Three-dimensional tracking and analysis of ion channel signals across dendritic arbors

被引:7
|
作者
Ginger, Melanie [1 ,2 ]
Broser, Philip [3 ]
Frick, Andreas [1 ,2 ]
机构
[1] INSERM, U862, NeuroCtr Magendie, Bordeaux, France
[2] Univ Bordeaux, INSERM, U862, F-33076 Bordeaux, France
[3] Univ Tubingen Childrens Hosp, Dept Paediat Neurol & Dev Med, Tubingen, Germany
来源
关键词
dendrites; ion channels; reconstruction; morphology; confocal microscopy; quantitative approaches; fluorescence intensity profiles; K+ CHANNEL; SYNAPTIC INTEGRATION; CALCIUM-CHANNELS; GENE-EXPRESSION; HIPPOCAMPAL; CA(V)1.2; KV2.1; LOCALIZATION; TRAFFICKING; RECOMBINANT;
D O I
10.3389/fncir.2013.00061
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Most neuron types possess elaborate dendritic arbors that receive and integrate excitatory and inhibitory inputs from numerous other neurons to give rise to cell-type specific firing patterns. The computational properties of these dendrites are therefore crucial for neuronal information processing, and are strongly determined by the expression of many types of voltage gated ion channels in their membrane. The dendritic distribution patterns of these ion channels are characteristic for each ion channel type, are dependent on the neuronal identity, and can be modified in a plastic or pathophysiological manner. We present a method that enables us to semi-automatically map and quantify in 3D the expression levels of specific ion channel types across the entire dendritic arbor. To achieve this, standard immunohistochemistry was combined with reconstruction and quantification procedures for the localization and relative distribution of ion channels with respect to dendritic morphology. This method can, in principle, be applied to any fluorescent signal, including fluorescently tagged membrane proteins, RNAs, or intracellular signaling molecules.
引用
收藏
页数:15
相关论文
共 50 条
  • [31] Dendritic fibroblasts in three-dimensional collagen matrices
    Grinnell, F
    Ho, CH
    Tamariz, E
    Lee, DJ
    Skuta, G
    [J]. MOLECULAR BIOLOGY OF THE CELL, 2003, 14 (02) : 384 - 395
  • [32] Numerical simulation of three-dimensional dendritic growth
    Karma, A
    Rappel, WJ
    [J]. PHYSICAL REVIEW LETTERS, 1996, 77 (19) : 4050 - 4053
  • [33] A Parallel Finite Element Simulator for Ion Transport through Three-Dimensional Ion Channel Systems
    Tu, Bin
    Chen, Minxin
    Xie, Yan
    Zhang, Linbo
    Eisenberg, Bob
    Lu, Benzhuo
    [J]. JOURNAL OF COMPUTATIONAL CHEMISTRY, 2013, 34 (24) : 2065 - 2078
  • [34] Three-dimensional particle tracking in microfluidic channel flow using in and out of focus diffraction
    Tasadduq, Bushra
    Wang, Gonghao
    El Banani, Mohamed
    Mao, Wenbin
    Lam, Wilbur
    Alexeev, Alexander
    Sulchek, Todd
    [J]. FLOW MEASUREMENT AND INSTRUMENTATION, 2015, 45 : 218 - 224
  • [35] Three-dimensional flow in a porous channel
    Taylor, C.L.
    Banks, W.H.H.
    Zaturska, M.B.
    Drazin, P.G.
    [J]. Quarterly Journal of Mechanics and Applied Mathematics, 1991, 44 (pt 1): : 105 - 133
  • [36] Three-dimensional disturbances in channel flows
    Malik, Satish V.
    Hooper, Alison P.
    [J]. PHYSICS OF FLUIDS, 2007, 19 (05)
  • [37] Detonation in a Three-Dimensional Elbowed Channel
    I. S. Manuylovich
    [J]. Doklady Physics, 2018, 63 : 121 - 124
  • [38] Detonation in a Three-Dimensional Elbowed Channel
    Manuylovich, I. S.
    [J]. DOKLADY PHYSICS, 2018, 63 (03) : 121 - 124
  • [39] Fracture mechanics analysis of three-dimensional ion cut technology
    Feng, Xi-Qiao
    Xu, Mei
    Wang, Xuyue
    Gu, Bin
    [J]. JOURNAL OF MECHANICS OF MATERIALS AND STRUCTURES, 2007, 2 (09) : 1831 - 1852
  • [40] Three-dimensional ion mobility TOFMS analysis of electrosprayed biomolecules
    Hoaglund, CS
    Valentine, SJ
    Sporleder, CR
    Reilly, JP
    Clemmer, DE
    [J]. ANALYTICAL CHEMISTRY, 1998, 70 (11) : 2236 - 2242