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A novel unbiased counting method for the quantification of synapses in the mouse brain.
Reichmann, Florian; Painsipp, Evelin; Holzer, Peter; Kummer, Daniel; Bock, Elisabeth; Leitinger, Gerd.
Afiliación
  • Reichmann F; Research Unit of Translational Neurogastroenterology, Institute of Experimental and Clinical Pharmacology, Medical University of Graz, Universitätsplatz 4, 8010 Graz, Austria. Electronic address: florian.reichmann@medunigraz.at.
  • Painsipp E; Research Unit of Translational Neurogastroenterology, Institute of Experimental and Clinical Pharmacology, Medical University of Graz, Universitätsplatz 4, 8010 Graz, Austria.
  • Holzer P; Research Unit of Translational Neurogastroenterology, Institute of Experimental and Clinical Pharmacology, Medical University of Graz, Universitätsplatz 4, 8010 Graz, Austria. Electronic address: peter.holzer@medunigraz.at.
  • Kummer D; Research Unit Electron Microscopic Techniques, Institute of Cell Biology, Histology and Embryology, Medical University of Graz, Harrachgasse 21, 8010 Graz, Austria.
  • Bock E; Research Unit Electron Microscopic Techniques, Institute of Cell Biology, Histology and Embryology, Medical University of Graz, Harrachgasse 21, 8010 Graz, Austria.
  • Leitinger G; Research Unit Electron Microscopic Techniques, Institute of Cell Biology, Histology and Embryology, Medical University of Graz, Harrachgasse 21, 8010 Graz, Austria. Electronic address: gerd.leitinger@medunigraz.at.
J Neurosci Methods ; 240: 13-21, 2015 Jan 30.
Article en En | MEDLINE | ID: mdl-25445248
ABSTRACT

BACKGROUND:

The numerical density of synapses and their ultrastructural features are best assessed with electron microscopy. Counting is done within counting frames placed on a pair of sections (disector technique). But this requires that the thin sections are taken from comparable brain regions and the disectors are placed in a uniform random fashion. Small brain areas like the polymorph layer of the mouse dentate gyrus are difficult to encounter, and manually moving the microscope stage for placing the micrographs seems arbitrary. NEW

METHOD:

Here the polymorph layer was approximated with 20µm thin, Nissl-stained vibratome sections. The subsequent vibratome section was processed for electron microscopy and serially thin sectioned. The microscope stage was moved using a random number generator, placing at least 20 disectors onto a pair of sections. The numerical synapse density, the numerical density of dense-core vesicles, and other ultrastructural features were compared between mice that had been kept in an enriched environment and mice kept under standard housing conditions.

RESULTS:

Environmental enrichment significantly decreased the numerical density of dense-core vesicles and synaptic cleft widths within the polymorph layer, associated with behavioral improvement in the Morris water maze, a hippocampus-dependent task of spatial learning and memory. COMPARISON WITH EXISTING

METHODS:

This procedure was easy to handle and enabled us to produce thin sections in small, defined brain areas. Furthermore, placing the disectors with random numbers excluded observer bias.

CONCLUSIONS:

Our procedure provides an uncomplicated way of assessing numerical densities in small brain areas in an unbiased manner.
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Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Sinapsis / Reconocimiento de Normas Patrones Automatizadas / Microscopía Electrónica / Giro Dentado Límite: Animals Idioma: En Revista: J Neurosci Methods Año: 2015 Tipo del documento: Article

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Sinapsis / Reconocimiento de Normas Patrones Automatizadas / Microscopía Electrónica / Giro Dentado Límite: Animals Idioma: En Revista: J Neurosci Methods Año: 2015 Tipo del documento: Article
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