correlated with lower limb trajectories on a single channel basis. These findings suggest that M1 primarily encodes high-level gait motor control (i.e., walking duration and speed) instead of the low-level patterns of leg muscle activation or movement trajectories. Therefore, M1 likely interacts with subcortical/spinal networks, which are responsible for low-level motor control, to produce normal human walking.

摘要

虽然之前的非侵入性(例如脑电图)研究表明,人类初级运动皮层(M1)在步态过程中活跃,但非侵入性记录的局限性使得无法确定 M1 是否参与高级运动控制(例如,避免障碍物、行走速度)、低级运动控制(例如,协调肌肉激活)或仅非运动过程(例如,整合/传递感觉信息)。这项研究代表了在行走过程中对人类腿部 M1 进行的首次侵入性电神经生理学特征描述。招募了两名在大脑半球间 M1 区域有脑电皮层图的受试者。两人在跑步机上行走时,M1 之间均表现出广泛的γ波段(40-200 Hz)同步,以及每个步幅内的周期性γ波段变化(跨越多种行走速度)。此外,这些变化似乎是运动的,而不是感觉的起源。然而,M1 在行走时的活动与 M1 在单个腿部肌肉运动时的活动几乎没有共同特征,并且与单通道下肢轨迹的相关性也不高。这些发现表明,M1 主要编码高级步态运动控制(即行走时间和速度),而不是腿部肌肉激活或运动轨迹的低级模式。因此,M1 可能与负责低级运动控制的皮质下/脊髓网络相互作用,以产生正常的人类行走。