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H. Takahasi et al., “When Your Gain Is My Pain and Your Pain Is My Gain: Neural Correlates of Envy and Schadenfreude,” Sci 323 (2009): 890; K. Fliessbach et al., “Social Comparison Affects Reward-Related Brain Activity in the Human Ventral Striatum,” Sci 318 (2007): 1305.
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W. Schultz, “Dopamine Signals for Reward Value and Risk: Basic and Recent Data,” Behav and Brain Functions 6 (2010): 24.
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J. Cooper et al., “Available Alternative Incentives Modulate Anticipatory Nucleus Accumbens Activation,” SCAN 4 (2009): 409; D. Levy and P. Glimcher, “Comparing Apples and Oranges: Using Reward-Specific and Reward-General Subjective Value Representation in the Brain,” J Nsci 31 (2011): 14693.
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P. Tobler et al., “Adaptive Coding of Reward Value by Dopamine Neurons,” Sci 307 (2005): 1642.
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W. Schultz, “Dopamine Signals for Reward Value and Risk: Basic and Recent Data,” Behav and Brain Functions 6 (2010): 24; J. Cohen et al., “Neuron-Type-Specific Signals for Reward and Punishment in the Central Tegmental Area,” Nat 482 (2012): 85; J. Hollerman and W. Schultz, “Dopamine Neurons Report an Error in the Temporal Prediction of Reward During Learning,” Nat Nsci 1 (1998): 304; A. Brooks et al., “From Bad to Worse: Striatal Coding of the Relative Value of Painful Decisions,” Front Nsci 4 (2010): 1.
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B. Knutson et al., “Neural Predictors of Purchases,” Neuron 53 (2007): 147.
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P. Sterling, “Principles of Allostasis: Optimal Design, Predictive Regulation, Pathophysiology and Rational Therapeutics,” in Allostasis, Homeostasis, and the Costs of Adaptation, ed. J. Schulkin (Cambridge, MA: MIT Press, 2004).
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B. Knutson et al., “Anticipation of Increasing Monetary Reward Selectively Recruits Nucleus Accumbens,” J Nsci 21 (2001): RC159.
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G. Stuber et al., “Reward-Predictive Cues Enhance Excitatory Synaptic Strength onto Midbrain Dopamine Neurons,” Sci 321 (2008): 1690; A. Luo et al., “linkcing Context with Reward: A Functional Circuit from Hippocampal CA3 to Ventral Tegmental Area,” Sci 33 (2011): 353; J. O’Doherty, “Reward Representations and Reward-Related Learning in the Human Brain: Insights from Neuroimaging,” Curr Opinions in Neurobiol 14 (2004): 769; M. Cador et al., “Involvement of the Amygdala in Stimulus-Reward Associations: Interaction with the Ventral Striatum,” Nsci 30 (1989): 77; J. Britt et al., “Synaptic and Behavioral Profile of Multiple Glutamatergic Inputs to the Nucleus Accumbens,” Neuron 76 (2012): 790; G. Stuber et al., “Optogenetic Modulation of Neural Circuits That Underlie Reward Seeking,” BP 71 (2012): 1061; F. Ambroggi et al., “Basolateral Amygdala Neurons Facilitate Reward-Seeking Behavior by Exciting Nucleus Accumbens Neurons,” Neuron 59 (2008): 648.
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S. Hyman et al., “Neural Mechanisms of Addiction: The Role of Reward-Related Learning and Memory,” Ann Rev of Nsci 29 (2006): 565; B. Lee et al., “Maturation of Silent Synapses in Amygdala-Accumbens Projection Contributes to Incubation of Cocaine Craving,” Nat Nsci 16 (2013): 1644. Обсуждение навязчивых поведенческих актов как одного из видов болезненной зависимости: S. Rauch and W. Carlezon, “Illuminating the Neural Circuitry of Compulsive Behaviors,” Sci 340 (2013): 1174; S. Ahmari et al., “Repeated Cortico-Striatal Stimulation Generates Persistent OCD-like Behavior,” Sci 340 (2013): 1234; E. Burguiere et al., “Optogenetic Stimulation of Lateral Orbitofronto-Striatal Pathway Suppresses Compulsive Behaviors,” Sci 340 (2013): 1243.
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S. Flagel et al., “A Selective Role for Dopamine in Stimulus-Reward Learning,” Nat 469 (2011): 53; K. Burke et al., “The Role of the Orbitofrontal Cortex in the Pursuit of Happiness and More Specific Rewards,” Nat 454 (2008): 340.
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P. Tobler et al., “Adaptive Coding of Reward Value by Dopamine Neurons,” Sci 307 (2005): 1642; C. Fiorillo et al., “Discrete Coding of Reward Probability and Uncertainty by Dopamine Neurons,” Sci 299 (2003): 1898.
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