| Literature DB >> 24086758 |
Kyriaki Nikolaou1, Hugo Critchley, Theodora Duka.
Abstract
Alcohol impairs inhibitory control, including the ability to terminate an initiated action. While there is increasing knowledge about neural mechanisms involved in response inhibition, the level at which alcohol impairs such mechanisms remains poorly understood. Thirty-nine healthy social drinkers received either 0.4 g/kg or 0.8 g/kg of alcohol, or placebo, and performed two variants of a Visual Stop-signal task during acquisition of functional magnetic resonance imaging (fMRI) data. The two task variants differed only in their instructions: in the classic variant (VSST), participants inhibited their response to a "Go-stimulus" when it was followed by a "Stop-stimulus". In the control variant (VSST_C), participants responded to the "Go-stimulus" even if it was followed by a "Stop-stimulus". Comparison of successful Stop-trials (Sstop)>Go, and unsuccessful Stop-trials (Ustop)>Sstop between the three beverage groups enabled the identification of alcohol effects on functional neural circuits supporting inhibitory behaviour and error processing. Alcohol impaired inhibitory control as measured by the Stop-signal reaction time, but did not affect other aspects of VSST performance, nor performance on the VSST_C. The low alcohol dose evoked changes in neural activity within prefrontal, temporal, occipital and motor cortices. The high alcohol dose evoked changes in activity in areas affected by the low dose but importantly induced changes in activity within subcortical centres including the globus pallidus and thalamus. Alcohol did not affect neural correlates of perceptual processing of infrequent cues, as revealed by conjunction analyses of VSST and VSST_C tasks. Alcohol ingestion compromises the inhibitory control of action by modulating cortical regions supporting attentional, sensorimotor and action-planning processes. At higher doses the impact of alcohol also extends to affect subcortical nodes of fronto-basal ganglia- thalamo-cortical motor circuits. In contrast, alcohol appears to have little impact on the early visual processing of infrequent perceptual cues. These observations clarify clinically-important effects of alcohol on behaviour.Entities:
Mesh:
Substances:
Year: 2013 PMID: 24086758 PMCID: PMC3783488 DOI: 10.1371/journal.pone.0076649
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1Visual Stop-signal task (VSST): Participants responded to the direction of a central green arrow (“Go-stimulus”), and withheld their response when the arrow turned red (“Stop-stimulus”) in the classic variant of the task.
In the control variant, participants were told to respond as they would normally to the direction of the “Go-stimulus” irrespective of whether it was followed by a “Stop-stimulus”. In both variants of the VSST, each trial began with the presentation of a fixation cross of varied duration. On “Stop-trials”, the “Go-stimulus” was replaced, following a varied Stimulus Onset Asynchrony (SOA), by the “Stop-stimulus”. In the classic variant, the SOA increased or decreased by 50msec as a function of whether participants were correct or not, respectively, at inhibiting their response to the “Stop-stimulus”. In the control variant, the SOA also varied in 50msec increments, but randomly. The total stimulus-display duration (TSD) was 800ms.
Demographic information (age, gender, weight), Trait characteristics (AUQ, AEQ, BIS and word recall), and BAC measurements (post-drinking and post-scanning) presented separately for the placebo, the 0.4g/kg, and the 0.8g/kg alcohol-dose groups.
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| 22.23 (±4.94) | 22.08 (±3.38) | 21.23 (±2.49) |
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| 6M, 7F | 7M, 6F | 6M, 7F |
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| 69.93 (±12.66) | 68.18 (±12.76) | 72.68 (±10.46) |
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| 25.24 (±14.67) | 26.06 (±11.70) | 27.95 (±10.07) |
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| 46.26 (±25.67) | 56.14 (±35.85) | 52.60 (±25.51) |
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| 8.92 (±2.22) | 8.54 (±1.81) | 7.77 (±1.59) |
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| 16.62 (±3.52) | 16.54 (±2.96) | 18.31 (±3.15) |
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| 25.46 (±4.79) | 22.85 (±3.02) | 26.38 (±5.11) |
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| 24.31 (±4.57) | 23.15 (±5.23) | 25.46 (±4.84) |
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| 13.54 (±1.62) | 13.46 (±1.86) | 14.52 (±2.12) |
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| 13.38 (±2.57) | 14.26 (±1.93) | 15.23 (±2.14) |
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| 0 | 0.59 (±0.13) | 1.16 (±0.34) |
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| 0 | 0.35 (±0.09) | 0.99 (±0.11) |
); ); ); ); ); Data are presented in mean (±SD).
