Cargando…

A model of direction selectivity in the starburst amacrine cell network

Displaced starburst amacrine cells (SACs) are retinal interneurons that exhibit GABA(A) receptor-mediated and Cl (−) cotransporter-mediated, directionally selective (DS) light responses in the rabbit retina. They depolarize to stimuli that move centrifugally through the receptive field surround and...

Descripción completa

Detalles Bibliográficos
Autores principales: Enciso, Germán A., Rempe, Michael, Dmitriev, Andrey V., Gavrikov, Konstantin E., Terman, David, Mangel, Stuart C.
Formato: Texto
Lenguaje:English
Publicado: Springer US 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2880707/
https://www.ncbi.nlm.nih.gov/pubmed/20524107
http://dx.doi.org/10.1007/s10827-010-0238-3
_version_ 1782182048997310464
author Enciso, Germán A.
Rempe, Michael
Dmitriev, Andrey V.
Gavrikov, Konstantin E.
Terman, David
Mangel, Stuart C.
author_facet Enciso, Germán A.
Rempe, Michael
Dmitriev, Andrey V.
Gavrikov, Konstantin E.
Terman, David
Mangel, Stuart C.
author_sort Enciso, Germán A.
collection PubMed
description Displaced starburst amacrine cells (SACs) are retinal interneurons that exhibit GABA(A) receptor-mediated and Cl (−) cotransporter-mediated, directionally selective (DS) light responses in the rabbit retina. They depolarize to stimuli that move centrifugally through the receptive field surround and hyperpolarize to stimuli that move centripetally through the surround (Gavrikov et al, PNAS 100(26):16047–16052, 2003, PNAS 103(49):18793–18798, 2006). They also play a key role in the activity of DS ganglion cells (DS GC; Amthor et al, Vis Neurosci 19:495–509 2002; Euler et al, Nature 418:845–852, 2002; Fried et al, Nature 420:411– 414, 2002; Gavrikov et al, PNAS 100(26):16047–16052, 2003, PNAS 103(49):18793–18798, 2006; Lee and Zhou, Neuron 51:787–799 2006; Yoshida et al, Neuron 30:771–780, 2001). In this paper we present a model of strong DS behavior of SACs which relies on the GABA-mediated communication within a tightly interconnected network of these cells and on the glutamate signal that the SACs receive from bipolar cells (a presynaptic cell that receives input from cones). We describe how a moving light stimulus can produce a large, sustained depolarization of the SAC dendritic tips that point in the direction that the stimulus moves (i.e., centrifugal motion), but produce a minimal depolarization of the dendritic tips that point in the opposite direction (i.e., centripetal motion). This DS behavior, which is quantified based on the relative size and duration of the depolarizations evoked by stimulus motion at dendritic tips pointing in opposite directions, is robust to changes of many different parameter values and consistent with experimental data. In addition, the DS behavior is strengthened under the assumptions that the Cl(−) cotransporters Na( + )-K( + )-Cl( −) and K( + )-Cl( −) are located in different regions of the SAC dendritic tree (Gavrikov et al, PNAS 103(49):18793–18798, 2006) and that GABA evokes a long-lasting response (Gavrikov et al, PNAS 100(26):16047–16052, 2003, PNAS 103(49):18793–18798, 2006; Lee and Zhou, Neuron 51:787–799, 2006). A possible mechanism is discussed based on the generation of waves of local glutamate and GABA secretion, and their postsynaptic interplay as the waves travel between cell compartments.
format Text
id pubmed-2880707
institution National Center for Biotechnology Information
language English
publishDate 2010
publisher Springer US
record_format MEDLINE/PubMed
