Influx of extracellular calcium regulates actin-dependent morphological plasticity in dendritic spines

被引:46
作者
Brünig, I [1 ]
Kaech, S [1 ]
Brinkhaus, H [1 ]
Oertner, TG [1 ]
Matus, A [1 ]
机构
[1] Friedrich Miescher Inst, CH-4058 Basel, Switzerland
关键词
excitatory synapse; glutamate receptor; hippocampus; cytoskeleton; synaptic plasticity; dendritic spines;
D O I
10.1016/j.neuropharm.2004.07.038
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Dendritic spines contain a specialized cytoskeleton composed of dynamic actin filaments capable of producing rapid changes in their motility and morphology. Transient changes in Ca2+ levels in the spine cytoplasm have been associated with the modulation of these effects in a variety of ways. To characterize the contribution of Ca2+ fluxes originating through different pathways to these phenomena, we used time-lapse imaging of cultured hippocampal neurons expressing GFP-actin to follow the influence of postsynaptic neurotransmiitter receptors, voltage-activated Ca2+ channels and release from internal Ca2+ stores oil spine actin dynamics. Stimulation of AMPA receptors produced a rapid blockade of actin-dependent spine motility that was immediately reversible when AMPA was removed. Stimulation of NMDA receptors also blocked spine motility but in this case Suppression of actin dynamics was delayed by Lip to 30 min depending on NMDA concentration and motility was never seen to recover when NMDA was removed. These effects could be mimicked by depolarizing neurons under appropriate circumstances demonstrating the involvement of voltage-activated Ca2+ channels in AMPA receptor-mediated effects and the receptor associated Ca2+ channel in the effects of NMDA. Caffeine, an agent that releases Ca2+ from internal stores, had no immediate effect on spine actin, a result compatible with the lack of caffeine-releasable Ca2+ in Cultured hippocampal neurons under resting conditions. Blocking internal store function by thapsigargin led to a delayed suppression of spine actin dynamics that was dependent on extracellular Ca2+. Together these results indicate the common involvement of changes in Ca2+ levels in modulating actin-dependent effects on dendritic spine motility and morphology through several modes of electrophysiological activation. (C) 2004 Elsevier Ltd. All rights reserved.
引用
收藏
页码:669 / 676
页数:8
相关论文
共 34 条
  • [1] Activity-induced targeting of profilin and stabilization of dendritic spine morphology
    Ackermann, M
    Matus, A
    [J]. NATURE NEUROSCIENCE, 2003, 6 (11) : 1194 - 1200
  • [2] Baba A, 2003, J NEUROSCI, V23, P7737
  • [3] Activation of a capacitative Ca2+ entry pathway by store depletion in cultured hippocampal neurones
    Bouron, A
    [J]. FEBS LETTERS, 2000, 470 (03) : 269 - 272
  • [4] Spine motility with synaptic contact
    Dunaevsky, A
    Blaszeski, R
    Yuste, R
    Mason, C
    [J]. NATURE NEUROSCIENCE, 2001, 4 (07) : 685 - 686
  • [5] Calcium stores in hippocampal synaptic boutons mediate short-term plasticity, store-operated Ca2+ entry, and spontaneous transmitter release
    Emptage, NJ
    Reid, CA
    Fine, A
    [J]. NEURON, 2001, 29 (01) : 197 - 208
  • [6] Glutamate receptors regulate actin-based plasticity in dendritic spines
    Fischer, M
    Kaech, S
    Wagner, U
    Brinkhaus, H
    Matus, A
    [J]. NATURE NEUROSCIENCE, 2000, 3 (09) : 887 - 894
  • [7] Rapid actin-based plasticity in dendritic spines
    Fischer, M
    Kaech, S
    Knutti, D
    Matus, A
    [J]. NEURON, 1998, 20 (05) : 847 - 854
  • [8] Multiple spatiotemporal modes of actin reorganization by NMDA receptors and voltage-gated Ca2+ channels
    Furuyashiki, T
    Arakawa, Y
    Takemoto-Kimura, S
    Bito, H
    Narumiya, S
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (22) : 14458 - 14463
  • [9] Actin and the agile spine: how and why do dendritic spines dance?
    Halpain, S
    [J]. TRENDS IN NEUROSCIENCES, 2000, 23 (04) : 141 - 146
  • [10] Structure, development, and plasticity of dendritic spines
    Harris, KM
    [J]. CURRENT OPINION IN NEUROBIOLOGY, 1999, 9 (03) : 343 - 348