Intracellular calcium regulation by burst discharge determines bidirectional long-term synaptic plasticity at the cerebellum input stage

被引:91
|
作者
Gall, D
Prestori, F
Sola, E
D'Errico, A
Roussel, C
Forti, L
Rossi, P
D'Angelo, E
机构
[1] Univ Pavia, Dept Cellular Mol Physiol & Pharmacol Sci, I-27100 Pavia, Italy
[2] Natl Inst Phys Matter, I-16152 Genoa, Italy
[3] Univ Parma, Dept Funct & Evolutionary Biol, I-34100 Parma, Italy
[4] Free Univ Brussels, Fac Med, Lab Neurophysiol CP601, B-1070 Brussels, Belgium
来源
JOURNAL OF NEUROSCIENCE | 2005年 / 25卷 / 19期
关键词
calcium; LTP; LTD; synaptic plasticity; cerebellum; granule cells;
D O I
10.1523/JNEUROSCI.0410-05.2005
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Variations in intracellular calcium concentration ([Ca2+](i)) provide a critical signal for synaptic plasticity. In accordance with Hebb's postulate ( Hebb, 1949), an increase in postsynaptic [ Ca2+](i) can induce bidirectional changes in synaptic strength depending on activation of specific biochemical pathways ( Bienenstock et al., 1982; Lisman, 1989; Stanton and Sejnowski, 1989). Despite its strategic location for signal processing, spatiotemporal dynamics of [Ca2+](i) changes and their relationship with synaptic plasticity at the cerebellar mossy fiber ( mf) - granule cell ( GrC) relay were unknown. In this paper, we report the plasticity/[Ca2+](i) relationship for GrCs, which are typically activated by mf bursts ( Chadderton et al., 2004). Mf bursts caused a remarkable [Ca2+](i) increase in GrC dendritic terminals through the activation of NMDA receptors, metabotropic glutamate receptors ( probably acting through IP3- sensitive stores), voltage- dependent calcium channels, and Ca2+- induced Ca2+ release. Although [ Ca2+](i) increased with the duration of mf bursts, long- term depression was found with a small [Ca2+](i) increase ( bursts < 250 ms), and long- term potentiation ( LTP) was found with a large [ Ca2+](i) increase ( bursts > 250 ms). LTP and [ Ca2+](i) saturated for bursts > 500 ms and with theta- burst stimulation. Thus, bursting enabled a Ca2+- dependent bidirectional Bienenstock - Cooper - Munro- like learning mechanism providing the cellular basis for effective learning of burst patterns at the input stage of the cerebellum.
引用
收藏
页码:4813 / 4822
页数:10
相关论文
共 45 条
  • [31] Epigenetic regulation of microglial phosphatidylinositol 3-kinase pathway involved in long-term potentiation and synaptic plasticity in rats
    Saw, Genevieve
    Krishna, Kumar
    Gupta, Neelima
    Soong, Tuck Wah
    Mallilankaraman, Karthik
    Sajikumar, Sreedharan
    Dheen, S. Thameem
    GLIA, 2020, 68 (03) : 656 - 669
  • [32] Long-term depression of NMDA receptor-mediated synaptic transmission is dependent on activation of metabotropic glutamate receptors and is altered to long-term potentiation by low intracellular calcium buffering
    Harney, SC
    Rowan, M
    Anwyl, R
    JOURNAL OF NEUROSCIENCE, 2006, 26 (04): : 1128 - 1132
  • [33] TORC1 is a calcium- and cAMP-sensitive coincidence detector involved in hippocampal long-term synaptic plasticity
    Kovacs, Krisztian A.
    Steullet, Pascal
    Steinmann, Myriam
    Do, Kim Q.
    Magistretti, Pierre J.
    Halfon, Olivier
    Cardinaux, Jean-Rene
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2007, 104 (11) : 4700 - 4705
  • [34] The opposite effects of oxytocin and urocortin-3 on long-term social recognition memory, correlate with their bidirectional modulation of synaptic plasticity in the medial amygdala
    Gur, Rotem
    Wagner, Shlomo
    PSYCHONEUROENDOCRINOLOGY, 2015, 61 : 46 - 46
  • [35] Calcium/Calmodulin-dependent Protein Kinase II is a Ubiquitous Molecule in Human Long-term Memory Synaptic Plasticity: A Systematic Review
    Ataei, Negar
    Sabzghabaee, Ali Mohammad
    Movahedian, Ahmad
    INTERNATIONAL JOURNAL OF PREVENTIVE MEDICINE, 2015, 6
  • [36] Neocortical long-term potentiation and experience-dependent synaptic plasticity require α-calcium/calmodulin-dependent protein kinase II autophosphorylation
    Hardingham, N
    Glazewski, S
    Pakhotin, P
    Mizuno, K
    Chapman, PF
    Giese, KP
    Fox, K
    JOURNAL OF NEUROSCIENCE, 2003, 23 (11): : 4428 - 4436
  • [37] Understanding the neurosiological mechanisms of learning and memory:: Cellular, molecular and gene regulation implicated in synaptic plasticity and long-term potentiation.: Part IVB
    Leff, P
    Retana, I
    Arias-Caballero, A
    Acevedo, R
    Salazar, A
    Martínez, C
    Antón, B
    SALUD MENTAL, 2004, 27 (03) : 26 - 37
  • [38] Ca2+/CREB/CBP-dependent gene regulation:: a shared mechanism critical in long-term synaptic plasticity and neuronal survival
    Bito, H
    Takemoto-Kimura, S
    CELL CALCIUM, 2003, 34 (4-5) : 425 - 430
  • [39] Understanding the neurobiological mechanisms of learning and memory:: cellular, molecular and gene regulation implicated in synaptic plasticity and long-term potentiation.: Part IV
    Leff, P
    Retana, I
    Arias-Caballero, A
    Matus, M
    Salazar, A
    Arreola, R
    Antón, B
    SALUD MENTAL, 2004, 27 (04) : 63 - 87
  • [40] Rescue of astrocyte activity by the calcium sensor STIM1 restores long-term synaptic plasticity in female mice modelling Alzheimer's disease
    Lia, Annamaria
    Sansevero, Gabriele
    Chiavegato, Angela
    Sbrissa, Miriana
    Pendin, Diana
    Mariotti, Letizia
    Pozzan, Tullio
    Berardi, Nicoletta
    Carmignoto, Giorgio
    Fasolato, Cristina
    Zonta, Micaela
    NATURE COMMUNICATIONS, 2023, 14 (01)