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A competitive complex formation mechanism underlies trichome patterning on Arabidopsis leaves

Trichome patterning in Arabidopsis serves as a model system for de novo pattern formation in plants. It is thought to typify the theoretical activator–inhibitor mechanism, although this hypothesis has never been challenged by a combined experimental and theoretical approach. By integrating the key g...

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Autores principales: Digiuni, Simona, Schellmann, Swen, Geier, Florian, Greese, Bettina, Pesch, Martina, Wester, Katja, Dartan, Burcu, Mach, Valerie, Srinivas, Bhylahalli Purushottam, Timmer, Jens, Fleck, Christian, Hulskamp, Martin
Formato: Texto
Lenguaje:English
Publicado: Nature Publishing Group 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2564731/
https://www.ncbi.nlm.nih.gov/pubmed/18766177
http://dx.doi.org/10.1038/msb.2008.54
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author Digiuni, Simona
Schellmann, Swen
Geier, Florian
Greese, Bettina
Pesch, Martina
Wester, Katja
Dartan, Burcu
Mach, Valerie
Srinivas, Bhylahalli Purushottam
Timmer, Jens
Fleck, Christian
Hulskamp, Martin
author_facet Digiuni, Simona
Schellmann, Swen
Geier, Florian
Greese, Bettina
Pesch, Martina
Wester, Katja
Dartan, Burcu
Mach, Valerie
Srinivas, Bhylahalli Purushottam
Timmer, Jens
Fleck, Christian
Hulskamp, Martin
author_sort Digiuni, Simona
collection PubMed
description Trichome patterning in Arabidopsis serves as a model system for de novo pattern formation in plants. It is thought to typify the theoretical activator–inhibitor mechanism, although this hypothesis has never been challenged by a combined experimental and theoretical approach. By integrating the key genetic and molecular data of the trichome patterning system, we developed a new theoretical model that allows the direct testing of the effect of experimental interventions and in the prediction of patterning phenotypes. We show experimentally that the trichome inhibitor TRIPTYCHON is transcriptionally activated by the known positive regulators GLABRA1 and GLABRA3. Further, we demonstrate by particle bombardment of protein fusions with GFP that TRIPTYCHON and CAPRICE but not GLABRA1 and GLABRA3 can move between cells. Finally, theoretical considerations suggest promoter swapping and basal overexpression experiments by means of which we are able to discriminate three biologically meaningful variants of the trichome patterning model. Our study demonstrates that the mutual interplay between theory and experiment can reveal a new level of understanding of how biochemical mechanisms can drive biological patterning processes.
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spelling pubmed-25647312008-10-09 A competitive complex formation mechanism underlies trichome patterning on Arabidopsis leaves Digiuni, Simona Schellmann, Swen Geier, Florian Greese, Bettina Pesch, Martina Wester, Katja Dartan, Burcu Mach, Valerie Srinivas, Bhylahalli Purushottam Timmer, Jens Fleck, Christian Hulskamp, Martin Mol Syst Biol Article Trichome patterning in Arabidopsis serves as a model system for de novo pattern formation in plants. It is thought to typify the theoretical activator–inhibitor mechanism, although this hypothesis has never been challenged by a combined experimental and theoretical approach. By integrating the key genetic and molecular data of the trichome patterning system, we developed a new theoretical model that allows the direct testing of the effect of experimental interventions and in the prediction of patterning phenotypes. We show experimentally that the trichome inhibitor TRIPTYCHON is transcriptionally activated by the known positive regulators GLABRA1 and GLABRA3. Further, we demonstrate by particle bombardment of protein fusions with GFP that TRIPTYCHON and CAPRICE but not GLABRA1 and GLABRA3 can move between cells. Finally, theoretical considerations suggest promoter swapping and basal overexpression experiments by means of which we are able to discriminate three biologically meaningful variants of the trichome patterning model. Our study demonstrates that the mutual interplay between theory and experiment can reveal a new level of understanding of how biochemical mechanisms can drive biological patterning processes. Nature Publishing Group 2008-09-02 /pmc/articles/PMC2564731/ /pubmed/18766177 http://dx.doi.org/10.1038/msb.2008.54 Text en Copyright © 2008, EMBO and Nature Publishing Group http://creativecommons.org/licenses/by-nc-sa/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution Licence, which permits distribution and reproduction in any medium, provided the original author and source are credited. Creation of derivative works is permitted but the resulting work may be distributed only under the same or similar licence to this one. This licence does not permit commercial exploitation without specific permission.
spellingShingle Article
Digiuni, Simona
Schellmann, Swen
Geier, Florian
Greese, Bettina
Pesch, Martina
Wester, Katja
Dartan, Burcu
Mach, Valerie
Srinivas, Bhylahalli Purushottam
Timmer, Jens
Fleck, Christian
Hulskamp, Martin
A competitive complex formation mechanism underlies trichome patterning on Arabidopsis leaves
title A competitive complex formation mechanism underlies trichome patterning on Arabidopsis leaves
title_full A competitive complex formation mechanism underlies trichome patterning on Arabidopsis leaves
title_fullStr A competitive complex formation mechanism underlies trichome patterning on Arabidopsis leaves
title_full_unstemmed A competitive complex formation mechanism underlies trichome patterning on Arabidopsis leaves
title_short A competitive complex formation mechanism underlies trichome patterning on Arabidopsis leaves
title_sort competitive complex formation mechanism underlies trichome patterning on arabidopsis leaves
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2564731/
https://www.ncbi.nlm.nih.gov/pubmed/18766177
http://dx.doi.org/10.1038/msb.2008.54
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