Spine dynamics in the brain, mental disorders and artificial neural networks

被引:101
作者
Kasai, Haruo [1 ,2 ]
Ziv, Noam E. [3 ]
Okazaki, Hitoshi [1 ,2 ]
Yagishita, Sho [1 ,2 ]
Toyoizumi, Taro [4 ,5 ]
机构
[1] Univ Tokyo, Ctr Dis Biol & Integrat Med, Lab Struct Physiol, Fac Med, Tokyo, Japan
[2] Univ Tokyo, Int Res Ctr Neurointelligence WPI IRCN, UTIAS, Bunkyo Ku, Tokyo, Japan
[3] Technion City, Biol Res Labs, Technion Fac Med & Network, Haifa, Israel
[4] RIKEN, Ctr Brain Sci, Lab Neural Computat & Adaptat, Saitama, Japan
[5] Univ Tokyo, Grad Sch Informat Sci & Technol, Dept Math Informat, Tokyo, Japan
基金
以色列科学基金会; 日本学术振兴会; 日本科学技术振兴机构;
关键词
LONG-TERM POTENTIATION; DEPENDENT STRUCTURAL PLASTICITY; DENDRITIC SPINES; SYNAPTIC PLASTICITY; ACTIN DYNAMICS; MOUSE MODEL; IN-VIVO; CAMKII AUTOPHOSPHORYLATION; FUNCTIONAL-ORGANIZATION; ELIGIBILITY TRACES;
D O I
10.1038/s41583-021-00467-3
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Dendritic spines can be considered to embody algorithms that underlie various brain functions. Here, Kasai et al. review spine dynamics and their roles in various brain functions, compare these dynamics with parallels in machine learning and describe how disrupted dynamics may contribute to mental disorders. In the brain, most synapses are formed on minute protrusions known as dendritic spines. Unlike their artificial intelligence counterparts, spines are not merely tuneable memory elements: they also embody algorithms that implement the brain's ability to learn from experience and cope with new challenges. Importantly, they exhibit structural dynamics that depend on activity, excitatory input and inhibitory input (synaptic plasticity or 'extrinsic' dynamics) and dynamics independent of activity ('intrinsic' dynamics), both of which are subject to neuromodulatory influences and reinforcers such as dopamine. Here we succinctly review extrinsic and intrinsic dynamics, compare these with parallels in machine learning where they exist, describe the importance of intrinsic dynamics for memory management and adaptation, and speculate on how disruption of extrinsic and intrinsic dynamics may give rise to mental disorders. Throughout, we also highlight algorithmic features of spine dynamics that may be relevant to future artificial intelligence developments.
引用
收藏
页码:407 / 422
页数:16
相关论文
共 228 条
[1]   ASYMMETRIC RELATIONSHIPS BETWEEN HOMOSYNAPTIC LONG-TERM POTENTIATION AND HETEROSYNAPTIC LONG-TERM DEPRESSION [J].
ABRAHAM, WC ;
GODDARD, GV .
NATURE, 1983, 305 (5936) :717-719
[2]   IS CONTIGUITY DETECTION IN CLASSICAL-CONDITIONING A SYSTEM OR A CELLULAR PROPERTY - LEARNING IN APLYSIA SUGGESTS A POSSIBLE MOLECULAR SITE [J].
ABRAMS, TW ;
KANDEL, ER .
TRENDS IN NEUROSCIENCES, 1988, 11 (04) :128-135
[3]   On the spectrum [J].
Adam, David .
NATURE, 2013, 496 (7446) :416-418
[4]   The role of neuronal activity and transmitter release on synapse formation [J].
Andreae, Laura C. ;
Burrone, Juan .
CURRENT OPINION IN NEUROBIOLOGY, 2014, 27 :47-52
[5]   Impermanence of dendritic spines in live adult CA1 hippocampus [J].
Attardo, Alessio ;
Fitzgerald, James E. ;
Schnitzer, Mark J. .
NATURE, 2015, 523 (7562) :592-+
[6]   ADF/cofilin and actin dynamics in disease [J].
Bamburg, JR ;
Wiggan, OP .
TRENDS IN CELL BIOLOGY, 2002, 12 (12) :598-605
[7]   Nanoconnectomic upper bound on the variability of synaptic plasticity [J].
Bartol, Thomas M., Jr. ;
Bromer, Cailey ;
Kinney, Justin ;
Chirillo, Michael A. ;
Bourne, Jennifer N. ;
Harris, Kristen M. ;
Sejnowski, Terrence J. .
ELIFE, 2015, 4
[8]   Synapse-specific regulation of AMPA receptor function by PSD-95 [J].
Beique, Jean-Claude ;
Lin, Da-Ting ;
Kang, Myoung-Goo ;
Aizawa, Hiro ;
Takamiya, Kogo ;
Huganir, Richard L. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2006, 103 (51) :19535-19540
[9]  
Bellec Guillaume, 2018, ICLR
[10]   Cortical area and species differences in dendritic spine morphology [J].
Benavides-Piccione, R ;
Ballesteros-Yáñez, I ;
DeFelipe, J ;
Yuste, R .
JOURNAL OF NEUROCYTOLOGY, 2002, 31 (3-5) :337-346