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PMID: 18701752 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Differential activity-dependent, homeostatic plasticity of two neocortical inhibitory circuits.

Journal of neurophysiology ·Vol. 100 ·No. 4 ·2008-10-00 ·Pages 1983-94

Bartley AF, Huang ZJ, Huber KM, Gibson JR

Abstract

Chronic changes in neuronal activity homeostatically regulate excitatory circuitry. However, little is known about how activity regulates inhibitory circuits or specific inhibitory neuron types. Here, we examined the activity-dependent regulation of two neocortical inhibitory circuits--parvalbumin-positive (Parv+) and somatostatin-positive (Som+)--using paired recordings of synaptically coupled neurons. Action potentials were blocked for 5 days in slice culture, and unitary synaptic connections among inhibitory/excitatory neuron pairs were examined. Chronic activity blockade caused similar and distinct changes between the two inhibitory circuits. First, increases in intrinsic membrane excitability and excitatory synaptic drive in both inhibitory subtypes were consistent with the homeostatic regulation of firing rate of these neurons. On the other hand, inhibitory synapses originating from these two subtypes were differentially regulated by activity blockade. Parv+ unitary inhibitory postsynaptic current (uIPSC) strength was decreased while Som+ uIPSC strength was unchanged. Using short-duration stimulus trains, short-term plasticity for both unitary excitatory postsynaptic current (uEPSCs) and uIPSCs was unchanged in Parv+ circuitry while distinctively altered in Som+ circuitry--uEPSCs became less facilitating and uIPSCs became more depressing. In the context of recurrent inhibition, these changes would result in a frequency-dependent shift in the relative influence of each circuit. The functional changes at both types of inhibitory connections appear to be mediated by increases in presynaptic release probability and decreases in synapse number. Interestingly, these opposing changes result in decreased Parv+-mediated uIPSCs but balance out to maintain normal Som+-mediated uIPSCs. In summary, these results reveal that inhibitory circuitry is not uniformly regulated by activity levels and may provide insight into the mechanisms of both normal and pathological neocortical plasticity.

MeSH Terms
Animals Cell Count Electrophysiology Excitatory Postsynaptic Potentials/drug effects,physiology Homeostasis/drug effects,physiology Immunohistochemistry In Vitro Techniques Mice Neocortex/cytology,drug effects,physiology Neural Pathways/cytology,drug effects,physiology Neuronal Plasticity/drug effects,physiology Neurons/drug effects,physiology,ultrastructure Parvalbumins/physiology Presynaptic Terminals/drug effects,physiology Receptors, Presynaptic/drug effects,physiology Somatostatin/physiology Strontium/pharmacology Synapses/drug effects,physiology
Chemicals
Parvalbumins Receptors, Presynaptic Somatostatin Strontium
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Bartley Aundrea F
University of Texas, Southwestern Medical Center, Department of Neuroscience, Box 9111, Dallas, TX 75390-9111, USA.
Huang Z Josh
Huber Kimberly M
Gibson Jay R
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Article Info
Journal
Journal of neurophysiology
Abbr.
J Neurophysiol
ISSN
0022-3077
Published
2008-10-00
Epub
2008-00-13
Pages
1983-94
Language
English
Region
United States
NLM ID
0375404
PMCID
PMC2576194
Subset
IM
Grants
NINDS NIH HHS · NS-045711 · United States
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