Literature DB >> 7743207

Mathematical modeling of dendritic growth in vitro.

E Uemura1, A Carriquiry, W Kliemann, J Goodwin.   

Abstract

The dendritic branching pattern of cultured hippocampal neurons was analyzed to obtain mathematical parameters that fit the time-dependent growth of dendrites under limited extrinsic influence. Cultured neurons were stained with a non-toxic carbocyanine dye (diO) and pyramidal-shaped neurons that were physically separated from one another were analyzed at post-plating days 1, 2, 3, 4, 6 and 7. The geometric branching pattern of the dendrites was analyzed using a mathematical model that incorporates random effects in the form of a Galton-Watson branching process where splitting of one branch is statistically independent of the splitting of all other branches, and deterministic effects in the form of a parameter that measures the extent to which dense patterns (clusters) or sparse patterns (elongated trees) are formed. The geometric branching pattern of the dendrites was analyzed using a mathematical model that incorporates random and deterministic effects. The model parameters were estimated via the method of maximum likelihood. The data suggest that in vitro basal dendrites grow according to a purely random branching process without pronounced dense or sparse patterns, while apical dendrites tend to form elongated trees with fewer secondary bifurcations. This trend is quantified, and it depends on the culture conditions in which the neurons are grown. The quantitative assessment of various influences on dendritic growth patterns are discussed.

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Year:  1995        PMID: 7743207     DOI: 10.1016/0006-8993(94)01310-e

Source DB:  PubMed          Journal:  Brain Res        ISSN: 0006-8993            Impact factor:   3.252


  9 in total

1.  Local diameter fully constrains dendritic size in basal but not apical trees of CA1 pyramidal neurons.

Authors:  Duncan E Donohue; Giorgio A Ascoli
Journal:  J Comput Neurosci       Date:  2005-10       Impact factor: 1.621

2.  Mathematical foundations of the dendritic growth models.

Authors:  José A Villacorta; Jorge Castro; Pilar Negredo; Carlos Avendaño
Journal:  J Math Biol       Date:  2007-07-24       Impact factor: 2.259

3.  Morphological determinants of dendritic arborization neurons in Drosophila larva.

Authors:  Sumit Nanda; Ravi Das; Shatabdi Bhattacharjee; Daniel N Cox; Giorgio A Ascoli
Journal:  Brain Struct Funct       Date:  2017-11-01       Impact factor: 3.270

4.  The dendritic trees of neurons from the hippocampal formation of protein-deprived adult rats. A quantitative Golgi study.

Authors:  J P Andrade; A J Castanheira-Vale; P G Paz-Dias; M D Madeira; M M Paula-Barbosa
Journal:  Exp Brain Res       Date:  1996-06       Impact factor: 1.972

Review 5.  Quantifying neuronal size: summing up trees and splitting the branch difference.

Authors:  Kerry M Brown; Todd A Gillette; Giorgio A Ascoli
Journal:  Semin Cell Dev Biol       Date:  2008-08-14       Impact factor: 7.727

6.  A generative growth model for thalamocortical axonal branching in primary visual cortex.

Authors:  Pegah Kassraian-Fard; Michael Pfeiffer; Roman Bauer
Journal:  PLoS Comput Biol       Date:  2020-02-13       Impact factor: 4.475

Review 7.  Mathematical models of neuronal growth.

Authors:  Hadrien Oliveri; Alain Goriely
Journal:  Biomech Model Mechanobiol       Date:  2022-01-07

8.  A comparative computer simulation of dendritic morphology.

Authors:  Duncan E Donohue; Giorgio A Ascoli
Journal:  PLoS Comput Biol       Date:  2008-06-06       Impact factor: 4.475

9.  Beneficial effect of Boswellia serrata gum resin on spatial learning and the dendritic tree of dentate gyrus granule cells in aged rats.

Authors:  Mohammad Hosseini-Sharifabad; Razieh Kamali-Ardakani; Ali Hosseini-Sharifabad
Journal:  Avicenna J Phytomed       Date:  2016 Mar-Apr
  9 in total

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