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Generation of Diverse Biological Forms through Combinatorial Interactions between Tissue Polarity and Growth

A major problem in biology is to understand how complex tissue shapes may arise through growth. In many cases this process involves preferential growth along particular orientations raising the question of how these orientations are specified. One view is that orientations are specified through stre...

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Autores principales: Kennaway, Richard, Coen, Enrico, Green, Amelia, Bangham, Andrew
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3116900/
https://www.ncbi.nlm.nih.gov/pubmed/21698124
http://dx.doi.org/10.1371/journal.pcbi.1002071
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author Kennaway, Richard
Coen, Enrico
Green, Amelia
Bangham, Andrew
author_facet Kennaway, Richard
Coen, Enrico
Green, Amelia
Bangham, Andrew
author_sort Kennaway, Richard
collection PubMed
description A major problem in biology is to understand how complex tissue shapes may arise through growth. In many cases this process involves preferential growth along particular orientations raising the question of how these orientations are specified. One view is that orientations are specified through stresses in the tissue (axiality-based system). Another possibility is that orientations can be specified independently of stresses through molecular signalling (polarity-based system). The axiality-based system has recently been explored through computational modelling. Here we develop and apply a polarity-based system which we call the Growing Polarised Tissue (GPT) framework. Tissue is treated as a continuous material within which regionally expressed factors under genetic control may interact and propagate. Polarity is established by signals that propagate through the tissue and is anchored in regions termed tissue polarity organisers that are also under genetic control. Rates of growth parallel or perpendicular to the local polarity may then be specified through a regulatory network. The resulting growth depends on how specified growth patterns interact within the constraints of mechanically connected tissue. This constraint leads to the emergence of features such as curvature that were not directly specified by the regulatory networks. Resultant growth feeds back to influence spatial arrangements and local orientations of tissue, allowing complex shapes to emerge from simple rules. Moreover, asymmetries may emerge through interactions between polarity fields. We illustrate the value of the GPT-framework for understanding morphogenesis by applying it to a growing Snapdragon flower and indicate how the underlying hypotheses may be tested by computational simulation. We propose that combinatorial intractions between orientations and rates of growth, which are a key feature of polarity-based systems, have been exploited during evolution to generate a range of observed biological shapes.
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spelling pubmed-31169002011-06-22 Generation of Diverse Biological Forms through Combinatorial Interactions between Tissue Polarity and Growth Kennaway, Richard Coen, Enrico Green, Amelia Bangham, Andrew PLoS Comput Biol Research Article A major problem in biology is to understand how complex tissue shapes may arise through growth. In many cases this process involves preferential growth along particular orientations raising the question of how these orientations are specified. One view is that orientations are specified through stresses in the tissue (axiality-based system). Another possibility is that orientations can be specified independently of stresses through molecular signalling (polarity-based system). The axiality-based system has recently been explored through computational modelling. Here we develop and apply a polarity-based system which we call the Growing Polarised Tissue (GPT) framework. Tissue is treated as a continuous material within which regionally expressed factors under genetic control may interact and propagate. Polarity is established by signals that propagate through the tissue and is anchored in regions termed tissue polarity organisers that are also under genetic control. Rates of growth parallel or perpendicular to the local polarity may then be specified through a regulatory network. The resulting growth depends on how specified growth patterns interact within the constraints of mechanically connected tissue. This constraint leads to the emergence of features such as curvature that were not directly specified by the regulatory networks. Resultant growth feeds back to influence spatial arrangements and local orientations of tissue, allowing complex shapes to emerge from simple rules. Moreover, asymmetries may emerge through interactions between polarity fields. We illustrate the value of the GPT-framework for understanding morphogenesis by applying it to a growing Snapdragon flower and indicate how the underlying hypotheses may be tested by computational simulation. We propose that combinatorial intractions between orientations and rates of growth, which are a key feature of polarity-based systems, have been exploited during evolution to generate a range of observed biological shapes. Public Library of Science 2011-06-16 /pmc/articles/PMC3116900/ /pubmed/21698124 http://dx.doi.org/10.1371/journal.pcbi.1002071 Text en Kennaway et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Kennaway, Richard
Coen, Enrico
Green, Amelia
Bangham, Andrew
Generation of Diverse Biological Forms through Combinatorial Interactions between Tissue Polarity and Growth
title Generation of Diverse Biological Forms through Combinatorial Interactions between Tissue Polarity and Growth
title_full Generation of Diverse Biological Forms through Combinatorial Interactions between Tissue Polarity and Growth
title_fullStr Generation of Diverse Biological Forms through Combinatorial Interactions between Tissue Polarity and Growth
title_full_unstemmed Generation of Diverse Biological Forms through Combinatorial Interactions between Tissue Polarity and Growth
title_short Generation of Diverse Biological Forms through Combinatorial Interactions between Tissue Polarity and Growth
title_sort generation of diverse biological forms through combinatorial interactions between tissue polarity and growth
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3116900/
https://www.ncbi.nlm.nih.gov/pubmed/21698124
http://dx.doi.org/10.1371/journal.pcbi.1002071
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