Abstract
Structural changes in hippocampal dendrites and dendritic spines are thought to be a consequence of a wide range of experience- and activity-dependent manipulations. We explored the dynamics of hippocampal dendritic spines in vivo by developing a surgical preparation of the adult mouse brain that enabled two-photon imaging of fluorescently labeled CA1 pyramidal neurons. Dendritic trees and spines were repeatedly visualized over many hours in exquisite detail. We tested spine stability under both control conditions and during prolonged epileptic seizures. Remarkably, spines remained structurally stable after 30 min of experimental induction of epileptic seizures. Spines began to disappear only several hours after induction of epileptic activity. We thus demonstrate that this technique provides a methodology for direct in vivo optical studies of the intact mammalian hippocampus.
MeSH Terms
Animals
Bicuculline/pharmacology
Dendrites/drug effects,ultrastructure
Electroencephalography
Epilepsy/chemically induced,pathology,physiopathology
GABA Antagonists/pharmacology
Green Fluorescent Proteins
Hippocampus/drug effects,physiopathology,ultrastructure
Luminescent Proteins/biosynthesis,genetics
Mice
Mice, Transgenic
Microscopy, Confocal/instrumentation,methods
Pilocarpine
Pyramidal Cells/metabolism,ultrastructure
Reproducibility of Results
Sensitivity and Specificity
Time Factors
Chemicals
GABA Antagonists
Luminescent Proteins
Pilocarpine
Green Fluorescent Proteins
Bicuculline
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Mizrahi Adi
Howard Hughes Medical Institute and Department of Neurobiology, Duke University Medical Center, Durham, North Carolina 27710, USA.
[email protected]
Crowley Justin C
Shtoyerman Eran
Katz Lawrence C
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