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PMID: 18842068 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

The timing of differentiation of adult hippocampal neurons is crucial for spatial memory.

PLoS biology ·Vol. 6 ·No. 10 ·2008-10-07 ·Pages e246

Farioli-Vecchioli S, Saraulli D, Costanzi M, Pacioni S, Cinà I, Aceti M, Micheli L, Bacci A, Cestari V, Tirone F

Abstract

Adult neurogenesis in the dentate gyrus plays a critical role in hippocampus-dependent spatial learning. It remains unknown, however, how new neurons become functionally integrated into spatial circuits and contribute to hippocampus-mediated forms of learning and memory. To investigate these issues, we used a mouse model in which the differentiation of adult-generated dentate gyrus neurons can be anticipated by conditionally expressing the pro-differentiative gene PC3 (Tis21/BTG2) in nestin-positive progenitor cells. In contrast to previous studies that affected the number of newly generated neurons, this strategy selectively changes their timing of differentiation. New, adult-generated dentate gyrus progenitors, in which the PC3 transgene was expressed, showed accelerated differentiation and significantly reduced dendritic arborization and spine density. Functionally, this genetic manipulation specifically affected different hippocampus-dependent learning and memory tasks, including contextual fear conditioning, and selectively reduced synaptic plasticity in the dentate gyrus. Morphological and functional analyses of hippocampal neurons at different stages of differentiation, following transgene activation within defined time-windows, revealed that the new, adult-generated neurons up to 3-4 weeks of age are required not only to acquire new spatial information but also to use previously consolidated memories. Thus, the correct unwinding of these key memory functions, which can be an expression of the ability of adult-generated neurons to link subsequent events in memory circuits, is critically dependent on the correct timing of the initial stages of neuron maturation and connection to existing circuits.

MeSH Terms
Animals Cell Differentiation/physiology Genes, Tumor Suppressor Hippocampus/cytology,physiology Immediate-Early Proteins/genetics,metabolism Intermediate Filament Proteins/genetics,metabolism Memory Mice Mice, Transgenic Models, Animal Nerve Tissue Proteins/genetics,metabolism Nestin Neuronal Plasticity/physiology Neurons/cytology,physiology Space Perception/physiology Time Factors Tumor Suppressor Proteins
Chemicals
Btg2 protein, mouse Immediate-Early Proteins Intermediate Filament Proteins Nerve Tissue Proteins Nes protein, mouse Nestin Tumor Suppressor Proteins
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Farioli-Vecchioli Stefano
Institute of Neurobiology and Molecular Medicine, Consiglio Nazionale delle Ricerche, Fondazione S Lucia, Rome, Italy.
Saraulli Daniele
Costanzi Marco
Pacioni Simone
Cinà Irene
Aceti Massimiliano
Micheli Laura
Bacci Alberto
Cestari Vincenzo
Tirone Felice
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Article Info
Journal
PLoS biology
Abbr.
PLoS Biol
ISSN
1545-7885
Published
2008-10-07
Pages
e246
Language
English
Region
United States
NLM ID
101183755
PMCID
PMC2561078
Subset
IM
Grants
Telethon · GGP05082 · Italy
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