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Dillon, Daniel

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Dillon

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Dillon, Daniel

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Now showing 1 - 2 of 2
  • Publication

    Dissociation of Neural Regions Associated with Anticipatory Versus Consummatory Phases of Incentive Processing

    (Blackwell Publishers, 2008) Bogdan, Ryan; Wald, Lawrence L.; Holmes, A; Jahn, Allison L.; Pizzagalli, Diego; Wald, Lawrence; Dillon, Daniel

    Incentive delay tasks implicate the striatum and medial frontal cortex in reward processing. However, prior studies delivered more rewards than penalties, possibly leading to unwanted differences in signal-to-noise ratio. Also, whether particular brain regions are specifically involved in anticipation or consumption is unclear. We used a task featuring balanced incentive delivery and an analytic strategy designed to identify activity specific to anticipation or consumption. Reaction time data in two independent samples (n = 13 and n = 8) confirmed motivated responding. Functional magnetic resonance imaging revealed regions activated by anticipation (anterior cingulate) versus consumption (orbital and medial frontal cortex). Ventral striatum was active during reward anticipation but not significantly more so than during consumption. Although the study features several methodological improvements and helps clarify the neural basis of incentive processing, replications in larger samples are needed.

  • Publication

    Inhibition of Action, Thought, and Emotion: A Selective Neurobiological Review

    (Elsevier, 2007) Dillon, Daniel; Pizzagalli, Diego

    The neural bases of inhibitory function are reviewed, covering data from paradigms assessing inhibition of motor responses (antisaccade, go/nogo, stop-signal), cognitive sets (e.g., Wisconsin Card Sort Test), and emotion (fear extinction). The frontal cortex supports performance on these paradigms, but the specific neural circuitry varies: response inhibition depends upon fronto-basal ganglia networks, inhibition of cognitive sets is supported by orbitofrontal cortex, and retention of fear extinction reflects ventromedial prefrontal cortex-amygdala interactions. Inhibition is thus neurobiologically heterogeneous, although right ventrolateral prefrontal cortex may support a general inhibitory process. Dysfunctions in these circuits may contribute to psychopathological conditions marked by inhibitory deficits.