spelling pubmed-28807072010-06-10 A model of direction selectivity in the starburst amacrine cell network Enciso, Germán A. Rempe, Michael Dmitriev, Andrey V. Gavrikov, Konstantin E. Terman, David Mangel, Stuart C. J Comput Neurosci Article Displaced starburst amacrine cells (SACs) are retinal interneurons that exhibit GABA(A) receptor-mediated and Cl (−) cotransporter-mediated, directionally selective (DS) light responses in the rabbit retina. They depolarize to stimuli that move centrifugally through the receptive field surround and hyperpolarize to stimuli that move centripetally through the surround (Gavrikov et al, PNAS 100(26):16047–16052, 2003, PNAS 103(49):18793–18798, 2006). They also play a key role in the activity of DS ganglion cells (DS GC; Amthor et al, Vis Neurosci 19:495–509 2002; Euler et al, Nature 418:845–852, 2002; Fried et al, Nature 420:411– 414, 2002; Gavrikov et al, PNAS 100(26):16047–16052, 2003, PNAS 103(49):18793–18798, 2006; Lee and Zhou, Neuron 51:787–799 2006; Yoshida et al, Neuron 30:771–780, 2001). In this paper we present a model of strong DS behavior of SACs which relies on the GABA-mediated communication within a tightly interconnected network of these cells and on the glutamate signal that the SACs receive from bipolar cells (a presynaptic cell that receives input from cones). We describe how a moving light stimulus can produce a large, sustained depolarization of the SAC dendritic tips that point in the direction that the stimulus moves (i.e., centrifugal motion), but produce a minimal depolarization of the dendritic tips that point in the opposite direction (i.e., centripetal motion). This DS behavior, which is quantified based on the relative size and duration of the depolarizations evoked by stimulus motion at dendritic tips pointing in opposite directions, is robust to changes of many different parameter values and consistent with experimental data. In addition, the DS behavior is strengthened under the assumptions that the Cl(−) cotransporters Na( + )-K( + )-Cl( −) and K( + )-Cl( −) are located in different regions of the SAC dendritic tree (Gavrikov et al, PNAS 103(49):18793–18798, 2006) and that GABA evokes a long-lasting response (Gavrikov et al, PNAS 100(26):16047–16052, 2003, PNAS 103(49):18793–18798, 2006; Lee and Zhou, Neuron 51:787–799, 2006). A possible mechanism is discussed based on the generation of waves of local glutamate and GABA secretion, and their postsynaptic interplay as the waves travel between cell compartments. Springer US 2010-06-04 2010 /pmc/articles/PMC2880707/ /pubmed/20524107 http://dx.doi.org/10.1007/s10827-010-0238-3 Text en © The Author(s) 2010 https://creativecommons.org/licenses/by-nc/4.0/ Open Access  This article is distributed under the terms of the Creative Commons Attribution Noncommercial License which permits any noncommercial use, distribution, and reproduction in any medium, provided the original author(s) and source are credited.
spellingShingle Article
Enciso, Germán A.
Rempe, Michael
Dmitriev, Andrey V.
Gavrikov, Konstantin E.
Terman, David
Mangel, Stuart C.
A model of direction selectivity in the starburst amacrine cell network
title A model of direction selectivity in the starburst amacrine cell network
title_full A model of direction selectivity in the starburst amacrine cell network
title_fullStr A model of direction selectivity in the starburst amacrine cell network
title_full_unstemmed A model of direction selectivity in the starburst amacrine cell network
title_short A model of direction selectivity in the starburst amacrine cell network
title_sort model of direction selectivity in the starburst amacrine cell network
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2880707/
https://www.ncbi.nlm.nih.gov/pubmed/20524107
http://dx.doi.org/10.1007/s10827-010-0238-3
work_keys_str_mv AT encisogermana amodelofdirectionselectivityinthestarburstamacrinecellnetwork
AT rempemichael amodelofdirectionselectivityinthestarburstamacrinecellnetwork
AT dmitrievandreyv amodelofdirectionselectivityinthestarburstamacrinecellnetwork
AT gavrikovkonstantine amodelofdirectionselectivityinthestarburstamacrinecellnetwork
AT termandavid amodelofdirectionselectivityinthestarburstamacrinecellnetwork
AT mangelstuartc amodelofdirectionselectivityinthestarburstamacrinecellnetwork
AT encisogermana modelofdirectionselectivityinthestarburstamacrinecellnetwork
AT rempemichael modelofdirectionselectivityinthestarburstamacrinecellnetwork
AT dmitrievandreyv modelofdirectionselectivityinthestarburstamacrinecellnetwork
AT gavrikovkonstantine modelofdirectionselectivityinthestarburstamacrinecellnetwork
AT termandavid modelofdirectionselectivityinthestarburstamacrinecellnetwork
AT mangelstuartc modelofdirectionselectivityinthestarburstamacrinecellnetwork