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Original Articles

Multiple influences of reward on perception and attention

REFERENCES

  • Aarts, E., van Holstein, M., & Cools, R. (2011). Striatal dopamine and the interface between motivation and cognition. Frontiers in Psychology, 2, 163. doi:10.3389/fpsyg.2011.00163
  • Adcock, R. A., Thangavel, A., Whitfield-Gabrieli, S., Knutson, B., & Gabrieli, J. D. (2006). Reward-motivated learning: Mesolimbic activation precedes memory formation. Neuron, 50, 507–517. doi:10.1016/j.neuron.2006.03.036
  • Alexander, W. H., & Brown, J. W. (2011). Medial prefrontal cortex as an action-outcome predictor. Nature Neuroscience, 14, 1338–1344. doi:10.1038/nn.2921
  • Amiez, C., Joseph, J. P., & Procyk, E. (2006). Reward encoding in the monkey anterior cingulate cortex. Cerebral Cortex, 16, 1040–1055.
  • Anderson, A. K. (2005). Affective influences on the attentional dynamics supporting awareness. Journal of Experimental Psychology: General, 134, 258–281.
  • Anderson, B. A., Laurent, P. A., & Yantis, S. (2011). Value-driven attentional capture. Proceedings of the National Academy of Sciences, USA, 108, 10367–10371. doi:10.1073/pnas.1104047108
  • Asgeirsson, A. G., & Kristjansson, A. (2014). Random reward priming is task-contingent: The robustness of the 1-trial reward priming effect. Frontiers in Psychology, 5.
  • Barbas, H., & Pandya, D. N. (1989). Architecture and intrinsic connections of the prefrontal cortex in the rhesus monkey. Journal of Comparative Neurology, 286, 353–375.
  • Berger, B., Trottier, S., Verney, C., Gaspar, P., & Alvarez, C. (1988). Regional and laminar distribution of the dopamine and serotonin innervation in the macaque cerebral cortex: A radioautographic study. Journal of Comparative Neurology, 273(1), 99–119. doi:10.1002/cne.902730109
  • Botvinick, M. M., Braver, T. S., Barch, D. M., Carter, C. S., & Cohen, J. D. (2001). Conflict monitoring and cognitive control. Psychological Review, 108, 624–652.
  • Braver, T. S. (2012). The variable nature of cognitive control: A dual mechanisms framework. Trends in Cognitive Sciences, 16(2), 106–113. doi:10.1016/j.tics.2011.12.010
  • Bucker, B., & Theeuwes, J. (2014). The effect of reward on orienting and reorienting in exogenous cuing. Cognitive, Affective, and Behavioral Neuroscience, 14, 635–646.
  • Camara, E., Manohar, S., & Husain, M. (2013). Past rewards capture spatial attention and action choices. Experimental Brain Research, 230, 291–300.
  • Carver, C. S., & White, T. L. (1994). Behavioral inhibition, behavioral activation, and affective responses to impending reward and punishment: The BIS/BAS scales. Journal of Personality and Social Psychology, 67, 319–333.
  • Chelazzi, L., Eštočinová, J., Calletti, R., Gerfo, E. L., Sani, I., Della Libera, C., & Santandrea, E. (2014). Altering Spatial priority maps via reward-based learning. Journal of Neuroscience, 34, 8594–8604.
  • Chelazzi, L., Perlato, A., Santandrea, E., & Della Libera, C. (2013). Rewards teach visual selective attention. Vision Research, 85, 58–72. doi:10.1016/j.visres.2012.12.005
  • Corbetta, M., Patel, G., & Shulman, G. L. (2008). The reorienting system of the human brain: From environment to theory of mind. Neuron, 58, 306–324.
  • Corbetta, M., & Shulman, G. L. (2002). Control of goal-directed and stimulus-driven attention in the brain. Nature Reviews Neuroscience, 3, 201–215.
