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Visual Space is Represented by Nonmatching Topographies of Distinct Mouse Retinal Ganglion Cell Types

Overview
Journal Curr Biol
Publisher Cell Press
Specialty Biology
Date 2014 Jan 21
PMID 24440397
Citations 153
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Abstract

The distributions of neurons in sensory circuits display ordered spatial patterns arranged to enhance or encode specific regions or features of the external environment. Indeed, visual space is not sampled uniformly across the vertebrate retina. Retinal ganglion cell (RGC) density increases and dendritic arbor size decreases toward retinal locations with higher sampling frequency, such as the fovea in primates and area centralis in carnivores [1]. In these locations, higher acuity at the level of individual cells is obtained because the receptive field center of a RGC corresponds approximately to the spatial extent of its dendritic arbor [2, 3]. For most species, structurally and functionally distinct RGC types appear to have similar topographies, collectively scaling their cell densities and arbor sizes toward the same retinal location [4]. Thus, visual space is represented across the retina in parallel by multiple distinct circuits [5]. In contrast, we find a population of mouse RGCs, known as alpha or alpha-like [6], that displays a nasal-to-temporal gradient in cell density, size, and receptive fields, which facilitates enhanced visual sampling in frontal visual fields. The distribution of alpha-like RGCs contrasts with other known mouse RGC types and suggests that, unlike most mammals, RGC topographies in mice are arranged to sample space differentially.

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References
1.
Kay J, Chu M, Sanes J . MEGF10 and MEGF11 mediate homotypic interactions required for mosaic spacing of retinal neurons. Nature. 2012; 483(7390):465-9. PMC: 3310952. DOI: 10.1038/nature10877. View

2.
Zhang Y, Kim I, Sanes J, Meister M . The most numerous ganglion cell type of the mouse retina is a selective feature detector. Proc Natl Acad Sci U S A. 2012; 109(36):E2391-8. PMC: 3437843. DOI: 10.1073/pnas.1211547109. View

3.
Wassle H, BOYCOTT B . Functional architecture of the mammalian retina. Physiol Rev. 1991; 71(2):447-80. DOI: 10.1152/physrev.1991.71.2.447. View

4.
Peichl L, Ott H, BOYCOTT B . Alpha ganglion cells in mammalian retinae. Proc R Soc Lond B Biol Sci. 1987; 231(1263):169-97. DOI: 10.1098/rspb.1987.0040. View

5.
Kirby M, Chalupa L . Retinal crowding alters the morphology of alpha ganglion cells. J Comp Neurol. 1986; 251(4):532-41. DOI: 10.1002/cne.902510408. View