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Copper-Deficiency in Brassica napus Induces Copper Remobilization, Molybdenum Accumulation and Modification of the Expression of Chloroplastic Proteins

During the last 40 years, crop breeding has strongly increased yields but has had adverse effects on the content of micronutrients, such as Fe, Mg, Zn and Cu, in edible products despite their sufficient supply in most soils. This suggests that micronutrient remobilization to edible tissues has been...

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Autores principales: Billard, Vincent, Ourry, Alain, Maillard, Anne, Garnica, Maria, Coquet, Laurent, Jouenne, Thierry, Cruz, Florence, Garcia-Mina, José-Maria, Yvin, Jean-Claude, Etienne, Philippe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4198169/
https://www.ncbi.nlm.nih.gov/pubmed/25333918
http://dx.doi.org/10.1371/journal.pone.0109889
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author Billard, Vincent
Ourry, Alain
Maillard, Anne
Garnica, Maria
Coquet, Laurent
Jouenne, Thierry
Cruz, Florence
Garcia-Mina, José-Maria
Yvin, Jean-Claude
Etienne, Philippe
author_facet Billard, Vincent
Ourry, Alain
Maillard, Anne
Garnica, Maria
Coquet, Laurent
Jouenne, Thierry
Cruz, Florence
Garcia-Mina, José-Maria
Yvin, Jean-Claude
Etienne, Philippe
author_sort Billard, Vincent
collection PubMed
description During the last 40 years, crop breeding has strongly increased yields but has had adverse effects on the content of micronutrients, such as Fe, Mg, Zn and Cu, in edible products despite their sufficient supply in most soils. This suggests that micronutrient remobilization to edible tissues has been negatively selected. As a consequence, the aim of this work was to quantify the remobilization of Cu in leaves of Brassica napus L. during Cu deficiency and to identify the main metabolic processes that were affected so that improvements can be achieved in the future. While Cu deficiency reduced oilseed rape growth by less than 19% compared to control plants, Cu content in old leaves decreased by 61.4%, thus demonstrating a remobilization process between leaves. Cu deficiency also triggered an increase in Cu transporter expression in roots (COPT2) and leaves (HMA1), and more surprisingly, the induction of the MOT1 gene encoding a molybdenum transporter associated with a strong increase in molybdenum (Mo) uptake. Proteomic analysis of leaves revealed 33 proteins differentially regulated by Cu deficiency, among which more than half were located in chloroplasts. Eleven differentially expressed proteins are known to require Cu for their synthesis and/or activity. Enzymes that were located directly upstream or downstream of Cu-dependent enzymes were also differentially expressed. The overall results are then discussed in relation to remobilization of Cu, the interaction between Mo and Cu that occurs through the synthesis pathway of Mo cofactor, and finally their putative regulation within the Calvin cycle and the chloroplastic electron transport chain.
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spelling pubmed-41981692014-10-21 Copper-Deficiency in Brassica napus Induces Copper Remobilization, Molybdenum Accumulation and Modification of the Expression of Chloroplastic Proteins Billard, Vincent Ourry, Alain Maillard, Anne Garnica, Maria Coquet, Laurent Jouenne, Thierry Cruz, Florence Garcia-Mina, José-Maria Yvin, Jean-Claude Etienne, Philippe PLoS One Research Article During the last 40 years, crop breeding has strongly increased yields but has had adverse effects on the content of micronutrients, such as Fe, Mg, Zn and Cu, in edible products despite their sufficient supply in most soils. This suggests that micronutrient remobilization to edible tissues has been negatively selected. As a consequence, the aim of this work was to quantify the remobilization of Cu in leaves of Brassica napus L. during Cu deficiency and to identify the main metabolic processes that were affected so that improvements can be achieved in the future. While Cu deficiency reduced oilseed rape growth by less than 19% compared to control plants, Cu content in old leaves decreased by 61.4%, thus demonstrating a remobilization process between leaves. Cu deficiency also triggered an increase in Cu transporter expression in roots (COPT2) and leaves (HMA1), and more surprisingly, the induction of the MOT1 gene encoding a molybdenum transporter associated with a strong increase in molybdenum (Mo) uptake. Proteomic analysis of leaves revealed 33 proteins differentially regulated by Cu deficiency, among which more than half were located in chloroplasts. Eleven differentially expressed proteins are known to require Cu for their synthesis and/or activity. Enzymes that were located directly upstream or downstream of Cu-dependent enzymes were also differentially expressed. The overall results are then discussed in relation to remobilization of Cu, the interaction between Mo and Cu that occurs through the synthesis pathway of Mo cofactor, and finally their putative regulation within the Calvin cycle and the chloroplastic electron transport chain. Public Library of Science 2014-10-15 /pmc/articles/PMC4198169/ /pubmed/25333918 http://dx.doi.org/10.1371/journal.pone.0109889 Text en © 2014 Billard 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
Billard, Vincent
Ourry, Alain
Maillard, Anne
Garnica, Maria
Coquet, Laurent
Jouenne, Thierry
Cruz, Florence
Garcia-Mina, José-Maria
Yvin, Jean-Claude
Etienne, Philippe
Copper-Deficiency in Brassica napus Induces Copper Remobilization, Molybdenum Accumulation and Modification of the Expression of Chloroplastic Proteins
title Copper-Deficiency in Brassica napus Induces Copper Remobilization, Molybdenum Accumulation and Modification of the Expression of Chloroplastic Proteins
title_full Copper-Deficiency in Brassica napus Induces Copper Remobilization, Molybdenum Accumulation and Modification of the Expression of Chloroplastic Proteins
title_fullStr Copper-Deficiency in Brassica napus Induces Copper Remobilization, Molybdenum Accumulation and Modification of the Expression of Chloroplastic Proteins
title_full_unstemmed Copper-Deficiency in Brassica napus Induces Copper Remobilization, Molybdenum Accumulation and Modification of the Expression of Chloroplastic Proteins
title_short Copper-Deficiency in Brassica napus Induces Copper Remobilization, Molybdenum Accumulation and Modification of the Expression of Chloroplastic Proteins
title_sort copper-deficiency in brassica napus induces copper remobilization, molybdenum accumulation and modification of the expression of chloroplastic proteins
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4198169/
https://www.ncbi.nlm.nih.gov/pubmed/25333918
http://dx.doi.org/10.1371/journal.pone.0109889
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