Literature DB >> 28115721

Superresolution imaging reveals activity-dependent plasticity of axon morphology linked to changes in action potential conduction velocity.

Ronan Chéreau1,2, G Ezequiel Saraceno1,2, Julie Angibaud1,2, Daniel Cattaert1,3, U Valentin Nägerl4,2.   

Abstract

Axons convey information to nearby and distant cells, and the time it takes for action potentials (APs) to reach their targets governs the timing of information transfer in neural circuits. In the unmyelinated axons of hippocampus, the conduction speed of APs depends crucially on axon diameters, which vary widely. However, it is not known whether axon diameters are dynamic and regulated by activity-dependent mechanisms. Using time-lapse superresolution microscopy in brain slices, we report that axons grow wider after high-frequency AP firing: synaptic boutons undergo a rapid enlargement, which is mostly transient, whereas axon shafts show a more delayed and progressive increase in diameter. Simulations of AP propagation incorporating these morphological dynamics predicted bidirectional effects on AP conduction speed. The predictions were confirmed by electrophysiological experiments, revealing a phase of slowed down AP conduction, which is linked to the transient enlargement of the synaptic boutons, followed by a sustained increase in conduction speed that accompanies the axon shaft widening induced by high-frequency AP firing. Taken together, our study outlines a morphological plasticity mechanism for dynamically fine-tuning AP conduction velocity, which potentially has wide implications for the temporal transfer of information in the brain.

Keywords:  STED microscopy; action potential conduction velocity; axons; plasticity; synaptic boutons

Mesh:

Year:  2017        PMID: 28115721      PMCID: PMC5307438          DOI: 10.1073/pnas.1607541114

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  41 in total

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5.  Functional trade-offs in white matter axonal scaling.

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6.  Action-potential modulation during axonal conduction.

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9.  Selective effects of potassium elevations on glutamate signaling and action potential conduction in hippocampus.

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10.  Long-term activity-dependent plasticity of action potential propagation delay and amplitude in cortical networks.

Authors:  Douglas J Bakkum; Zenas C Chao; Steve M Potter
Journal:  PLoS One       Date:  2008-05-07       Impact factor: 3.240

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  44 in total

1.  White matter microstructural changes in short-term learning of a continuous visuomotor sequence.

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Review 2.  Unveiling the Extracellular Space of the Brain: From Super-resolved Microstructure to In Vivo Function.

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3.  Diffusion of Ca2+ from Small Boutons en Passant into the Axon Shapes AP-Evoked Ca2+ Transients.

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4.  Activity-Dependence of Synaptic Vesicle Dynamics.

Authors:  Luca A Forte; Michael W Gramlich; Vitaly A Klyachko
Journal:  J Neurosci       Date:  2017-09-27       Impact factor: 6.167

5.  Activity-Dependent Myelination of Parvalbumin Interneurons Mediated by Axonal Morphological Plasticity.

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Review 6.  Subcellular control of membrane excitability in the axon.

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7.  A Discrete Presynaptic Vesicle Cycle for Neuromodulator Receptors.

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8.  Long-Term Live-Cell STED Nanoscopy of Primary and Cultured Cells with the Plasma Membrane HIDE Probe DiI-SiR.

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9.  Action potential-coupled Rho GTPase signaling drives presynaptic plasticity.

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Review 10.  On Myelinated Axon Plasticity and Neuronal Circuit Formation and Function.

Authors:  Rafael G Almeida; David A Lyons
Journal:  J Neurosci       Date:  2017-10-18       Impact factor: 6.167

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