Cargando…

(52)Fe Translocation in Barley as Monitored by a Positron-Emitting Tracer Imaging System (PETIS): Evidence for the Direct Translocation of Fe from Roots to Young Leaves via Phloem

The real-time translocation of iron (Fe) in barley (Hordeum vulgare L. cv. Ehimehadaka no. 1) was visualized using the positron-emitting tracer (52)Fe and a positron-emitting tracer imaging system (PETIS). PETIS allowed us to monitor Fe translocation in barley non-destructively under various conditi...

Descripción completa

Detalles Bibliográficos
Autores principales: Tsukamoto, Takashi, Nakanishi, Hiromi, Uchida, Hiroshi, Watanabe, Satoshi, Matsuhashi, Shinpei, Mori, Satoshi, Nishizawa, Naoko K.
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2638711/
https://www.ncbi.nlm.nih.gov/pubmed/19073647
http://dx.doi.org/10.1093/pcp/pcn192
_version_ 1782164417454014464
author Tsukamoto, Takashi
Nakanishi, Hiromi
Uchida, Hiroshi
Watanabe, Satoshi
Matsuhashi, Shinpei
Mori, Satoshi
Nishizawa, Naoko K.
author_facet Tsukamoto, Takashi
Nakanishi, Hiromi
Uchida, Hiroshi
Watanabe, Satoshi
Matsuhashi, Shinpei
Mori, Satoshi
Nishizawa, Naoko K.
author_sort Tsukamoto, Takashi
collection PubMed
description The real-time translocation of iron (Fe) in barley (Hordeum vulgare L. cv. Ehimehadaka no. 1) was visualized using the positron-emitting tracer (52)Fe and a positron-emitting tracer imaging system (PETIS). PETIS allowed us to monitor Fe translocation in barley non-destructively under various conditions. In all cases, (52)Fe first accumulated at the basal part of the shoot, suggesting that this region may play an important role in Fe distribution in graminaceous plants. Fe-deficient barley showed greater translocation of (52)Fe from roots to shoots than did Fe-sufficient barley, demonstrating that Fe deficiency causes enhanced (52)Fe uptake and translocation to shoots. In the dark, translocation of (52)Fe to the youngest leaf was equivalent to or higher than that under the light condition, while the translocation of (52)Fe to the older leaves was decreased, in both Fe-deficient and Fe-sufficient barley. This suggests the possibility that the mechanism and/or pathway of Fe translocation to the youngest leaf may be different from that to the older leaves. When phloem transport in the leaf was blocked by steam treatment, (52)Fe translocation from the roots to older leaves was not affected, while (52)Fe translocation to the youngest leaf was reduced, indicating that Fe is translocated to the youngest leaf via phloem in addition to xylem. We propose a novel model in which root-absorbed Fe is translocated from the basal part of the shoots and/or roots to the youngest leaf via phloem in graminaceous plants.
format Text
id pubmed-2638711
institution National Center for Biotechnology Information
language English
publishDate 2009
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-26387112009-02-25 (52)Fe Translocation in Barley as Monitored by a Positron-Emitting Tracer Imaging System (PETIS): Evidence for the Direct Translocation of Fe from Roots to Young Leaves via Phloem Tsukamoto, Takashi Nakanishi, Hiromi Uchida, Hiroshi Watanabe, Satoshi Matsuhashi, Shinpei Mori, Satoshi Nishizawa, Naoko K. Plant Cell Physiol Special Issue – Regular Papers The real-time translocation of iron (Fe) in barley (Hordeum vulgare L. cv. Ehimehadaka no. 1) was visualized using the positron-emitting tracer (52)Fe and a positron-emitting tracer imaging system (PETIS). PETIS allowed us to monitor Fe translocation in barley non-destructively under various conditions. In all cases, (52)Fe first accumulated at the basal part of the shoot, suggesting that this region may play an important role in Fe distribution in graminaceous plants. Fe-deficient barley showed greater translocation of (52)Fe from roots to shoots than did Fe-sufficient barley, demonstrating that Fe deficiency causes enhanced (52)Fe uptake and translocation to shoots. In the dark, translocation of (52)Fe to the youngest leaf was equivalent to or higher than that under the light condition, while the translocation of (52)Fe to the older leaves was decreased, in both Fe-deficient and Fe-sufficient barley. This suggests the possibility that the mechanism and/or pathway of Fe translocation to the youngest leaf