Subjective ratings of feelings due to alcohol ingestion (VAS) taken pre- and post-drinking, presented separately for the placebo, the 0.4g/kg, and the 0.8g/kg alcohol-dose groups.
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| 4.02 (±4.73) | 27.69 (±32.14) | 11.45 (±15.14) |
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| 29.83 (±24.70) | 42.39 (±32.74) | 55.98 (±27.06) | |
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| 3.68 (±4.12) | 19.32 (±21.45) | 11.97 (±15.34) |
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| 5.21 (±8.38) | 6.84 (±7.89) | 13.33 (±13.66) | |
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| 53.59 (±20.53) | 49.57 (±20.59) | 50.09 (±13.57) |
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| 52.48 (±18.88) | 50.43 (±17.26) | 66.24 (±9.27) | |
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| 60.60 (±14.29) | 61.28 (±25.88) | 51.45 (±17.89) |
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| 48.55 (±19.97) | 42.65 (±18.02) | 53.59 (±20.63) | |
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| 62.82 (±17.80) | 63.08 (±24.16) | 56.75 (±20.98) |
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| 65.04 (±15.82) | 71.54 (±18.69) | 68.63 (±19.92) | |
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| 63.33 (±16.23) | 62.65 (±24.61) | 56.41 (±18.28) |
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| 57.69 (±22.12) | 65.21 (±21.13) | 74.27 (±16.77) | |
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| 50.94 (±19.91) | 57.52 (±26.85) | 51.20 (±22.77) |
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| 54.36 (±23.62) | 71.20 (±21.64) | 74.79 (±16.74) |
VAS (Subjective Effects, Visual Analogue Scale); Data are presented in mean (±SD) ; For significant effects see results-section.
Indices of performance in the VSST (at baseline and during scanning) and VSST_C, presented separately for the placebo, the 0.4g/kg, and the 0.8g/kg alcohol-dose groups.
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| 257.21 (±25.31) | 273.66 (±40.99) | 278.32 (±48.55) |
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| 241.84 (±36.82) | 279.95 (±41.44) | 300.86 (±40.45) | |
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| 519.90 (±87.59) | 525.97 (±115.50) | 528.35 (±84.84) |
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| 497.60 (±88.13) | 505.43 (±92.06) | 516.82 (±91.55) | |
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| 98.78 (±1.11) | 99.10 (±1.20) | 98.85 (±1.30) |
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| 85.32 (±8.75) | 94.55 (±8.07) | 94.87 (±7.10) | |
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| 51.35 (±3.88) | 56.35 (±7.50) | 53.85 (±4.88) |
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| 51.73 (±3.44) | 51.92 (±2.34) | 48.46 (±3.26) | |
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| 411.20 (±55.77) | 439.82 (±75.04) | 444.32 (±64.92) | |
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| 98.46 (±1.44) | 91.41 (±12.6) | 97.18 (±2.30) | |
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| 410.24 (±34.42) | 437.34 (±87.63) | 462.17 (±70.73) | |
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| 91.67 (±17.00) | 88.08 (±14.07) | 95.42 (±4.77) |
SSRT (Stop-signal Reaction Time) ; Data are presented in mean (±SD) ; For significant effects see results-section.
Sstop>Go activations that were unaffected by exclusive masking with the Stop_VSST_C>Go_VSST_C contrast in the placebo group (p <.005, unc. k ≥ 13 voxels).
