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Metabolic turnover analysis by a combination of in vivo (13)C-labelling from (13)CO(2) and metabolic profiling with CE-MS/MS reveals rate-limiting steps of the C(3) photosynthetic pathway in Nicotiana tabacum leaves

Understanding of the control of metabolic pathways in plants requires direct measurement of the metabolic turnover rate. Sugar phosphate metabolism, including the Calvin cycle, is the primary pathway in C(3) photosynthesis, the dynamic status of which has not been assessed quantitatively in the leav...

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Autores principales: Hasunuma, Tomohisa, Harada, Kazuo, Miyazawa, Shin-Ichi, Kondo, Akihiko, Fukusaki, Eiichiro, Miyake, Chikahiro
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2826653/
https://www.ncbi.nlm.nih.gov/pubmed/20026474
http://dx.doi.org/10.1093/jxb/erp374
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author Hasunuma, Tomohisa
Harada, Kazuo
Miyazawa, Shin-Ichi
Kondo, Akihiko
Fukusaki, Eiichiro
Miyake, Chikahiro
author_facet Hasunuma, Tomohisa
Harada, Kazuo
Miyazawa, Shin-Ichi
Kondo, Akihiko
Fukusaki, Eiichiro
Miyake, Chikahiro
author_sort Hasunuma, Tomohisa
collection PubMed
description Understanding of the control of metabolic pathways in plants requires direct measurement of the metabolic turnover rate. Sugar phosphate metabolism, including the Calvin cycle, is the primary pathway in C(3) photosynthesis, the dynamic status of which has not been assessed quantitatively in the leaves of higher plants. Since the flux of photosynthetic carbon metabolism is affected by the CO(2) fixation rate in leaves, a novel in vivo (13)C-labelling system was developed with (13)CO(2) for the kinetic determination of metabolic turnover that was the time-course of the (13)C-labelling ratio in each metabolite. The system is equipped with a gas-exchange chamber that enables real-time monitoring of the CO(2) fixation rate and a freeze-clamp that excises a labelled leaf concurrently with quenching the metabolic reactions by liquid nitrogen within the photosynthesis chamber. Kinetic measurements were performed by detecting mass isotopomer abundance with capillary electrophoresis-tandem mass spectrometry. The multiple reaction monitoring method was optimized for the determination of each compound for sensitive detection because the amount of some sugar phosphates in plant cells is extremely small. Our analytical system enabled the in vivo turnover of sugar phosphates to be monitored in fresh tobacco (Nicotiana tabacum) leaves, which revealed that the turnover rate of glucose-1-phosphate (G1P) was significantly lower than that of other sugar phosphates, including glucose-6-phosphate (G6P). The pool size of G1P is 12 times lower than that of G6P. These results indicate that the conversion of G6P to G1P is one of the rate-limiting steps in the sugar phosphate pathway.
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spelling pubmed-28266532010-02-24 Metabolic turnover analysis by a combination of in vivo (13)C-labelling from (13)CO(2) and metabolic profiling with CE-MS/MS reveals rate-limiting steps of the C(3) photosynthetic pathway in Nicotiana tabacum leaves Hasunuma, Tomohisa Harada, Kazuo Miyazawa, Shin-Ichi Kondo, Akihiko Fukusaki, Eiichiro Miyake, Chikahiro J Exp Bot Research Papers Understanding of the control of metabolic pathways in plants requires direct measurement of the metabolic turnover rate. Sugar phosphate metabolism, including the Calvin cycle, is the primary pathway in C(3) photosynthesis, the dynamic status of which has not been assessed quantitatively in the leaves of higher plants. Since the flux of photosynthetic carbon metabolism is affected by the CO(2) fixation rate in leaves, a novel in vivo (13)C-labelling system was developed with (13)CO(2) for the kinetic determination of metabolic turnover that was the time-course of the (13)C-labelling ratio in each metabolite. The system is equipped with a gas-exchange chamber that enables real-time monitoring of the CO(2) fixation rate and a freeze-clamp that excises a labelled leaf concurrently with quenching the metabolic reactions by liquid nitrogen within the photosynthesis chamber. Kinetic measurements were performed by detecting mass isotopomer abundance with capillary electrophoresis-tandem mass spectrometry. The multiple reaction monitoring method was optimized for the determination of each compound for sensitive detection because the amount of some sugar phosphates in plant cells is extremely small. Our analytical system enabled the in vivo turnover of sugar phosphates to be monitored in fresh tobacco (Nicotiana tabacum) leaves, which revealed that the turnover rate of glucose-1-phosphate (G1P) was significantly lower than that of other sugar phosphates, including glucose-6-phosphate (G6P). The pool size of G1P is 12 times lower than that of G6P. These results indicate that the conversion of G6P to G1P is one of the rate-limiting steps in the sugar phosphate pathway. Oxford University Press 2010-02 2009-12-21 /pmc/articles/PMC2826653/ /pubmed/20026474 http://dx.doi.org/10.1093/jxb/erp374 Text en © 2009 The Author(s). This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/2.5), which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited. This paper is available online free of all access charges (see http://jxb.oxfordjournals.org/open_access.html for further details)
spellingShingle Research Papers
Hasunuma, Tomohisa
Harada, Kazuo
Miyazawa, Shin-Ichi
Kondo, Akihiko
Fukusaki, Eiichiro
Miyake, Chikahiro
Metabolic turnover analysis by a combination of in vivo (13)C-labelling from (13)CO(2) and metabolic profiling with CE-MS/MS reveals rate-limiting steps of the C(3) photosynthetic pathway in Nicotiana tabacum leaves
title Metabolic turnover analysis by a combination of in vivo (13)C-labelling from (13)CO(2) and metabolic profiling with CE-MS/MS reveals rate-limiting steps of the C(3) photosynthetic pathway in Nicotiana tabacum leaves
title_full Metabolic turnover analysis by a combination of in vivo (13)C-labelling from (13)CO(2) and metabolic profiling with CE-MS/MS reveals rate-limiting steps of the C(3) photosynthetic pathway in Nicotiana tabacum leaves
title_fullStr Metabolic turnover analysis by a combination of in vivo (13)C-labelling from (13)CO(2) and metabolic profiling with CE-MS/MS reveals rate-limiting steps of the C(3) photosynthetic pathway in Nicotiana tabacum leaves
title_full_unstemmed Metabolic turnover analysis by a combination of in vivo (13)C-labelling from (13)CO(2) and metabolic profiling with CE-MS/MS reveals rate-limiting steps of the C(3) photosynthetic pathway in Nicotiana tabacum leaves
title_short Metabolic turnover analysis by a combination of in vivo (13)C-labelling from (13)CO(2) and metabolic profiling with CE-MS/MS reveals rate-limiting steps of the C(3) photosynthetic pathway in Nicotiana tabacum leaves
title_sort metabolic turnover analysis by a combination of in vivo (13)c-labelling from (13)co(2) and metabolic profiling with ce-ms/ms reveals rate-limiting steps of the c(3) photosynthetic pathway in nicotiana tabacum leaves
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2826653/
https://www.ncbi.nlm.nih.gov/pubmed/20026474
http://dx.doi.org/10.1093/jxb/erp374
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