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Iron uptake of etioplasts is independent from photosynthesis but applies the reduction-based strategy

INTRODUCTION: Iron (Fe) is one of themost important cofactors in the photosynthetic apparatus, and its uptake by chloroplasts has also been associated with the operation of the photosynthetic electron transport chain during reduction-based plastidial Fe uptake. Therefore, plastidial Fe uptake was co...

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Autores principales: Sági-Kazár, Máté, Sárvári, Éva, Cseh, Barnabás, Illés, Levente, May, Zoltán, Hegedűs, Csaba, Barócsi, Attila, Lenk, Sándor, Solymosi, Katalin, Solti, Ádám
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10457162/
https://www.ncbi.nlm.nih.gov/pubmed/37636109
http://dx.doi.org/10.3389/fpls.2023.1227811
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author Sági-Kazár, Máté
Sárvári, Éva
Cseh, Barnabás
Illés, Levente
May, Zoltán
Hegedűs, Csaba
Barócsi, Attila
Lenk, Sándor
Solymosi, Katalin
Solti, Ádám
author_facet Sági-Kazár, Máté
Sárvári, Éva
Cseh, Barnabás
Illés, Levente
May, Zoltán
Hegedűs, Csaba
Barócsi, Attila
Lenk, Sándor
Solymosi, Katalin
Solti, Ádám
author_sort Sági-Kazár, Máté
collection PubMed
description INTRODUCTION: Iron (Fe) is one of themost important cofactors in the photosynthetic apparatus, and its uptake by chloroplasts has also been associated with the operation of the photosynthetic electron transport chain during reduction-based plastidial Fe uptake. Therefore, plastidial Fe uptake was considered not to be operational in the absence of the photosynthetic activity. Nevertheless, Fe is also required for enzymatic functions unrelated to photosynthesis, highlighting the importance of Fe acquisition by non-photosynthetic plastids. Yet, it remains unclear how these plastids acquire Fe in the absence of photosynthetic function. Furthermore, plastids of etiolated tissues should already possess the ability to acquire Fe, since the biosynthesis of thylakoid membrane complexes requires a massive amount of readily available Fe. Thus, we aimed to investigate whether the reduction-based plastidial Fe uptake solely relies on the functioning photosynthetic apparatus. METHODS: In our combined structure, iron content and transcript amount analysis studies, we used Savoy cabbage plant as a model, which develops natural etiolation in the inner leaves of the heads due to the shading of the outer leaf layers. RESULTS: Foliar and plastidial Fe content of Savoy cabbage leaves decreased towards the inner leaf layers. The leaves of the innermost leaf layers proved to be etiolated, containing etioplasts that lacked the photosynthetic machinery and thus were photosynthetically inactive. However, we discovered that these etioplasts contained, and were able to take up, Fe. Although the relative transcript abundance of genes associated with plastidial Fe uptake and homeostasis decreased towards the inner leaf layers, both ferric chelate reductase FRO7 transcripts and activity were detected in the innermost leaf layer. Additionally, a significant NADP(H) pool and NAD(P)H dehydrogenase activity was detected in the etioplasts of the innermost leaf layer, indicating the presence of the reducing capacity that likely supports the reduction-based Fe uptake of etioplasts. DISCUSSION: Based on these findings, the reduction-based plastidial Fe acquisition should not be considered exclusively dependent on the photosynthetic functions.
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spelling pubmed-104571622023-08-26 Iron uptake of etioplasts is independent from photosynthesis but applies the reduction-based strategy Sági-Kazár, Máté Sárvári, Éva Cseh, Barnabás Illés, Levente May, Zoltán Hegedűs, Csaba Barócsi, Attila Lenk, Sándor Solymosi, Katalin Solti, Ádám Front Plant Sci Plant Science INTRODUCTION: Iron (Fe) is one of themost important cofactors in the photosynthetic apparatus, and its uptake by chloroplasts has also been associated with the operation of the photosynthetic electron transport chain during reduction-based plastidial Fe uptake. Therefore, plastidial Fe uptake was considered not to be operational in the absence of the photosynthetic activity. Nevertheless, Fe is also required for enzymatic functions unrelated to photosynthesis, highlighting the importance of Fe acquisition by non-photosynthetic plastids. Yet, it remains unclear how these plastids acquire Fe in the absence of photosynthetic function. Furthermore, plastids of etiolated tissues should already possess the ability to acquire Fe, since the biosynthesis of thylakoid membrane complexes requires a massive amount of readily available Fe. Thus, we aimed to investigate whether the reduction-based plastidial Fe uptake solely relies on the functioning photosynthetic apparatus. METHODS: In our combined structure, iron content and transcript amount analysis studies, we used Savoy cabbage plant as a model, which develops natural etiolation in the inner leaves of the heads due to the shading of the outer leaf layers. RESULTS: Foliar and plastidial Fe content of Savoy cabbage leaves decreased towards the inner leaf layers. The leaves of the innermost leaf layers proved to be etiolated, containing etioplasts that lacked the photosynthetic machinery and thus were photosynthetically inactive. However, we discovered that these etioplasts contained, and were able to take up, Fe. Although the relative transcript abundance of genes associated with plastidial Fe uptake and homeostasis decreased towards the inner leaf layers, both ferric chelate reductase FRO7 transcripts and activity were detected in the innermost leaf layer. Additionally, a significant NADP(H) pool and NAD(P)H dehydrogenase activity was detected in the etioplasts of the innermost leaf layer, indicating the presence of the reducing capacity that likely supports the reduction-based Fe uptake of etioplasts. DISCUSSION: Based on these findings, the reduction-based plastidial Fe acquisition should not be considered exclusively dependent on the photosynthetic functions. Frontiers Media S.A. 2023-08-11 /pmc/articles/PMC10457162/ /pubmed/37636109 http://dx.doi.org/10.3389/fpls.2023.1227811 Text en Copyright © 2023 Sági-Kazár, Sárvári, Cseh, Illés, May, Hegedűs, Barócsi, Lenk, Solymosi and Solti https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Sági-Kazár, Máté
Sárvári, Éva
Cseh, Barnabás
Illés, Levente
May, Zoltán
Hegedűs, Csaba
Barócsi, Attila
Lenk, Sándor
Solymosi, Katalin
Solti, Ádám
Iron uptake of etioplasts is independent from photosynthesis but applies the reduction-based strategy
title Iron uptake of etioplasts is independent from photosynthesis but applies the reduction-based strategy
title_full Iron uptake of etioplasts is independent from photosynthesis but applies the reduction-based strategy
title_fullStr Iron uptake of etioplasts is independent from photosynthesis but applies the reduction-based strategy
title_full_unstemmed Iron uptake of etioplasts is independent from photosynthesis but applies the reduction-based strategy
title_short Iron uptake of etioplasts is independent from photosynthesis but applies the reduction-based strategy
title_sort iron uptake of etioplasts is independent from photosynthesis but applies the reduction-based strategy
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10457162/
https://www.ncbi.nlm.nih.gov/pubmed/37636109
http://dx.doi.org/10.3389/fpls.2023.1227811
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