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Kinetic mechanism of the dimeric ATP sulfurylase from plants

In plants, sulfur must be obtained from the environment and assimilated into usable forms for metabolism. ATP sulfurylase catalyses the thermodynamically unfavourable formation of a mixed phosphosulfate anhydride in APS (adenosine 5′-phosphosulfate) from ATP and sulfate as the first committed step o...

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Autores principales: Ravilious, Geoffrey E., Herrmann, Jonathan, Goo Lee, Soon, Westfall, Corey S., Jez, Joseph M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Portland Press Ltd. 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3728988/
https://www.ncbi.nlm.nih.gov/pubmed/23789618
http://dx.doi.org/10.1042/BSR20130073
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author Ravilious, Geoffrey E.
Herrmann, Jonathan
Goo Lee, Soon
Westfall, Corey S.
Jez, Joseph M.
author_facet Ravilious, Geoffrey E.
Herrmann, Jonathan
Goo Lee, Soon
Westfall, Corey S.
Jez, Joseph M.
author_sort Ravilious, Geoffrey E.
collection PubMed
description In plants, sulfur must be obtained from the environment and assimilated into usable forms for metabolism. ATP sulfurylase catalyses the thermodynamically unfavourable formation of a mixed phosphosulfate anhydride in APS (adenosine 5′-phosphosulfate) from ATP and sulfate as the first committed step of sulfur assimilation in plants. In contrast to the multi-functional, allosterically regulated ATP sulfurylases from bacteria, fungi and mammals, the plant enzyme functions as a mono-functional, non-allosteric homodimer. Owing to these differences, here we examine the kinetic mechanism of soybean ATP sulfurylase [GmATPS1 (Glycine max (soybean) ATP sulfurylase isoform 1)]. For the forward reaction (APS synthesis), initial velocity methods indicate a single-displacement mechanism. Dead-end inhibition studies with chlorate showed competitive inhibition versus sulfate and non-competitive inhibition versus APS. Initial velocity studies of the reverse reaction (ATP synthesis) demonstrate a sequential mechanism with global fitting analysis suggesting an ordered binding of substrates. ITC (isothermal titration calorimetry) showed tight binding of APS to GmATPS1. In contrast, binding of PP(i) (pyrophosphate) to GmATPS1 was not detected, although titration of the E•APS complex with PP(i) in the absence of magnesium displayed ternary complex formation. These results suggest a kinetic mechanism in which ATP and APS are the first substrates bound in the forward and reverse reactions, respectively.
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spelling pubmed-37289882013-08-09 Kinetic mechanism of the dimeric ATP sulfurylase from plants Ravilious, Geoffrey E. Herrmann, Jonathan Goo Lee, Soon Westfall, Corey S. Jez, Joseph M. Biosci Rep Original Paper In plants, sulfur must be obtained from the environment and assimilated into usable forms for metabolism. ATP sulfurylase catalyses the thermodynamically unfavourable formation of a mixed phosphosulfate anhydride in APS (adenosine 5′-phosphosulfate) from ATP and sulfate as the first committed step of sulfur assimilation in plants. In contrast to the multi-functional, allosterically regulated ATP sulfurylases from bacteria, fungi and mammals, the plant enzyme functions as a mono-functional, non-allosteric homodimer. Owing to these differences, here we examine the kinetic mechanism of soybean ATP sulfurylase [GmATPS1 (Glycine max (soybean) ATP sulfurylase isoform 1)]. For the forward reaction (APS synthesis), initial velocity methods indicate a single-displacement mechanism. Dead-end inhibition studies with chlorate showed competitive inhibition versus sulfate and non-competitive inhibition versus APS. Initial velocity studies of the reverse reaction (ATP synthesis) demonstrate a sequential mechanism with global fitting analysis suggesting an ordered binding of substrates. ITC (isothermal titration calorimetry) showed tight binding of APS to GmATPS1. In contrast, binding of PP(i) (pyrophosphate) to GmATPS1 was not detected, although titration of the E•APS complex with PP(i) in the absence of magnesium displayed ternary complex formation. These results suggest a kinetic mechanism in which ATP and APS are the first substrates bound in the forward and reverse reactions, respectively. Portland Press Ltd. 2013-07-25 /pmc/articles/PMC3728988/ /pubmed/23789618 http://dx.doi.org/10.1042/BSR20130073 Text en © 2013 The author(s) has paid for this article to be freely available under the terms of the Creative Commons Attribution Licence (CC-BY)(http://creativecommons.org/licenses/by/3.0/) which permits unrestricted use, distribution and reproduction in any medium, provided the original work is properly cited. http://creativecommons.org/licenses/by/3.0/ 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 work is properly cited.
spellingShingle Original Paper
Ravilious, Geoffrey E.
Herrmann, Jonathan
Goo Lee, Soon
Westfall, Corey S.
Jez, Joseph M.
Kinetic mechanism of the dimeric ATP sulfurylase from plants
title Kinetic mechanism of the dimeric ATP sulfurylase from plants
title_full Kinetic mechanism of the dimeric ATP sulfurylase from plants
title_fullStr Kinetic mechanism of the dimeric ATP sulfurylase from plants
title_full_unstemmed Kinetic mechanism of the dimeric ATP sulfurylase from plants
title_short Kinetic mechanism of the dimeric ATP sulfurylase from plants
title_sort kinetic mechanism of the dimeric atp sulfurylase from plants
topic Original Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3728988/
https://www.ncbi.nlm.nih.gov/pubmed/23789618
http://dx.doi.org/10.1042/BSR20130073
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