AII amacrine cells: quantitative reconstruction and morphometric analysis of electrophysiologically identified cells in live rat retinal slices imaged with multi-photon excitation microscopy

被引:23
作者
Zandt, Bas-Jan [1 ]
Liu, Jian Hao [1 ]
Veruki, Margaret Lin [1 ]
Hartveit, Espen [1 ]
机构
[1] Univ Bergen, Dept Biomed, Jonas Lies Vei 91, N-5009 Bergen, Norway
关键词
Retina; Rod pathway; Dendrites; Morphology; Morphometry; Branching pattern; INNER PLEXIFORM LAYER; PASSIVE MEMBRANE-PROPERTIES; ELECTRICAL SYNAPSES; ROD PATHWAY; RABBIT RETINA; BIPOLAR CELLS; NARROW-FIELD; NEURONS; CAT; RECEPTORS;
D O I
10.1007/s00429-016-1206-0
中图分类号
R602 [外科病理学、解剖学]; R32 [人体形态学];
学科分类号
100101 ;
摘要
AII amacrine cells have been found in all mammalian retinas examined and play an important role for visual processing under both scotopic and photopic conditions. Whereas ultrastructural investigations have provided a detailed understanding of synaptic connectivity, there is little information available with respect to quantitative properties and variation of cellular morphology. Here, we performed whole-cell recordings from AII amacrine cells in rat retinal slices and filled the cells with fluorescent dyes. Multi-photon excitation microscopy was used to acquire image stacks and after deconvolution, we performed quantitative morphological reconstruction by computer-aided manual tracing. We reconstructed and performed morphometric analysis on 43 AII amacrine cells, with a focus on branching pattern, dendritic lengths and diameters, surface area, and number and distribution of dendritic varicosities. Compared to previous descriptions, the most surprising result was the considerable extent of branching, with the maximum branch order ranging from approximately 10-40. We found that AII amacrine cells conform to a recently described general structural design principle for neural arbors, where arbor density decreases proportionally to increasing territory size. We confirmed and quantified the bi-stratified morphology of AII amacrine cells by analyzing the arborizations as a function of retinal localization or with Sholl spheres. Principal component and cluster analysis revealed no evidence for morphological subtypes of AII amacrines. These results establish a database of morphometric properties important for studies of development, regeneration, degeneration, and disease processes, as well as a workflow compatible with compartmental modeling.
引用
收藏
页码:151 / 182
页数:32
相关论文
共 88 条
  • [1] [Anonymous], 1911, MALOINE PARIS
  • [2] [Anonymous], 2006, Handbook of Biological Confocal Microscopy
  • [3] NeuroMorpho.Org: A central resource for neuronal morphologies
    Ascoli, Giorgio A.
    Donohue, Duncan E.
    Halavi, Maryam
    [J]. JOURNAL OF NEUROSCIENCE, 2007, 27 (35) : 9247 - 9251
  • [4] Bootstrap based confidence limits in principal component analysis - A case study
    Babamoradi, Hamid
    van den Berg, Frans
    Rinnan, Asmund
    [J]. CHEMOMETRICS AND INTELLIGENT LABORATORY SYSTEMS, 2013, 120 : 97 - 105
  • [5] Synaptic Vesicle Exocytosis at the Dendritic Lobules of an Inhibitory Interneuron in the Mammalian Retina
    Balakrishnan, Veeramuthu
    Puthussery, Theresa
    Kim, Mean-Hwan
    Taylor, W. Rowland
    von Gersdorff, Henrique
    [J]. NEURON, 2015, 87 (03) : 563 - 575
  • [6] Bestman J, 2008, DENDRITES, P69
  • [7] A comparison of manual neuronal reconstruction from biocytin histology or 2-photon imaging: morphometry and computer modeling
    Blackman, Arne V.
    Grabuschnig, Stefan
    Legenstein, Robert
    Sjoestroem, P. Jesper
    [J]. FRONTIERS IN NEUROANATOMY, 2014, 8
  • [8] BOOS R, 1993, J NEUROSCI, V13, P2874
  • [9] ORGANIZATION OF PRIMATE RETINA - LIGHT MICROSCOPY - A SECOND TYPE OF MIDGET BIPOLAR CELL IN PRIMATE RETINA
    BOYCOTT, BB
    DOWLING, JE
    KOLB, H
    [J]. PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY OF LONDON SERIES B-BIOLOGICAL SCIENCES, 1969, 255 (799) : 109 - &
  • [10] Digital Morphometry of Rat Cerebellar Climbing Fibers Reveals Distinct Branch and Bouton Types
    Brown, Kerry M.
    Sugihara, Izumi
    Shinoda, Yoshikazu
    Ascoli, Giorgio A.
    [J]. JOURNAL OF NEUROSCIENCE, 2012, 32 (42) : 14670 - 14684