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Dendrites of DG granule cells contribute to pattern separation by controlling sparsity

Spyridon Chavlis, Panagiotis C Petrantonakis, Panayiota Poirazi
doi: https://doi.org/10.1101/067389
Spyridon Chavlis
Institute of Molecular Biology & Biotechnology, Foundation for Research and Technology Hellas
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  • For correspondence: schavlis@imbb.forth.gr
Panagiotis C Petrantonakis
Institute of Molecular Biology & Biotechnology, Foundation for Research and Technology Hellas
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  • For correspondence: ppetrant@imbb.forth.gr
Panayiota Poirazi
Institute of Molecular Biology & Biotechnology, Foundation for Research and Technology Hellas
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  • For correspondence: poirazi@imbb.forth.gr
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Abstract

The hippocampus plays a key role in pattern separation, the process of transforming similar incoming information to highly dissimilar, non-overlapping representations. Sparse firing granule cells (GCs) in the dentate gyrus (DG) have been proposed to undertake this computation, but little is known about which of their properties influence pattern separation. Dendritic atrophy has been reported in diseases associated with pattern separation deficits, suggesting a possible role for dendrites in this phenomenon. To investigate whether and how the dendrites of GCs contribute to pattern separation, we build a simplified, biologically relevant, computational model of the DG. Our model suggests that the presence of GC dendrites is associated with high pattern separation efficiency while their atrophy leads to increased excitability and performance impairments. These impairments can be rescued by restoring GC sparsity to control levels through various manipulations. We predict that dendrites contribute to pattern separation as a mechanism for controlling sparsity.

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Posted August 03, 2016.
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Dendrites of DG granule cells contribute to pattern separation by controlling sparsity
Spyridon Chavlis, Panagiotis C Petrantonakis, Panayiota Poirazi
bioRxiv 067389; doi: https://doi.org/10.1101/067389
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Dendrites of DG granule cells contribute to pattern separation by controlling sparsity
Spyridon Chavlis, Panagiotis C Petrantonakis, Panayiota Poirazi
bioRxiv 067389; doi: https://doi.org/10.1101/067389

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