Literature DB >> 24984227

Functional architecture of the retina: development and disease.

Mrinalini Hoon1, Haruhisa Okawa1, Luca Della Santina1, Rachel O L Wong2.   

Abstract

Structure and function are highly correlated in the vertebrate retina, a sensory tissue that is organized into cell layers with microcircuits working in parallel and together to encode visual information. All vertebrate retinas share a fundamental plan, comprising five major neuronal cell classes with cell body distributions and connectivity arranged in stereotypic patterns. Conserved features in retinal design have enabled detailed analysis and comparisons of structure, connectivity and function across species. Each species, however, can adopt structural and/or functional retinal specializations, implementing variations to the basic design in order to satisfy unique requirements in visual function. Recent advances in molecular tools, imaging and electrophysiological approaches have greatly facilitated identification of the cellular and molecular mechanisms that establish the fundamental organization of the retina and the specializations of its microcircuits during development. Here, we review advances in our understanding of how these mechanisms act to shape structure and function at the single cell level, to coordinate the assembly of cell populations, and to define their specific circuitry. We also highlight how structure is rearranged and function is disrupted in disease, and discuss current approaches to re-establish the intricate functional architecture of the retina.
Copyright © 2014 Elsevier Ltd. All rights reserved.

Keywords:  Mouse retina; Primate retina; Retinal cell mosaics; Retinal development; Retinal repair; Retinal synapses; Zebrafish retina

Mesh:

Year:  2014        PMID: 24984227      PMCID: PMC4134977          DOI: 10.1016/j.preteyeres.2014.06.003

Source DB:  PubMed          Journal:  Prog Retin Eye Res        ISSN: 1350-9462            Impact factor:   21.198


  470 in total

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4.  Extrinsic determinants of retinal ganglion cell development in primates.

Authors:  A G Leventhal; S J Ault; D J Vitek; T Shou
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5.  Two different visual pigments in one retinal cone cell.

Authors:  P Röhlich; T van Veen; A Szél
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9.  Photoreceptor differentiation of retinoblastoma: an electron microscopic study of 29 retinoblastomas.

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  139 in total

1.  Neurotransmission plays contrasting roles in the maturation of inhibitory synapses on axons and dendrites of retinal bipolar cells.

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4.  A method for single-neuron chronic recording from the retina in awake mice.

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6.  Development of cone photoreceptors and their synapses in the human and monkey fovea.

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7.  Cadherin Combinations Recruit Dendrites of Distinct Retinal Neurons to a Shared Interneuronal Scaffold.

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8.  Molecular dissection of cone photoreceptor-enriched genes encoding transmembrane and secretory proteins.

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Review 9.  RNA Biology in Retinal Development and Disease.

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