Literature DB >> 23765606

Versatile morphometric analysis and visualization of the three-dimensional structure of neurons.

Paulo Aguiar1, Mafalda Sousa, Peter Szucs.   

Abstract

The computational properties of a neuron are intimately related to its morphology. However, unlike electrophysiological properties, it is not straightforward to collapse the complexity of the three-dimensional (3D) structure into a small set of measurements accurately describing the structural properties. This strong limitation leads to the fact that many studies involving morphology related questions often rely solely on empirical analysis and qualitative description. It is possible however to acquire hierarchical lists of positions and diameters of points describing the spatial structure of the neuron. While there is a number of both commercially and freely available solutions to import and analyze this data, few are extendable in the sense of providing the possibility to define novel morphometric measurements in an easy to use programming environment. Fewer are capable of performing morphometric analysis where the output is defined over the topology of the neuron, which naturally requires powerful visualization tools. The computer application presented here, Py3DN, is an open-source solution providing novel tools to analyze and visualize 3D data collected with the widely used Neurolucida (MBF) system. It allows the construction of mathematical representations of neuronal topology, detailed visualization and the possibility to define non-standard morphometric analysis on the neuronal structures. Above all, it provides a flexible and extendable environment where new types of analyses can be easily set up allowing a high degree of freedom to formulate and test new hypotheses. The application was developed in Python and uses Blender (open-source software) to produce detailed 3D data representations.

Mesh:

Year:  2013        PMID: 23765606     DOI: 10.1007/s12021-013-9188-z

Source DB:  PubMed          Journal:  Neuroinformatics        ISSN: 1539-2791


  20 in total

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Authors:  W Rall
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8.  Neocortical axon arbors trade-off material and conduction delay conservation.

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9.  Potential Synaptic Connectivity of Different Neurons onto Pyramidal Cells in a 3D Reconstruction of the Rat Hippocampus.

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10.  Axon diversity of lamina I local-circuit neurons in the lumbar spinal cord.

Authors:  Peter Szucs; Liliana L Luz; Raquel Pinho; Paulo Aguiar; Zsófia Antal; Sheena Y X Tiong; Andrew J Todd; Boris V Safronov
Journal:  J Comp Neurol       Date:  2013-08-15       Impact factor: 3.215

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  10 in total

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Review 5.  Integration of multiscale dendritic spine structure and function data into systems biology models.

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6.  NeuroTessMesh: A Tool for the Generation and Visualization of Neuron Meshes and Adaptive On-the-Fly Refinement.

Authors:  Juan J Garcia-Cantero; Juan P Brito; Susana Mata; Sofia Bayona; Luis Pastor
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7.  NeuroMorph: a toolset for the morphometric analysis and visualization of 3D models derived from electron microscopy image stacks.

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8.  Parametric Anatomical Modeling: a method for modeling the anatomical layout of neurons and their projections.

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9.  Novel 3D light microscopic analysis of IUGR placentas points to a morphological correlate of compensated ischemic placental disease in humans.

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  10 in total

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