Modeling regulation of zinc uptake via ZIP transporters in yeast and plant roots.
In yeast (Saccharomyces cerevisiae) and plant roots (Arabidopsis thaliana) zinc enters the cells via influx transporters of the ZIP family. Since zinc is both essential for cell function and toxic at high concentrations, tight regulation is essential for cell viability. We provide new insight into t...
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doaj-7f87da5b4c6d4bea8abb1b48985e55032020-11-24T21:58:27ZengPublic Library of Science (PLoS)PLoS ONE1932-62032012-01-0176e3719310.1371/journal.pone.0037193Modeling regulation of zinc uptake via ZIP transporters in yeast and plant roots.Juliane ClausAndrés Chavarría-KrauserIn yeast (Saccharomyces cerevisiae) and plant roots (Arabidopsis thaliana) zinc enters the cells via influx transporters of the ZIP family. Since zinc is both essential for cell function and toxic at high concentrations, tight regulation is essential for cell viability. We provide new insight into the underlying mechanisms, starting from a general model based on ordinary differential equations and adapting it to the specific cases of yeast and plant root cells. In yeast, zinc is transported by the transporters ZRT1 and ZRT2, which are both regulated by the zinc-responsive transcription factor ZAP1. Using biological data, parameters were estimated and analyzed, confirming the different affinities of ZRT1 and ZRT2 reported in the literature. Furthermore, our model suggests that the positive feedback in ZAP1 production has a stabilizing function at high influx rates. In plant roots, various ZIP transporters play a role in zinc uptake. Their regulation is largely unknown, but bZIP transcription factors are thought to be involved. We set up three putative models based on: an activator only, an activator with dimerization and an activator-inhibitor pair. These were fitted to measurements and analyzed. Simulations show that the activator-inhibitor model outperforms the other two in providing robust and stable homeostasis at reasonable parameter ranges.http://europepmc.org/articles/PMC3371047?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Juliane Claus Andrés Chavarría-Krauser |
spellingShingle |
Juliane Claus Andrés Chavarría-Krauser Modeling regulation of zinc uptake via ZIP transporters in yeast and plant roots. PLoS ONE |
author_facet |
Juliane Claus Andrés Chavarría-Krauser |
author_sort |
Juliane Claus |
title |
Modeling regulation of zinc uptake via ZIP transporters in yeast and plant roots. |
title_short |
Modeling regulation of zinc uptake via ZIP transporters in yeast and plant roots. |
title_full |
Modeling regulation of zinc uptake via ZIP transporters in yeast and plant roots. |
title_fullStr |
Modeling regulation of zinc uptake via ZIP transporters in yeast and plant roots. |
title_full_unstemmed |
Modeling regulation of zinc uptake via ZIP transporters in yeast and plant roots. |
title_sort |
modeling regulation of zinc uptake via zip transporters in yeast and plant roots. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2012-01-01 |
description |
In yeast (Saccharomyces cerevisiae) and plant roots (Arabidopsis thaliana) zinc enters the cells via influx transporters of the ZIP family. Since zinc is both essential for cell function and toxic at high concentrations, tight regulation is essential for cell viability. We provide new insight into the underlying mechanisms, starting from a general model based on ordinary differential equations and adapting it to the specific cases of yeast and plant root cells. In yeast, zinc is transported by the transporters ZRT1 and ZRT2, which are both regulated by the zinc-responsive transcription factor ZAP1. Using biological data, parameters were estimated and analyzed, confirming the different affinities of ZRT1 and ZRT2 reported in the literature. Furthermore, our model suggests that the positive feedback in ZAP1 production has a stabilizing function at high influx rates. In plant roots, various ZIP transporters play a role in zinc uptake. Their regulation is largely unknown, but bZIP transcription factors are thought to be involved. We set up three putative models based on: an activator only, an activator with dimerization and an activator-inhibitor pair. These were fitted to measurements and analyzed. Simulations show that the activator-inhibitor model outperforms the other two in providing robust and stable homeostasis at reasonable parameter ranges. |
url |
http://europepmc.org/articles/PMC3371047?pdf=render |
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AT julianeclaus modelingregulationofzincuptakeviaziptransportersinyeastandplantroots AT andreschavarriakrauser modelingregulationofzincuptakeviaziptransportersinyeastandplantroots |
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