Expectations and violations: Delineating the neural network of proactive inhibitory control

被引:140
作者
Zandbelt, Bram B. [1 ,2 ]
Bloemendaal, Mirjam [1 ,3 ]
Neggers, Sebastiaan F. W. [1 ]
Kahn, Rene S. [1 ]
Vink, Matthijs [1 ]
机构
[1] Univ Med Ctr Utrecht, Rudolf Magnus Inst Neurosci, Dept Psychiat, NL-3508 GA Utrecht, Netherlands
[2] Vanderbilt Univ, Dept Psychol, Ctr Integrat & Cognit Neurosci, Nashville, TN 37240 USA
[3] Radboud Univ Nijmegen, Ctr Cognit Neuroimaging, Donders Inst Brain Cognit & Behav, NL-6525 ED Nijmegen, Netherlands
关键词
cognitive control; response inhibition; stop-signal; anticipation; probabilistic; basal ganglia; striatum; presupplementary motor area; anterior cingulated; midbrain; inferior frontal cortex; STOP-SIGNAL PARADIGM; SUPPLEMENTARY MOTOR AREA; INFERIOR FRONTAL GYRUS; RESPONSE-INHIBITION; BASAL GANGLIA; ATTENTION; TIME; STRIATUM; SCHIZOPHRENIA; STIMULATION;
D O I
10.1002/hbm.22047
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The ability to stop a prepared response (reactive inhibition) appears to depend on the degree to which stopping is expected (proactive inhibition). Functional MRI studies have shown that activation during proactive and reactive inhibition overlaps, suggesting that the whole neural network for reactive inhibition becomes already activated in anticipation of stopping. However, these studies measured proactive inhibition as the effect of stop-signal probability on activation during go trials. Therefore, activation could reflect expectation of a stop-signal (evoked by the stop-signal probability cue), but also violation of this expectation because stop-signals do not occur on go trials. We addressed this problem, using a stop-signal task in which the stop-signal probability cue and the go-signal were separated in time. Hence, we could separate activation during the cue, reflecting expectation of the stop-signal, from activation during the go-signal, reflecting expectation of the stop-signal or violation of that expectation. During the cue, the striatum, the supplementary motor complex (SMC), and the midbrain activated. During the go-signal, the right inferior parietal cortex (IPC) and the right inferior frontal cortex (IFC) activated. These findings suggest that the neural network previously associated with proactive inhibition can be subdivided into two components. One component, including the striatum, the SMC, and the midbrain, activated during the cue, implicating this network in proactive inhibition. Another component, consisting of the right IPC and the right IFC, activated during the go-signal. Rather than being involved in proactive inhibition, this network appears to be involved in processes associated with violation of expectations. Hum Brain Mapp 34:2015-2024, 2013. (c) 2011 Wiley Periodicals, Inc.
引用
收藏
页码:2015 / 2024
页数:10
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