Inhibitory neuron migration and IPL formation in the developing zebrafish retina

被引:27
|
作者
Chow, Renee W. [1 ]
Almeida, Alexandra D. [1 ]
Randlett, Owen [1 ]
Norden, Caren [2 ]
Harris, William A. [1 ]
机构
[1] Univ Cambridge, Dept Physiol Dev & Neurosci, Cambridge CB2 3DY, England
[2] MPI Mol Cell Biol & Genet, D-01307 Dresden, Germany
来源
DEVELOPMENT | 2015年 / 142卷 / 15期
基金
英国惠康基金;
关键词
Amacrine cells; Displaced amacrine cells; Horizontal cells; Inner plexiform layer; Neuronal migration; GANGLION-CELLS; IN-VIVO; HORIZONTAL CELLS; AMACRINE CELLS; MOUSE RETINA; HOMOTYPIC INTERACTIONS; TANGENTIAL DISPERSION; EMBRYONIC-DEVELOPMENT; SYNAPTIC LAMINAE; CHICK RETINA;
D O I
10.1242/dev.122473
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The mature vertebrate retina is a highly ordered neuronal network of cell bodies and synaptic neuropils arranged in distinct layers. Little, however, is known about the emergence of this spatial arrangement. Here, we investigate how the three main types of retinal inhibitory neuron (RIN) - horizontal cells (HCs), inner nuclear layer amacrine cells (iACs) and displaced amacrine cells (dACs) - reach their specific laminar positions during development. Using in vivo time-lapse imaging of zebrafish retinas, we show that RINs undergo distinct phases of migration. The first phase, common to all RINs, is bipolar migration directed towards the apicobasal centre of the retina. All RINs then transition to a less directionally persistent multipolar phase of migration. Finally, HCs, iACs and dACs each undergo cell type-specific migration. In contrast to current hypotheses, we find that most dACs send processes into the forming inner plexiform layer (IPL) before migrating through it and inverting their polarity. By imaging and quantifying the dynamics of HCs, iACs and dACs from birth to final position, this study thus provides evidence for distinct and new migration patterns during retinal lamination and insights into the initiation of IPL formation.
引用
收藏
页码:2665 / U253
页数:26
相关论文
共 50 条
  • [31] Neuron-glia signaling in developing retina mediated by neurotransmitter spillover
    Rosa, Juliana M.
    Bos, Remi
    Sack, Georgeann S.
    Fortuny, Cecile
    Agarwal, Amit
    Bergles, Dwight E.
    Flannery, John G.
    Feller, Marla B.
    ELIFE, 2015, 4 : 1 - 20
  • [32] The mechanism of pattern formation in the developing drosophila retina
    QiCheng Sun
    Science in China Series C: Life Sciences, 2007, 50 : 120 - 124
  • [33] THE FORMATION OF ACETYLCHOLINE IN THE DEVELOPING RETINA OF THE CHICK EMBRYO
    LINDEMAN, VF
    FEDERATION PROCEEDINGS, 1947, 6 (01) : 153 - 154
  • [34] The mechanism of pattern formation in the developing drosophila retina
    Sun QiCheng
    SCIENCE IN CHINA SERIES C-LIFE SCIENCES, 2007, 50 (01): : 120 - 124
  • [35] The mechanism of pattern formation in the developing drosophila retina
    SUN QiCheng Institute of Process Engineering
    Science in China(Series C:Life Sciences), 2007, (01) : 120 - 124
  • [36] Expression patterns of dscam and sdk gene paralogs in developing zebrafish retina
    Galicia, Carlos A.
    Sukeena, Joshua M.
    Stenkamp, Deborah L.
    Fuerst, Peter G.
    MOLECULAR VISION, 2018, 24 : 443 - 458
  • [37] Misexpression of neuroD in the developing zebrafish retina: Effect on proliferation and photoreceptor genesis
    Ochocinska, Malgorzata J.
    Hitchcock, Peter F.
    DEVELOPMENTAL BIOLOGY, 2006, 295 (01) : 406 - 406
  • [38] Pronephric tubule formation in zebrafish: morphogenesis and migration
    Richard W. Naylor
    Alan J. Davidson
    Pediatric Nephrology, 2017, 32 : 211 - 216
  • [39] Pronephric tubule formation in zebrafish: morphogenesis and migration
    Naylor, Richard W.
    Davidson, Alan J.
    PEDIATRIC NEPHROLOGY, 2017, 32 (02) : 211 - 216
  • [40] Microglia Colonization of Developing Zebrafish Midbrain Is Promoted by Apoptotic Neuron and Lysophosphatidylcholine
    Xu, Jin
    Wang, Tienan
    Wu, Yi
    Jin, Wan
    Wen, Zilong
    DEVELOPMENTAL CELL, 2016, 38 (02) : 214 - 222