Plasticity, hippocampal place cells, and cognitive maps

被引:97
|
作者
Shapiro, M
机构
[1] Mt Sinai Sch Med, Kastor Neurobiol Aging Ctr, Fishberg Res Ctr Neurobiol, New York, NY 10029 USA
[2] Mt Sinai Sch Med, Dept Geriatr & Adult Dev, New York, NY 10029 USA
关键词
D O I
10.1001/archneur.58.6.874
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Memory of even the briefest event can last a lifetime. Thus, learning and memory require neuronal mechanisms that allow rapid, yet persistent, changes to brain circuits. Hippocampal neuropsychology, synaptic and cellular electrophysiology, pharmacology, and molecular genetics converge and begin to reveal these mechanisms. Lesions of the hippocampus profoundly impair memory for recent events in humans and rodents. Circuits within the hippocampus are remarkably plastic, and this plasticity is mediated in part through changes in synaptic strength and revealed by long-term potentiation (LTP) and longterm depression (LTD). N-methyl D-aspartate (NMDA) receptors, a subtype of glutamate receptor, are crucial for inducing these plastic changes, and blocking these receptors reduces plasticity and impairs learning in tasks that require the hippocampus. Molecular genetic alterations that disrupt signaling mechanisms downstream of the NMDA receptor also prevent LTP induction and impair hippocampus-dependent learning. N-methyl D-aspartate receptor mechanisms have also been linked to information coding by hippocampal neurons. Hippocampal cells fire selectively in specific and restricted locations (place: fields) as rodents move through open environments. Place fields form within minutes and persist for months. N-methyl D-aspartate receptor antagonists prevent the establishment of stable place fields. The same molecular genetic manipulations that interfere with hippocampal NMDA receptor function, prevent LTP induction, and impair spatial learning also disrupt the formation of stable hippocampal place fields. Finally, learning has been improved in mice with genetically modified NMDA receptors that enhance LTP induction. Thus, hippocampal cells "learn" to encode the salient features of experience through NMDA receptor-dependent synaptic plasticity mechanisms, and this rapid and persistent neuronal encoding is a crucial step toward the formation of long-term memory. Disruption of these plasticity mechanisms may underlie age-related memory deficits.
引用
收藏
页码:874 / 881
页数:8
相关论文
共 50 条
  • [1] Activity-dependent plasticity of hippocampal place maps
    Schoenenberger, Philipp
    O'Neill, Joseph
    Csicsvari, Jozsef
    NATURE COMMUNICATIONS, 2016, 7
  • [2] Activity-dependent plasticity of hippocampal place maps
    Philipp Schoenenberger
    Joseph O’Neill
    Jozsef Csicsvari
    Nature Communications, 7
  • [3] HIPPOCAMPAL PLACE CELLS - STEREOTYPY AND PLASTICITY
    BREESE, CR
    HAMPSON, RE
    DEADWYLER, SA
    JOURNAL OF NEUROSCIENCE, 1989, 9 (04): : 1097 - 1111
  • [4] Hippocampal place cells, spatial memory, and synaptic plasticity
    不详
    NEUROSCIENTIST, 1997, 3 (03): : 150 - 150
  • [5] The effect of aging on experience-dependent plasticity of hippocampal place cells
    Shen, JM
    Barnes, CA
    McNaughton, BL
    Skaggs, WE
    Weaver, KL
    JOURNAL OF NEUROSCIENCE, 1997, 17 (17): : 6769 - 6782
  • [6] Plasticity of the hippocampal place cell representation
    Jeffery, KJ
    Hayman, R
    REVIEWS IN THE NEUROSCIENCES, 2004, 15 (05) : 309 - 331
  • [7] Learning navigational maps through potentiation and modulation of hippocampal place cells
    Volen Center for Complex Systems, Brandeis University, Waltham, MA 02254-9110, United States
    不详
    J. COMPUT. NEUROSCI., 1 (79-94):
  • [8] Learning Navigational Maps Through Potentiation and Modulation of Hippocampal Place Cells
    Wulfram Gerstner
    L.F. Abbott
    Journal of Computational Neuroscience, 1997, 4 : 79 - 94
  • [9] Learning navigational maps through potentiation and modulation of hippocampal place cells
    Gerstner, W
    Abbott, LF
    JOURNAL OF COMPUTATIONAL NEUROSCIENCE, 1997, 4 (01) : 79 - 94
  • [10] The hippocampal engram maps experience but not place
    Tanaka, Kazumasa Z.
    He, Hongshen
    Tomar, Anupratap
    Niisato, Kazue
    Huang, Arthur J. Y.
    McHugh, Thomas J.
    SCIENCE, 2018, 361 (6400) : 392 - 397