The chemotactic response of cells to graded fields of chemical cues is a complex process that requires the coordination of several intracellular activities. Fundamental steps to obtain a front vs. back differentiation in the cell are the localized distribution of internal molecules and the amplification of the external signal. The goal of this work is to develop a mathematical and computational model for the quantitative study of such phenomena in the context of axon chemotactic pathfinding in neural development. In order to perform turning decisions, axons develop front-back polarization in their distal structure, the growth cone. Starting from the recent experimental findings of the biased redistribution of receptors on the growth cone membrane, driven by the interaction with the cytoskeleton, we propose a model to investigate the significance of this process. Our main contribution is to quantitatively demonstrate that the autocatalytic loop involving receptors, cytoplasmic species and cytoskeleton is adequate to give rise to the chemotactic behavior of neural cells. We assess the fact that spatial bias in receptors is a precursory key event for chemotactic response, establishing the necessity of a tight link between upstream gradient sensing and downstream cytoskeleton dynamics. We analyze further crosslinked effects and, among others, the contribution to polarization of internal enzymatic reactions, which entail the production of molecules with a one-to-more factor. The model shows that the enzymatic efficiency of such reactions must overcome a threshold in order to give rise to a sufficient amplification, another fundamental precursory step for obtaining polarization. Eventually, we address the characteristic behavior of the attraction/repulsion of axons subjected to the same cue, providing a quantitative indicator of the parameters which more critically determine this nontrivial chemotactic response.

Autocatalytic loop, amplification and diffusion : a mathematical and computational model of cell polarization in neural chemotaxis / P. Causin, G. Facchetti. - In: PLOS COMPUTATIONAL BIOLOGY. - ISSN 1553-734X. - 5:8(2009), pp. e1000479.1-e1000479.16. [10.1371/journal.pcbi.1000479]

Autocatalytic loop, amplification and diffusion : a mathematical and computational model of cell polarization in neural chemotaxis

P. Causin
;
G. Facchetti
Ultimo
2009

Abstract

The chemotactic response of cells to graded fields of chemical cues is a complex process that requires the coordination of several intracellular activities. Fundamental steps to obtain a front vs. back differentiation in the cell are the localized distribution of internal molecules and the amplification of the external signal. The goal of this work is to develop a mathematical and computational model for the quantitative study of such phenomena in the context of axon chemotactic pathfinding in neural development. In order to perform turning decisions, axons develop front-back polarization in their distal structure, the growth cone. Starting from the recent experimental findings of the biased redistribution of receptors on the growth cone membrane, driven by the interaction with the cytoskeleton, we propose a model to investigate the significance of this process. Our main contribution is to quantitatively demonstrate that the autocatalytic loop involving receptors, cytoplasmic species and cytoskeleton is adequate to give rise to the chemotactic behavior of neural cells. We assess the fact that spatial bias in receptors is a precursory key event for chemotactic response, establishing the necessity of a tight link between upstream gradient sensing and downstream cytoskeleton dynamics. We analyze further crosslinked effects and, among others, the contribution to polarization of internal enzymatic reactions, which entail the production of molecules with a one-to-more factor. The model shows that the enzymatic efficiency of such reactions must overcome a threshold in order to give rise to a sufficient amplification, another fundamental precursory step for obtaining polarization. Eventually, we address the characteristic behavior of the attraction/repulsion of axons subjected to the same cue, providing a quantitative indicator of the parameters which more critically determine this nontrivial chemotactic response.
No
English
animals; cell polarity; computational biology; cytoskeleton; diffusion; feedback; humans; models, biological; models, theoretical; neurons; signal transduction; software; catalysis; chemotaxis; cellular and molecular neuroscience; ecology; molecular biology; genetics; ecology, evolution, behavior and systematics; modeling and simulation; computational theory and mathematics
Settore MAT/08 - Analisi Numerica
Articolo
Esperti anonimi
Pubblicazione scientifica
2009
Public library of science
5
8
e1000479
1
16
16
Pubblicato
Periodico con rilevanza internazionale
scopus
crossref
pubmed
NON aderisco
info:eu-repo/semantics/article
Autocatalytic loop, amplification and diffusion : a mathematical and computational model of cell polarization in neural chemotaxis / P. Causin, G. Facchetti. - In: PLOS COMPUTATIONAL BIOLOGY. - ISSN 1553-734X. - 5:8(2009), pp. e1000479.1-e1000479.16. [10.1371/journal.pcbi.1000479]
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262
Article (author)
Periodico con Impact Factor
P. Causin, G. Facchetti
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/290437
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