Intrinsic volatility of synaptic connections - a challenge to the synaptic trace theory of memory

被引:72
作者
Mongillo, Gianluigi [1 ,2 ]
Rumpel, Simon [3 ]
Loewenstein, Yonatan [4 ,5 ]
机构
[1] CNRS, Paris, France
[2] Univ Descartes, CNPP, Paris, France
[3] Johannes Gutenberg Univ Mainz, Univ Med Ctr, Inst Physiol, Focus Program Translat Neurosci, Mainz, Germany
[4] Hebrew Univ Jerusalem, Dept Neurobiol, Federmann Ctr Study Rat, Jerusalem, Israel
[5] Hebrew Univ Jerusalem, Edmond & Lily Safra Ctr Brain Sci, Jerusalem, Israel
基金
以色列科学基金会;
关键词
NEOCORTEX IN-VIVO; DENDRITIC SPINE STABILITY; LONG-TERM; INHIBITORY SYNAPSES; ADULT NEOCORTEX; DYNAMICS; PLASTICITY; CORTEX; REINFORCEMENT; GROWTH;
D O I
10.1016/j.conb.2017.06.006
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
According to the synaptic trace theory of memory, activity induced changes in the pattern of synaptic connections underlie the storage of information for long periods. In this framework, the stability of memory critically depends on the stability of the underlying synaptic connections. Surprisingly however, synaptic connections in the living brain are highly volatile, which poses a fundamental challenge to the synaptic trace theory. Here we review recent experimental evidence that link the initial formation of a memory with changes in the pattern of connectivity, but also evidence that synaptic connections are considerably volatile even in the absence of learning. Then we consider different theoretical models that have been put forward to explain how memory can be maintained with such volatile building blocks.
引用
收藏
页码:7 / 13
页数:7
相关论文
共 68 条
[11]   Computational principles of memory [J].
Chaudhuri, Rishidev ;
Fiete, Ila .
NATURE NEUROSCIENCE, 2016, 19 (03) :394-403
[12]   Clustered Dynamics of Inhibitory Synapses and Dendritic Spines in the Adult Neocortex [J].
Chen, Jerry L. ;
Villa, Katherine L. ;
Cha, Jae Won ;
So, Peter T. C. ;
Kubota, Yoshiyuki ;
Nedivi, Elly .
NEURON, 2012, 74 (02) :361-373
[13]  
Deger M, 2016, MULTICONTACT SYNAPSE
[14]   Spike-Timing Dependence of Structural Plasticity Explains Cooperative Synapse Formation in the Neocortex [J].
Deger, Moritz ;
Helias, Moritz ;
Rotter, Stefan ;
Diesmann, Markus .
PLOS COMPUTATIONAL BIOLOGY, 2012, 8 (09)
[15]   Parvalbumin-expressing basket-cell network plasticity induced by experience regulates adult learning [J].
Donato, Flavio ;
Rompani, Santiago Belluco ;
Caroni, Pico .
NATURE, 2013, 504 (7479) :272-+
[16]   Relative Contributions of Specific Activity Histories and Spontaneous Processes to Size Remodeling of Glutamatergic Synapses [J].
Dvorkin, Roman ;
Ziv, Noam E. .
PLOS BIOLOGY, 2016, 14 (10)
[17]   Dendritic spine changes associated with hippocampal long-term synaptic plasticity [J].
Engert, F ;
Bonhoeffer, T .
NATURE, 1999, 399 (6731) :66-70
[18]   Cooperative synapse formation in the neocortex [J].
Fares, Tarec ;
Stepanyants, Armen .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2009, 106 (38) :16463-16468
[19]   Formation and Maintenance of Robust Long-Term Information Storage in the Presence of Synaptic Turnover [J].
Fauth, Michael ;
Woergoetter, Florentin ;
Tetzlaff, Christian .
PLOS COMPUTATIONAL BIOLOGY, 2015, 11 (12)
[20]   Model of birdsong learning based on gradient estimation by dynamic perturbation of neural conductances [J].
Fiete, Ila R. ;
Fee, Michale S. ;
Seung, H. Sebastian .
JOURNAL OF NEUROPHYSIOLOGY, 2007, 98 (04) :2038-2057