Literature DB >> 11503151

Shape diversity among chick retina Müller cells and their postnatal differentiation.

L Anezary1, J I Medina, J Sánchez-Nogueiro, M López-Gallardo, C Prada.   

Abstract

It is currently believed that in each vertebrate species Müller cells in the central retina constitutes a fairly homogeneous population from the morphologic point of view and that particularly the chick Müller cell attains full shape differentiation at prenatal stages. However, in this study of the chick retina, from day 1 to day 55 of life, we show that there is a large variety of Müller cell shapes and that many of them complete shape differentiation postnatally. We used a cell dissociation method that preserves the whole shape of the Müller cells. Unstained living and unstained fixed cells were studied by phase-contrast microscopy, and fixed cells immunostained for intermediate filaments of the cytoskeleton were studied by fluorescence microscopy. Our results show that (1) Müller cell shapes vary in the origination of the hair of vitread processes, in the shape of the ventricular (outer or apical) process, in the presence or absence of an accessory process, as well as in the number and shape of processes leaving from the ventricular process at the level of the outer nuclear and outer plexiform layers (ONL/OPL); (2) during the first month of life, many Müller cells differentiate the portion of the ventricular process that traverses the ONL, most Müller cells differentiate the ONL/OPL processes, and all Müller cells differentiate the thin short lateral processes leaving from the vitread hair processes at the level of the inner plexiform layer (IPL). The number of cells differing in the shape of the ventricular process and that of cells with and without accessory process were estimated. The spatial relationship between the outer portion of the ventricular process of the Müller cell and the photoreceptor cells was also studied. Our results show that the branching of the ventricular process and the refinement of Müller cell shape is achieved without apparent participation of growth cones. We give a schematic view of how the branching of the ventricular process might take place and propose the size increase of photoreceptor soma as a factor responsible for this branching. Copyright 2001 Wiley-Liss, Inc.

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Year:  2001        PMID: 11503151     DOI: 10.1002/cne.1300

Source DB:  PubMed          Journal:  J Comp Neurol        ISSN: 0021-9967            Impact factor:   3.215


  9 in total

1.  Notch signaling influences neuroprotective and proliferative properties of mature Müller glia.

Authors:  Kanika Ghai; Christopher Zelinka; Andy J Fischer
Journal:  J Neurosci       Date:  2010-02-24       Impact factor: 6.167

2.  Glucocorticoid receptors in the retina, Müller glia and the formation of Müller glia-derived progenitors.

Authors:  Donika Gallina; Christopher Zelinka; Andy J Fischer
Journal:  Development       Date:  2014-08-01       Impact factor: 6.868

Review 3.  Müller Cell Metabolic Signatures: Evolutionary Conservation and Disruption in Disease.

Authors:  Rebecca L Pfeiffer; Robert E Marc; Bryan W Jones
Journal:  Trends Endocrinol Metab       Date:  2020-02-24       Impact factor: 12.015

4.  Mitogen-activated protein kinase-signaling regulates the ability of Müller glia to proliferate and protect retinal neurons against excitotoxicity.

Authors:  Andy J Fischer; Melissa A Scott; Eric R Ritchey; Patrick Sherwood
Journal:  Glia       Date:  2009-11-01       Impact factor: 7.452

5.  A role for aquaporin-4 during induction of form deprivation myopia in chick.

Authors:  Melinda J Goodyear; Barbara M Junghans; Loretta Giummarra; Melanie J Murphy; David P Crewther; Sheila G Crewther
Journal:  Mol Vis       Date:  2008-02-08       Impact factor: 2.367

6.  The transcriptome of retinal Müller glial cells.

Authors:  Karin Roesch; Ashutosh P Jadhav; Jeffrey M Trimarchi; Michael B Stadler; Botond Roska; Ben B Sun; Constance L Cepko
Journal:  J Comp Neurol       Date:  2008-07-10       Impact factor: 3.215

7.  Isolation of chick retina cones and study of their diversity based on oil droplet colour and nucleus position.

Authors:  R López-López; M López-Gallardo; M J Pérez-Alvarez; C Prada
Journal:  Cell Tissue Res       Date:  2008-02-12       Impact factor: 5.249

8.  Analysis of retinal cell development in chick embryo by immunohistochemistry and in ovo electroporation techniques.

Authors:  Sung Tae Doh; Hailing Hao; Stephanie C Loh; Tapan Patel; Haim Y Tawil; David K Chen; Anna Pashkova; Andy Shen; Huimin Wang; Li Cai
Journal:  BMC Dev Biol       Date:  2010-01-20       Impact factor: 1.978

9.  Single-cell transcriptomic atlas of the human retina identifies cell types associated with age-related macular degeneration.

Authors:  Madhvi Menon; Shahin Mohammadi; Jose Davila-Velderrain; Brittany A Goods; Tanina D Cadwell; Yu Xing; Anat Stemmer-Rachamimov; Alex K Shalek; John Christopher Love; Manolis Kellis; Brian P Hafler
Journal:  Nat Commun       Date:  2019-10-25       Impact factor: 14.919

  9 in total

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