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PMID: 12948449 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Visually driven regulation of intrinsic neuronal excitability improves stimulus detection in vivo.

Neuron ·Vol. 39 ·No. 5 ·2003-08-28 ·Pages 831-42

Aizenman CD, Akerman CJ, Jensen KR, Cline HT

Abstract

Neurons adapt their electrophysiological properties to maintain stable levels of electrical excitability when faced with a constantly changing environment. We find that exposing freely swimming Xenopus tadpoles to 4-5 hr of persistent visual stimulation increases the intrinsic excitability of optic tectal neurons. This increase is correlated with enhanced voltage-gated Na+ currents. The same visual stimulation protocol also induces a polyamine synthesis-dependent reduction in Ca2+-permeable AMPAR-mediated synaptic drive, suggesting that the increased excitability may compensate for this reduction. Accordingly, the change in excitability was prevented by blocking polyamine synthesis during visual stimulation and was rescued when Ca2+-permeable AMPAR-mediated transmission was selectively reduced. The changes in excitability also rendered tectal cells more responsive to synaptic burst stimuli, improving visual stimulus detection. The synaptic and intrinsic adaptations function together to keep tectal neurons within a constant operating range, while making the intact visual system less responsive to background activity yet more sensitive to burst stimuli.

MeSH Terms
Animals Biogenic Polyamines/antagonists & inhibitors,metabolism Calcium/metabolism Larva Membrane Potentials Neuronal Plasticity/physiology Neurons/physiology Organ Culture Techniques Patch-Clamp Techniques Photic Stimulation Receptors, AMPA/metabolism Sodium Channels/physiology Superior Colliculi/embryology,physiology Synaptic Transmission/physiology Visual Pathways/cytology,growth & development Xenopus
Chemicals
Biogenic Polyamines Receptors, AMPA Sodium Channels Calcium
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Aizenman Carlos D
Cold Spring Harbor Laboratory, Cold Spring Harbor, NY 11724, USA.
Akerman Colin J
Jensen Kendall R
Cline Hollis T
Article Info
Journal
Neuron
Abbr.
Neuron
ISSN
0896-6273
Published
2003-08-28
Pages
831-42
Language
English
Region
United States
NLM ID
8809320
Subset
IM
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