may be different from that to the older leaves. When phloem transport in the leaf was blocked by steam treatment, (52)Fe translocation from the roots to older leaves was not affected, while (52)Fe translocation to the youngest leaf was reduced, indicating that Fe is translocated to the youngest leaf via phloem in addition to xylem. We propose a novel model in which root-absorbed Fe is translocated from the basal part of the shoots and/or roots to the youngest leaf via phloem in graminaceous plants. Oxford University Press 2009-01 2008-12-10 /pmc/articles/PMC2638711/ /pubmed/19073647 http://dx.doi.org/10.1093/pcp/pcn192 Text en © The Author 2008. Published by Oxford University Press on behalf of Japanese Society of Plant Physiologists. All rights reserved. The online version of this article has been published under an open access model. Users are entitled to use, reproduce, disseminate, or display the open access version of this article for non-commercial purposes provided that: the original authorship is properly and fully attributed; the Journal and the Japanese Society of Plant Physiologists are attributed as the original place of publication with the correct citation details given; if an article is subsequently reproduced or disseminated not in its entirety but only in part or as a derivative work this must be clearly indicated. For commercial re-use, please contact journals.permissions@oxfordjournals.org
spellingShingle Special Issue – Regular Papers
Tsukamoto, Takashi
Nakanishi, Hiromi
Uchida, Hiroshi
Watanabe, Satoshi
Matsuhashi, Shinpei
Mori, Satoshi
Nishizawa, Naoko K.
(52)Fe Translocation in Barley as Monitored by a Positron-Emitting Tracer Imaging System (PETIS): Evidence for the Direct Translocation of Fe from Roots to Young Leaves via Phloem
title (52)Fe Translocation in Barley as Monitored by a Positron-Emitting Tracer Imaging System (PETIS): Evidence for the Direct Translocation of Fe from Roots to Young Leaves via Phloem
title_full (52)Fe Translocation in Barley as Monitored by a Positron-Emitting Tracer Imaging System (PETIS): Evidence for the Direct Translocation of Fe from Roots to Young Leaves via Phloem
title_fullStr (52)Fe Translocation in Barley as Monitored by a Positron-Emitting Tracer Imaging System (PETIS): Evidence for the Direct Translocation of Fe from Roots to Young Leaves via Phloem
title_full_unstemmed (52)Fe Translocation in Barley as Monitored by a Positron-Emitting Tracer Imaging System (PETIS): Evidence for the Direct Translocation of Fe from Roots to Young Leaves via Phloem
title_short (52)Fe Translocation in Barley as Monitored by a Positron-Emitting Tracer Imaging System (PETIS): Evidence for the Direct Translocation of Fe from Roots to Young Leaves via Phloem
title_sort (52)fe translocation in barley as monitored by a positron-emitting tracer imaging system (petis): evidence for the direct translocation of fe from roots to young leaves via phloem
topic Special Issue – Regular Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2638711/
https://www.ncbi.nlm.nih.gov/pubmed/19073647
http://dx.doi.org/10.1093/pcp/pcn192
work_keys_str_mv AT tsukamototakashi 52fetranslocationinbarleyasmonitoredbyapositronemittingtracerimagingsystempetisevidenceforthedirecttranslocationoffefromrootstoyoungleavesviaphloem
AT nakanishihiromi 52fetranslocationinbarleyasmonitoredbyapositronemittingtracerimagingsystempetisevidenceforthedirecttranslocationoffefromrootstoyoungleavesviaphloem
AT uchidahiroshi 52fetranslocationinbarleyasmonitoredbyapositronemittingtracerimagingsystempetisevidenceforthedirecttranslocationoffefromrootstoyoungleavesviaphloem
AT watanabesatoshi 52fetranslocationinbarleyasmonitoredbyapositronemittingtracerimagingsystempetisevidenceforthedirecttranslocationoffefromrootstoyoungleavesviaphloem
AT matsuhashishinpei 52fetranslocationinbarleyasmonitoredbyapositronemittingtracerimagingsystempetisevidenceforthedirecttranslocationoffefromrootstoyoungleavesviaphloem
AT morisatoshi 52fetranslocationinbarleyasmonitoredbyapositronemittingtracerimagingsystempetisevidenceforthedirecttranslocationoffefromrootstoyoungleavesviaphloem
AT nishizawanaokok 52fetranslocationinbarleyasmonitoredbyapositronemittingtracerimagingsystempetisevidenceforthedirecttranslocationoffefromrootstoyoungleavesviaphloem