  • Della Libera, C., & Chelazzi, L. (2009). Learning to attend and to ignore is a matter of gains and losses. Psychological Science, 20, 778–784. doi:10.1111/j.1467-9280.2009.02360.x
  • Della Libera, C., Perlato, A., & Chelazzi, L. (2011). Dissociable effects of reward on attentional learning: From passive associations to active monitoring. PLoS ONE, 6(4), e19460.
  • Desimone, R., & Duncan, J. (1995). Neural mechanisms of selective attention. Annual Review of Neuroscience, 18, 193–222.
  • Devinsky, O., Morrell, M. J., & Vogt, B. A. (1995). Contributions of anterior cingulate cortex to behaviour. Brain, 118, 279–306.
  • Duffy, E. (1962). Activation and behavior. New York, NY: Wiley.
  • Engelmann, J. B., Damaraju, E. C., Padmala, S., & Pessoa, L. (2009). Combined effects of attention and motivation on visual task performance: Transient and sustained motivational effects. Frontiers in Human Neuroscience, 3(4), doi:10.3389/neuro.3309.3004.2009.
  • Engelmann, J. B., & Pessoa, L. (2007). Motivation sharpens exogenous spatial attention. Emotion, 7, 668–674.
  • Erthal, F. S., de Oliveira, L., Mocaiber, I., Pereira, M. G., Machado-Pinheiro, W., Volchan, E., & Pessoa, L. (2005). Load-dependent modulation of affective picture processing. Cognitive, Affective, and Behavioral Neuroscience, 5, 388–395.
  • Goldman-Rakic, P. S., Leranth, C., Williams, S. M., Mons, N., & Geffard, M. (1989). Dopamine synaptic complex with pyramidal neurons in primate cerebral cortex. Proceedings of the National Academy of Science, USA, 86, 9015–9019.
  • Grossberg, S. (1980). How does a brain build a cognitive code? Psychological Review, 87(1), 1–51.
  • Gruber, A. J., Dayan, P., Gutkin, B. S., & Solla, S. A. (2006). Dopamine modulation in the basal ganglia locks the gate to working memory. Journal of Computational Neuroscience, 20, 153–166. doi:10.1007/s10827-005-5705-x
  • Haber, S. N., & Knutson, B. (2010). The reward circuit: Linking primate anatomy and human imaging. Neuropsychopharmacology, 35, 4–26. doi:10.1038/npp.2009.129
  • Harsay, H. A., Cohen, M. X., Oosterhof, N. N., Forstmann, B. U., Mars, R. B., & Ridderinkhof, K. R. (2011). Functional connectivity of the striatum links motivation to action control in humans. Journal of Neuroscience, 31, 10701–10711. doi:10.1523/jneurosci.5415-10.2011
  • Hickey, C., Chelazzi, L., & Theeuwes, J. (2010). Reward changes salience in human vision via the anterior cingulate. Journal of Neuroscience, 30(33), 11096–11103. doi:10.1523/jneurosci.1026-10.2010
  • Hickey, C., Chelazzi, L., & Theeuwes, J. (2014). Reward-priming of location in visual search. PLoS ONE, 9(7), e103372.
  • Hu, K., Padmala, S., & Pessoa, L. (2013). Interactions between reward and threat during visual processing. Neuropsychologia, 51, 1763–1772. doi:10.1016/j.neuropsychologia.2013.05.025
  • Hull, C. L. (1943). Principles of behavior: An introduction to behavior theory. New York, NY: Appleton-Century-Crofts.
  • Izhikevich, E. M. (2007). Solving the distal reward problem through linkage of STDP and dopamine signaling. Cerebral Cortex, 17, 2443. doi:10.1093/cercor/bhl152
  • Kinnison, J., Padmala, S., Choi, J. M., & Pessoa, L. (2012). Network analysis reveals increased integration during emotional and motivational processing. Journal of Neuroscience, 32(24), 8361–8372. doi:10.1523/jneurosci.0821-12.2012
  • Kristjansson, A., Sigurjonsdottir, O., & Driver, J. (2010). Fortune and reversals of fortune in visual search: Reward contingencies for pop-out targets affect search efficiency and target repetition effects. Attention, Perception, and Psychophysics, 72, 1229–1236. doi:10.3758/APP.72.5.1229
  • Lee, J., & Shomstein, S. (2013). The differential effects of reward on space-and object-based attentional allocation. Journal of Neuroscience, 33, 10625–10633.
