Integrating Memories in the Human Brain: Hippocampal-Midbrain Encoding of Overlapping Events

被引:382
作者
Shohamy, Daphna [1 ,3 ]
Wagner, Anthony D. [1 ,2 ]
机构
[1] Stanford Univ, Dept Psychol, Stanford, CA 94305 USA
[2] Stanford Univ, Neurosci Program, Stanford, CA 94305 USA
[3] Columbia Univ, Dept Psychol, New York, NY 10027 USA
关键词
D O I
10.1016/j.neuron.2008.09.023
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Decisions are often guided by generalizing from past experiences. Fundamental questions remain regarding the cognitive and neural mechanisms by which generalization takes place. Prior data suggest that generalization may stem from inference-based processes at the time of generalization. By contrast, generalization may emerge from mnemonic processes occurring while premise events are encoded. Here, participants engaged in a two-phase learning and generalization task, wherein they learned a series of overlapping associations and subsequently generalized what they learned to novel stimulus combinations. Functional MRI revealed that successful generalization was associated with coupled changes in learning-phase activity in the hippocampus and midbrain (ventral tegmental area/substantia nigra). These findings provide evidence for generalization based on integrative encoding, whereby overlapping past events are integrated into a linked mnemonic representation. Hippocampal-midbrain interactions support the dynamic integration of experiences, providing a powerful mechanism for building a rich associative history that extends beyond individual
引用
收藏
页码:378 / 389
页数:12
相关论文
共 68 条
[1]   Reward-motivated learning: Mesolimbic activation precedes memory formation [J].
Adcock, R. Alison ;
Thangavel, Arul ;
Whitfield-Gabrieli, Susan ;
Knutson, Brian ;
Gabrieli, John D. E. .
NEURON, 2006, 50 (03) :507-517
[2]   Human midbrain sensitivity to cognitive feedback and uncertainty during classification learning [J].
Aron, AR ;
Shohamy, D ;
Clark, J ;
Myers, C ;
Gluck, MA ;
Poldrack, RA .
JOURNAL OF NEUROPHYSIOLOGY, 2004, 92 (02) :1144-1152
[3]   Midbrain dopamine neurons encode a quantitative reward prediction error signal [J].
Bayer, HM ;
Glimcher, PW .
NEURON, 2005, 47 (01) :129-141
[4]   Absolute coding of stimulus novelty in the human substantia nigra/VTA [J].
Bunzeck, Nico ;
Duzel, Emrah .
NEURON, 2006, 51 (03) :369-379
[5]  
Cohen N. J., 1993, Memory, amnesia, and the hippocampal system
[6]   Selectively impaired associative learning in older people with cognitive decline [J].
Collie, A ;
Myers, C ;
Schnirman, G ;
Wood, S ;
Maruff, P .
JOURNAL OF COGNITIVE NEUROSCIENCE, 2002, 14 (03) :484-492
[7]   The computational neurobiology of learning and reward [J].
Daw, ND ;
Doya, K .
CURRENT OPINION IN NEUROBIOLOGY, 2006, 16 (02) :199-204
[8]  
DAW ND, 2008, SOC COGN IN PRESS
[9]   Tracking the hemodynamic responses to reward and punishment in the striatum [J].
Delgado, MR ;
Nystrom, LE ;
Fissell, C ;
Noll, DC ;
Fiez, JA .
JOURNAL OF NEUROPHYSIOLOGY, 2000, 84 (06) :3072-3077
[10]   An fMRI study of reward-related probability learning [J].
Delgado, MR ;
Miller, MM ;
Inati, S ;
Phelps, EA .
NEUROIMAGE, 2005, 24 (03) :862-873