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| Inferior Frontal pars Opercularis (BA48) | 442 | R | 8.89 | 46 12 12 (32 14 12 |
| Middle Frontal gyrus (BA46) | 127 | L | 5.89 | -42 38 34 |
| Posterior insula (BA48) | 15 | R | 4.21 | 36 -18 20 |
| Anterior insula (BA48) | 41 | L | 4.01 | -28 26 4 |
| Insula (BA48) | 64 | R | 6.51 | 38 -2 -6 |
| Pre-SMA (BA6) | 294 | R | 5.53 | 12 12 48 |
| Paracentral lobule/SMA proper (BA4) | 17 | L | 4.62 | -12-24 52 |
| Middle cingulate | 57 | R | 4.2 | 14-22 40 |
| Precentral gyrus (BA6) | 58 | L | 5.57 | -30-6 48 |
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| Supramarginal gyrus (BA40) | 107 | L | 4.82 | -62-30 30 |
| Superior Parietal gyrus | 96 | L | 4.24 | -40-48 62 |
| Inferior Temporal gyrus | 16 | R | 4.37 | 50-58 -18 |
| Middle Temporal pole/Parahip/pal gyrus | 112 | R | 7.43 | 22 6-32 |
| Middle Temporal gyrus (BA37) | 44 | L | 4.84 | -58-64 4 |
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| Middle Occipital gyrus (BA18) | 78 | R | 6.73 | 40-84 2 |
| Cerebellum | 90 | L | 5.61 | -8-80 -44 |
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| Putamen | 26 | L | 4.43 | -24 12 6 |
| Caudate | 19 | L | 4.3 | -6 8 10 |
| Hypothalamus | 15 | L | 4.09 | -8-8 -8 |
BA = Broadmann area; R=right, L=left; MNI coordinates represent cluster peaks;
Activations resulting from conjunction analysis of Sstop>Go and Stop_VSST_C>Go_VSST_C contrasts in the placebo group (p <.005, unc. k ≥ 13 voxels).
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| Inferior Frontal pars Opercularis (BA48) | 36 | R | 7.15 | 50 14 10 |
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| Supramarginal gyrus (BA40) | 90 | R | 5.49 | 50 -42 40 |
| Angular gyrus | 79 | R | 5.42 | 44-58 50 |
| Inferior Parietal gyrus | 30 | L | 4.79 | -52-48 42 |
| Superior Temporal gyrus | 15 | R | 4.27 | 50 -40 22 |
| Middle Temporal gyrus | 25 | R | 4.22 | 58 -50 2 |
BA = Broadmann area ; R=right, L=left; MNI coordinates represent cluster peaks.
Activations resulting from the Sstop>Go contrast One-way ANOVA (p <.005, k ≥ 13 voxels).
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| Middle Frontal gyrus | 20 | R | 11.09 | 42 56 2 |
| Inferior Frontal orbitalis (BA47) | 23 | R | 9.23 | 42 34 -4 |
| Paracentral lobule/SMA proper(BA4) | 21 | L | 8.5 | -12-24 52 |
| Paracentral lobule | 13 | L | 7.11 | 0 -34 70 |
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| Postcentral/Inferior parietal gyrus | 16 | L | 7.66 | -42-28 34 |
| Posterior cingulate/precuneus | 77 | L | 11.49 | -18-40 16 |
| Inferior Temporal gyrus | 53 | R | 13.3 | 44 -42 -16 |
| Parahippocampal gyrus | 18 | R | 11.71 | 22-24 -20 |
| Middle Temporal pole/Parahip/pal gyrus | 27 | R | 9.91 | 20 4-32 |
BA = Broadmann area; R = right, L = left ; MNI coordinates represent cluster peaks; One- way ANOVA Results: Linear increases; Non-linear
Figure 2Activations reflecting the main effect of group from the one-way ANOVA Sstop>Go 2nd-level model (thresholded at p < 0.005, k = 13; scale represents F statistic; see results section for details).
Linear increases were found in inferior frontal gyrus pars orbitalis (Figure 2A), while linear reductions were observed in an inferior temporal cluster (Figure 2B). Non-linear, overall reduction in activation following both doses of alcohol was observed in SMA proper (Figure 2C).
Activations resulting from the Sstop>Go contrast group comparisons (p <.005, k ≥ 13 voxels).