  • Lee, J., & Shomstein, S. (2014). Reward-based transfer from bottom-up to top-down search tasks. Psychological Science, 25, 466–475. doi:10.1177/0956797613509284
  • Lim, S. L., Padmala, S., & Pessoa, L. (2009). Segregating the significant from the mundane on a moment-to-moment basis via direct and indirect amygdala contributions. Proceedings of the National Academy of Sciences, USA, 106, 16841–16846.
  • Maunsell, J. H. (2004). Neuronal representations of cognitive state: Reward or attention? Trends in Cognitive Sciences, 8, 261–265.
  • Monsell, S., & Driver, J. (Eds.). (2000). Attention and performance XVIII: Control of cognitive processes. Cambridge, MA: MIT Press.
  • Morecraft, R. J., & Tanji, J. (2009). Cingulofrontal interactions and the cingulate motor areas. In B. A. Vogt (Ed.), Cingulate neurobiology and disease (pp. 113–144). Oxford: Oxford University Press.
  • Most, S. B., Chun, M. M., Widders, D. M., & Zald, D. H. (2005). Attentional rubbernecking: Cognitive control and personality in emotion-induced blindness. Psychonomics Bulletin and Review, 12, 654–661.
  • Murphy, P. C., & Sillito, A. M. (1991). Cholinergic enhancement of direction selectivity in the visual cortex of the cat. Neuroscience, 40(1), 13–20.
  • Navalpakkam, V., Koch, C., & Perona, P. (2009). Homo economicus in visual search. Journal of Vision, 9(1), 31–16. doi:10.1167/9.1.31
  • Newman, M. (2010). Networks: An introduction. New York, NY: Oxford University Press.
  • Noudoost, B., & Moore, T. (2011). Control of visual cortical signals by prefrontal dopamine. Nature, 474, 372–375. doi:10.1038/nature09995
  • Oades, R. D., & Halliday, G. M. (1987). Ventral tegmental (A10) system: Neurobiology. 1. Anatomy and connectivity. Brain Research Reviews, 12(2), 117–165. doi:10.1016/0165-0173(87)90011-7
  • Otmakhova, N. A., & Lisman, J. E. (1996). D1/D5 dopamine receptor activation increases the magnitude of early long-term potentiation at CA1 hippocampal synapses. Journal of Neuroscience, 16, 7478–7486.
  • Padmala, S., & Pessoa, L. (2011). Reward reduces conflict by enhancing attentional control and biasing visual cortical processing. Journal of Cognitive Neuroscience, 23, 3419–3432. doi:10.1162/jocn_a_00011
  • Padmala, S., & Pessoa, L. (2014). Motivation versus aversive processing during perception. Emotion, 14, 450–454.
  • Pashler, H. (1998). The psychology of attention. Cambridge, MA: MIT Press.
  • Pessoa, L. (2008). On the relationship between emotion and cognition. Nature Reviews Neuroscience, 9(2), 148–158.
  • Pessoa, L. (2009). How do emotion and motivation direct executive control? Trends in Cognitive Sciences, 13, 160–166. doi:10.1016/j.tics.2009.01.006
  • Pessoa, L. (2013). The cognitive-emotional brain: From interactions to integration. Cambridge, MA: MIT Press.
  • Pessoa, L., & Engelmann, J. B. (2010). Embedding reward signals into perception and cognition. Frontiers in Neuroscience, 4.
  • Pessoa, L., & Ungerleider, L. G. (2004). Neural correlates of change detection and change blindness in a working memory task. Cerebral Cortex, 14, 511–520.
