Literature DB >> 21486295

Cognitive control and right ventrolateral prefrontal cortex: reflexive reorienting, motor inhibition, and action updating.

Benjamin J Levy1, Anthony D Wagner1.   

Abstract

Delineating the functional organization of the prefrontal cortex is central to advancing models of goal-directed cognition. Considerable evidence indicates that specific forms of cognitive control are associated with distinct subregions of the left ventrolateral prefrontal cortex (VLPFC), but less is known about functional specialization within the right VLPFC. We report a functional MRI meta-analysis of two prominent theories of right VLPFC function: stopping of motor responses and reflexive orienting to abrupt perceptual onsets. Along with a broader review of right VLPFC function, extant data indicate that stopping and reflexive orienting similarly recruit the inferior frontal junction (IFJ), suggesting that IFJ supports the detection of behaviorally relevant stimuli. By contrast, other right VLPFC subregions are consistently active during motor inhibition, but not reflexive reorienting tasks, with posterior-VLPFC being active during the updating of action plans and mid-VLPFC responding to decision uncertainty. These results highlight the rich functional heterogeneity that exists within right VLPFC.
© 2011 New York Academy of Sciences.

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Year:  2011        PMID: 21486295      PMCID: PMC3079823          DOI: 10.1111/j.1749-6632.2011.05958.x

Source DB:  PubMed          Journal:  Ann N Y Acad Sci        ISSN: 0077-8923            Impact factor:   5.691


  174 in total

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  237 in total

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Review 6.  Attentional orienting and response inhibition: insights from spatial-temporal neuroimaging.

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8.  Disorder-Specific Alteration in White Matter Structural Property in Adults With Autism Spectrum Disorder Relative to Adults With ADHD and Adult Controls.

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9.  Decreased event-related theta power and phase-synchrony in young binge drinkers during target detection: An anatomically-constrained MEG approach.

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10.  Effects of working memory demand on neural mechanisms of motor response selection and control.

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