The digital bee brain: integrating and managing neurons in a common 3D reference system

被引:70
|
作者
Rybak, Juergen [1 ,2 ]
Kuss, Anja [3 ]
Lamecker, Hans [3 ]
Zachow, Stefan [3 ]
Hege, Hans-Christian [3 ]
Lienhard, Matthias [4 ]
Singer, Jochen [1 ]
Neubert, Kerstin [4 ]
Menzel, Randolf [1 ]
机构
[1] Free Univ Berlin, Inst Biol Neurobiol, Berlin, Germany
[2] Max Planck Inst Chem Ecol, Jena, Germany
[3] Zuse Inst Berlin, Berlin, Germany
[4] Max Planck Inst Mol Genet, Berlin, Germany
来源
关键词
confocal microscopy; neuron reconstruction; image registration; brain atlas; statistical shape model; neural networks; ontology; Apis mellifera;
D O I
10.3389/fnsys.2010.00030
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The honeybee standard brain (HSB) serves as an interactive tool for relating morphologies of bee brain neurons and provides a reference system for functional and bibliographical properties (http://www.neurobiologie.fu-berlin.de/beebrain/). The ultimate goal is to document not only the morphological network properties of neurons collected from separate brains, but also to establish a graphical user interface for a neuron-related data base. Here, we review the current methods and protocols used to incorporate neuronal reconstructions into the HSB. Our registration protocol consists of two separate steps applied to imaging data from two-channel confocal microscopy scans: (1) The reconstruction of the neuron, facilitated by an automatic extraction of the neuron's skeleton based on threshold segmentation, and (2) the semi-automatic 3D segmentation of the neuropils and their registration with the HSB. The integration of neurons in the HSB is performed by applying the transformation computed in step (2) to the reconstructed neurons of step (1). The most critical issue of this protocol in terms of user interaction time the segmentation process - is drastically improved by the use of a model-based segmentation process. Furthermore, the underlying statistical shape models (SSM) allow the visualization and analysis of characteristic variations in large sets of bee brain data. The anatomy of neural networks composed of multiple neurons that are registered into the HSB are visualized by depicting the 3D reconstructions together with semantic information with the objective to integrate data from multiple sources (electrophysiology, imaging, immunocytochemistry, molecular biology). Ultimately, this will allow the user to specify cell types and retrieve their morphologies along with physiological characterizations.
引用
收藏
页数:15
相关论文
共 50 条
  • [1] The Allen Mouse Brain Common Coordinate Framework: A 3D Reference Atlas
    Wang, Quanxin
    Ding, Song-Lin
    Li, Yang
    Royall, Josh
    Feng, David
    Lesnar, Phil
    Graddis, Nile
    Naeemi, Maitham
    Facer, Benjamin
    Ho, Anh
    Dolbeare, Tim
    Blanchard, Brandon
    Dee, Nick
    Wakeman, Wayne
    Hirokawa, Karla E.
    Szafer, Aaron
    Sunkin, Susan M.
    Oh, Seung Wook
    Bernard, Amy
    Phillips, John W.
    Hawrylycz, Michael
    Koch, Christof
    Zeng, Hongkui
    Harris, Julie A.
    Ng, Lydia
    CELL, 2020, 181 (04) : 936 - +
  • [2] The mouse reference brain in 3D
    Vogt, Nina
    NATURE METHODS, 2020, 17 (07) : 655 - 655
  • [3] The mouse reference brain in 3D
    Nina Vogt
    Nature Methods, 2020, 17 : 655 - 655
  • [4] A digital reference object for the 3D Hoffman brain phantom for characterization of PET neuroimaging quality
    Harrison, Robert L.
    Elston, Brian F.
    Byrd, Darrin W.
    Alessio, Adam M.
    Jacobs, Joshua
    Rockne, Russell C.
    Hawkins-Daarud, Andrea
    Muzi, Mark
    Johnston, Sandra K.
    Jackson, Pamela R.
    Swanson, Kristin R.
    Kinahan, Paul E.
    2013 IEEE NUCLEAR SCIENCE SYMPOSIUM AND MEDICAL IMAGING CONFERENCE (NSS/MIC), 2013,
  • [5] The Brain/MINDS 3D digital marmoset brain atlas
    Alexander Woodward
    Tsutomu Hashikawa
    Masahide Maeda
    Takaaki Kaneko
    Keigo Hikishima
    Atsushi Iriki
    Hideyuki Okano
    Yoko Yamaguchi
    Scientific Data, 5
  • [6] The Brain/MINDS 3D digital marmoset brain atlas
    Woodward, Alexander
    Hashikawa, Tsutomu
    Maeda, Masahide
    Kaneko, Takaaki
    Hikishima, Keigo
    Iriki, Atsushi
    Okano, Hideyuki
    Yamaguchi, Yoko
    SCIENTIFIC DATA, 2018, 5
  • [7] Common Atlas Format and 3D Brain Atlas Reconstructor: Infrastructure for Constructing 3D Brain Atlases
    Majka, Piotr
    Kublik, Ewa
    Furga, Grzegorz
    Wojcik, Daniel Krzysztof
    NEUROINFORMATICS, 2012, 10 (02) : 181 - 197
  • [8] Common Atlas Format and 3D Brain Atlas Reconstructor: Infrastructure for Constructing 3D Brain Atlases
    Piotr Majka
    Ewa Kublik
    Grzegorz Furga
    Daniel Krzysztof Wójcik
    Neuroinformatics, 2012, 10 : 181 - 197
  • [9] A 3D DIGITAL MAP OF RAT-BRAIN
    TOGA, AW
    SANTORI, EM
    HAZANI, R
    AMBACH, K
    BRAIN RESEARCH BULLETIN, 1995, 38 (01) : 77 - 85
  • [10] Integrating multiple 3D views through frame-of-reference interaction
    Plumlee, M
    Ware, C
    INTERNATIONAL CONFERENCE ON COORDINATED AND MULTIPLE VIEWS IN EXPLORATORY VISUALIZATION, PROCEEDINGS, 2003, : 34 - 43