  • Pleger, B., Blankenburg, F., Ruff, C. C., Driver, J., & Dolan, R. J. (2008). Reward facilitates tactile judgments and modulates hemodynamic responses in human primary somatosensory cortex. Journal of Neuroscience, 28, 8161–8168. doi:10.1523/jneurosci.1093-08.2008
  • Pleger, B., Ruff, C. C., Blankenburg, F., Kloppel, S., Driver, J., & Dolan, R. J. (2009). Influence of dopaminergically mediated reward on somatosensory decision-making. PLoS Biology, 7(7), e1000164. doi:10.1371/journal.pbio.1000164
  • Pourtois, G., Schettino, A., & Vuilleumier, P. (2013). Brain mechanisms for emotional influences on perception and attention: What is magic and what is not. Biological Psychology, 92, 492–512. doi:10.1016/j.biopsycho.2012.02.007
  • Raymond, J. E., & O'Brien, J. L. (2009). Selective visual attention and motivation: The consequences of value learning in an attentional blink task. Psychological Science, 20, 981–988. doi:10.1111/j.1467-9280.2009.02391.x
  • Robbins, T. (2000). Chemical neuromodulation of frontal-executive functions in humans and other animals. Experimental Brain Research, 133(1), 130–138.
  • Rushworth, M. F. S., & Behrens, T. E. J. (2008). Choice, uncertainty and value in prefrontal and cingulate cortex. Nature Neuroscience, 11, 389–397. doi:10.1038/nn2066
  • Sato, H., Hata, Y., Masui, H., & Tsumoto, T. (1987). A functional role of cholinergic innervation to neurons in the cat visual cortex. Journal of Neurophysiology, 58, 765–780.
  • Sawaguchi, T., & Matsumura, M. (1985). Laminar distributions of neurons sensitive to acetylcholine, noradrenaline and dopamine in the dorsolateral prefrontal cortex of the monkey. Neuroscience Research, 2, 255–273.
  • Schmidt, L., Lebreton, M., Clery-Melin, M. L., Daunizeau, J., & Pessiglione, M. (2012). Neural mechanisms underlying motivation of mental versus physical effort. PLoS Biology, 10(2), e1001266. doi:10.1371/journal.pbio.1001266
  • Shidara, M., & Richmond, B. J. (2002). Anterior cingulate: Single neuronal signals related to degree of reward expectancy. Science, 296, 1709–1711. doi:10.1126/science.1069504
  • Shima, K., & Tanji, J. (1998). Role for cingulate motor area cells in voluntary movement selection based on reward. Science, 282, 1335–1338.
  • Soltani, A., Noudoost, B., & Moore, T. (2013). Dissociable dopaminergic control of saccadic target selection and its implications for reward modulation. Proceedings of the National Academy of Sciences, 110, 3579–3584.
  • Stankevich, B. A., & Geng, J. J. (2014). Reward associations and spatial probabilities produce additive effects on attentional selection. Attention, Perception, and Psychophysics.
  • Tsotsos, J. K. (1990). Analyzing vision at the complexity level. Behavioral and Brain Sciences, 13, 423–469.
  • Vickery, T. J., Chun, M. M., & Lee, D. (2011). Ubiquity and specificity of reinforcement signals throughout the human brain. Neuron, 72, 166–177. doi:10.1016/j.neuron.2011.08.011
  • Weil, R. S., Furl, N., Ruff, C. C., Symmonds, M., Flandin, G., Dolan, R. J., … Rees, G. (2010). Rewarding feedback after correct visual discriminations has both general and specific influences on visual cortex. Journal of Neurophysiology, 104, 1746–1757. doi:10.1152/jn.00870.2009
  • Winkowski, D. E., Bandyopadhyay, S., Shamma, S. A., & Kanold, P. O. (2013). Frontal cortex activation causes rapid plasticity of auditory cortical processing. Journal of Neuroscience, 33(46), 18134–18148.
  • Yokoyama, T., Padmala, S., & Pessoa, L. (2014). Reward outcompetes negative emotion during rapid attentional competition. Manuscript submitted for publication.
  • Zald, D. H., & Rauch, S. L. (2007). The orbitofrontal cortex. Oxford: Oxford University Press.

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