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| Paracentral lobule/SMA proper (BA4) | 19 | L | 27.13 | -12-24 52 |
| Inferior Frontal orbitalis (BA47) | 18 | R | 18.58 | 42 34 -4 |
| Postcentral gyrus | 37 | L | 14.95 | -36-28 36 |
| Anterior Insula | 14 | R | 12.85 | 32 12 14 |
| Gyrus rectus/ventral anterior cingulate | 20 | R | 12.73 | 10 28 -16 |
| Superior Frontal gyrus(BA9) | 15 | L | 12.58 | -14 48 42 |
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| Parahippocampal gyrus | 42 | R | 29.75 | 22-24 -20 |
| Middle Temporal pole/Parahip/pal gyrus | 14 | R | 17.11 | 22 4-36 |
| Lingual gyrus | 24 | L | 15.07 | -20-84 4 |
| Middle Occipital gyrus | 23 | R | 18.58 | 34-88 14 |
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| Superior Frontal gyrus (BA32) | 13 | R | 15.77 | 16 22 48 |
| Superior Frontal gyrus (BA9) | 18 | R | 14.89 | 20 40 48 |
| Inferior Frontal Orbitalis (BA47) | 34 | R | 17.64 | 40 32 -6 |
| Middle cingulate/SMA proper (BA6) | 40 | R | 13.45 | 10-12 50 |
| Paracentral lobule/SMA proper (BA4) | 18 | L | 13.73 | -12-26 48 |
| Precentral gyrus (BA6) | 23 | R | 22.17 | 50 0 50 |
| Postcentral gyrus | 23 | L | 16.24 | -22-44 58 |
| Posterior cingulate/precuneus | 37 | L | 22.99 | -10-44 16 |
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| Inferior Temporal gyrus | 46 | R | 26.93 | 44 -44 -16 |
| Middle Temporal pole | 38 | L | 20.05 | -28 8-36 |
| Middle Temporal pole/Parahip/pal gyrus | 41 | R | 21.73 | 22 4-32 |
| Hippocampus | 13 | R | 15.11 | 22 -12 -14 |
| Angular gyrus | 17 | L | 16.22 | -54-66 26 |
| Lingual gyrus (BA18) | 15 | L | 21.97 | -18-74 -8 |
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| Global pallidus | 13 | R | 16.92 | 14 2-8 |
| Thalamus | 13 | R | 13.48 | 8 -6 6 |
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| Middle Frontal gyrus (BA46) | 29 | R | 19.7 | 42 56 2 |
| Inferior Frontal Orbitalis (BA47) | 16 | L | 17.33 | -42 28 -8 |
| Paracentral Lobule (BA4) | 71 | R/L | 14.69 | 2-34 70 |
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| Inferior temporal gyrus (BA37) | 20 | R | 13.88 | 46 -46 -22 |
BA = Broadmann area; R=right, L=left; MNI coordinates represent cluster peaks; Results:
Figure 3Activations arising from the planned group comparison 2nd- level models (thresholded at p < 0.005, k = 13; scale represents F statistic; see results section for details). Comparison of the Sstop>Go contrast between the low-dose and placebo groups (Figure 3A), and the high-dose and placebo groups (Figure 3B and 3C).
Activations resulting from the Ustop >Sstop Error contrast One-way ANOVA (p <.005, k ≥ 13 voxels).
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| Posterior cingulate1 | 29 | L | 12.96 | -10-42 16 |
| Middle cingulate1 | 14 | R | 8.16 | 10-18 46 |
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| Superior Parietal gyrus | 51 | L | 14.6 | -56-48 12 |
| Parahippocampal gyrus | 51 | R | 14.77 | 22 -22 -24 |
| Inferior Temporal gyrus | 13 | R | 7.45 | 52 -10 -28 |
| Middle Temporal gyrus | 20 | R | 12.75 | 38-58 4 |
| Cuneus | 14 | R | 7.63 | 8-86 34 |
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| Caudate | 20 | L | 11.68 | -14 16 16 |
BA = Broadmann area; R = right, L = left; MNI coordinates represent cluster peaks; Results:
Activations resulting from the Ustop> Sstop contrast group comparisons (p <.005, k ≥ 13 voxels).
