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首页> 外文期刊>Frontiers in Human Neuroscience >To Go or Not to Go: Degrees of Dynamic Inhibitory Control Revealed by the Function of Grip Force and Early Electrophysiological Indices
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To Go or Not to Go: Degrees of Dynamic Inhibitory Control Revealed by the Function of Grip Force and Early Electrophysiological Indices

机译:去或不去:动态抑制的程度通过抓地力和早期电生理指标的功能揭示

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A critical issue in executive control is how the nervous system exerts flexibility to inhibit a prepotent response and adapt to sudden changes in the environment. In this study, force measurement was used to capture “partial” unsuccessful trials that are highly relevant in extending the current understanding of motor inhibition processing. Moreover, a modified version of the stop-signal task was used to control and eliminate potential attentional capture effects from the motor inhibition index. The results illustrate that the non-canceled force and force rate increased as a function of stop-signal delay (SSD), offering new objective indices for gauging the dynamic inhibitory process. Motor response (time and force) was a function of delay in the presentation of novel/infrequent stimuli. A larger lateralized readiness potential (LRP) amplitude in go and novel stimuli indicated an influence of the novel stimuli on central motor processing. Moreover, an early N1 component reflects an index of motor inhibition in addition to the N2 component reported in previous studies. Source analysis revealed that the activation of N2 originated from inhibitory control associated areas: the right inferior frontal gyrus (rIFG), pre-motor cortex, and primary motor cortex. Regarding partial responses, LRP and error-related negativity (ERNs) were associated with error correction processes, whereas the N2 component may indicate the functional overlap between inhibition and error correction. In sum, the present study has developed reliable and objective indices of motor inhibition by introducing force, force-rate and electrophysiological measures, further elucidating our understandings of dynamic motor inhibition and error correction.
机译:行政控制中的一个关键问题是神经系统如何施加灵活性,以抑制预先响应并适应环境的突然变化。在这项研究中,使用力测量来捕获在延长对电机抑制处理的目前了解的“部分”不成功的试验中。此外,停止信号任务的修改版本用于控制和消除来自电动机抑制指数的潜在注意力捕获效应。结果说明了非取消的力和力率随着停止信号延迟(SSD)的函数而增加,提供用于测量动态抑制过程的新客观指标。电机响应(时间和力量)是小说/不经常刺激的呈现延迟的函数。 Go和新型刺激的较大侧向的准备潜力(LRP)幅度表明了新型刺激对中心电机处理的影响。此外,除了先前研究中报道的N2组分之外,早期的N1组分反映了电动机抑制指数。源分析显示,N2的激活源自抑制控制相关领域:右下额相回到(RIFG),电机前皮质和初级电机皮质。关于部分响应,LRP和误差相关的消极性(ERNS)与纠错过程相关联,而N2分量可以指示禁止和纠错之间的功能重叠。总之,本研究通过引入力,力率和电生理学措施,开发了可靠和客观指数的电机抑制,进一步阐明了我们对动态电机抑制和纠错的理解。

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