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| Paracentral lobule | 91 | L | 13.28 | -12-26 52 |
| Paracentral lobule | 41 | R | 18.88 | 12-36 56 |
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| Superior temporal gyrus | 21 | R | 15.38 | 38 2-16 |
| Middle Temporal | 30 | R | 26.3 | 38-58 2 |
| Middle Temporal Pole | 22 | L | 20.13 | -24 0 -36 |
| Parahippocampal gyrus | 69 | R | 24.95 | 22 -22 -22 |
| Fusiform | 29 | R | 13.7 | 40 -40 -18 |
| Cerebellum | 17 | R/L | 16.75 | 10-58 -10 (-14-72 -16) |
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| Caudate | 39 | L | 21.64 | -14 18 18 |
| Thalamus | 15 | R | 11.67 | 8-28 6 |
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| Posterior Cingulate | 50 | L | 28.38 | -10-42 16 |
| Middle cingulate | 54 | R | 16.36 | 10-16 46 |
| Ventral Anterior cingulate | 18 | L | 19.95 | -10 34 -8 |
| Rostral Orbitofrontal (BA11) | 13 | R | 16.15 | 10 54 -20 |
| Superior Frontal gyrus (BA9) | 21 | R | 15.25 | 10 44 46 |
| Precentral gyrus | 24 | R | 14.85 | 16-22 58 |
| Precentral gyrus | 13 | R | 13.69 | 30 -6 46 |
| Postcentral gyrus | 15 | R | 17.24 | 24-36 48 |
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| Parahippocampal gyrus | 41 | R | 25.53 | 24 -22 -22 |
| Inferior temporal gyrus | 32 | R | 22.14 | 44-46 -14 |
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| Thalamus | 21 | R | 15.84 | 6-8 18 |
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| Middle frontal gyrus | 13 | R | 19.27 | 36 62 2 |
| Paracentral Lobule | 38 | R | 18.61 | 2-32 72 |
| Postcentral gyrus | 31 | R | 15.66 | 42 -26 56 |
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| Superior Parietal | 43 | L | 16.84 | -22-52 56 |
| Cuneus | 32 | L | 14.65 | -18-70 38 |
| Inferior temporal | 66 | R | 19.2 | 46 -44 -22 |
| Parahippocampal gyrus | 13 | R | 12.6 | 18 -6 -22 |
| Cerebellum | 21 | R | 18.94 | 38-66 -26 (12-38 -22/38 -64-40) |
BA = Broadmann area; R = right, L = left; MNI coordinates represent cluster peaks; Results:
Activations resulting from the Stop_VSST_C>Go_VSST_C contrast One-way ANOVA (p <.005, k ≥ 13 voxels).
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| Medial superior frontal | 14 | L | 9.87 | -12 56 12 |
| Anterior cingulate | 22 | R | 9.72 | 2 12 30 |
| Inferior frontal tri (BA45) | 16 | R | 9.48 | 58 26 20 |
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| Mid temporal gyrus | 51 | L | 14.6 | -56-48 12 |
| Inferior Temporal gyrus | 43 | L | 14.2 | -58-18 -24 |
| Inferior Temporal gyrus | 13 | R | 7.45 | 52 -10 -28 |
| Superior temporal pole | 34 | R | 10.4 | 40 20 -18 |
| Superior temporal pole | 37 | L | 9.16 | -30 12-22 |
| Superior parietal gyrus | 26 | L | 8.36 | -28-58 52 |
| Cuneus | 14 | R | 7.63 | 8-86 34 |
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| Calcarine | 13 | L | 8.89 | -12-70 14 |
| Mid occipital gyrus | 43 | L | 10.1 | -42-76 18 |
| Cerebellum | 66 | R | 12.5 | 18-56 -14 |
| Cerebellum1 | 38 | L | 11.87 | -10-78 -50 |
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| Thalamus | 13 | L | 10.83 | -18-30 8 |
BA = Broadmann area; R = right, L = left; MNI coordinates represent cluster peaks; Results: