Cargando…

In vivo spectroscopy and NMR metabolite fingerprinting approaches to connect the dynamics of photosynthetic and metabolic phenotypes in resurrection plant Haberlea rhodopensis during desiccation and recovery

The resurrection plant Haberlea rhodopensis was used to study dynamics of drought response of photosynthetic machinery parallel with changes in primary metabolism. A relation between leaf water content and photosynthetic performance was established, enabling us to perform a non-destructive evaluatio...

Descripción completa

Detalles Bibliográficos
Autores principales: Mladenov, Petko, Finazzi, Giovanni, Bligny, Richard, Moyankova, Daniela, Zasheva, Diana, Boisson, Anne-Marie, Brugière, Sabine, Krasteva, Vasilena, Alipieva, Kalina, Simova, Svetlana, Tchorbadjieva, Magdalena, Goltsev, Vasiliy, Ferro, Myriam, Rolland, Norbert, Djilianov, Dimitar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4508511/
https://www.ncbi.nlm.nih.gov/pubmed/26257765
http://dx.doi.org/10.3389/fpls.2015.00564
_version_ 1782381936193306624
author Mladenov, Petko
Finazzi, Giovanni
Bligny, Richard
Moyankova, Daniela
Zasheva, Diana
Boisson, Anne-Marie
Brugière, Sabine
Krasteva, Vasilena
Alipieva, Kalina
Simova, Svetlana
Tchorbadjieva, Magdalena
Goltsev, Vasiliy
Ferro, Myriam
Rolland, Norbert
Djilianov, Dimitar
author_facet Mladenov, Petko
Finazzi, Giovanni
Bligny, Richard
Moyankova, Daniela
Zasheva, Diana
Boisson, Anne-Marie
Brugière, Sabine
Krasteva, Vasilena
Alipieva, Kalina
Simova, Svetlana
Tchorbadjieva, Magdalena
Goltsev, Vasiliy
Ferro, Myriam
Rolland, Norbert
Djilianov, Dimitar
author_sort Mladenov, Petko
collection PubMed
description The resurrection plant Haberlea rhodopensis was used to study dynamics of drought response of photosynthetic machinery parallel with changes in primary metabolism. A relation between leaf water content and photosynthetic performance was established, enabling us to perform a non-destructive evaluation of the plant water status during stress. Spectroscopic analysis of photosynthesis indicated that, at variance with linear electron flow (LEF) involving photosystem (PS) I and II, cyclic electron flow around PSI remains active till almost full dry state at the expense of the LEF, due to the changed protein organization of photosynthetic apparatus. We suggest that, this activity could have a photoprotective role and prevent a complete drop in adenosine triphosphate (ATP), in the absence of LEF, to fuel specific energy-dependent processes necessary for the survival of the plant, during the late states of desiccation. The NMR fingerprint shows the significant metabolic changes in several pathways. Due to the declining of LEF accompanied by biosynthetic reactions during desiccation, a reduction of the ATP pool during drought was observed, which was fully and quickly recovered after plants rehydration. We found a decline of valine accompanied by lipid degradation during stress, likely to provide alternative carbon sources for sucrose accumulation at late stages of desiccation. This accumulation, as well as the increased levels of glycerophosphodiesters during drought stress could provide osmoprotection to the cells.
format Online
Article
Text
id pubmed-4508511
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-45085112015-08-07 In vivo spectroscopy and NMR metabolite fingerprinting approaches to connect the dynamics of photosynthetic and metabolic phenotypes in resurrection plant Haberlea rhodopensis during desiccation and recovery Mladenov, Petko Finazzi, Giovanni Bligny, Richard Moyankova, Daniela Zasheva, Diana Boisson, Anne-Marie Brugière, Sabine Krasteva, Vasilena Alipieva, Kalina Simova, Svetlana Tchorbadjieva, Magdalena Goltsev, Vasiliy Ferro, Myriam Rolland, Norbert Djilianov, Dimitar Front Plant Sci Plant Science The resurrection plant Haberlea rhodopensis was used to study dynamics of drought response of photosynthetic machinery parallel with changes in primary metabolism. A relation between leaf water content and photosynthetic performance was established, enabling us to perform a non-destructive evaluation of the plant water status during stress. Spectroscopic analysis of photosynthesis indicated that, at variance with linear electron flow (LEF) involving photosystem (PS) I and II, cyclic electron flow around PSI remains active till almost full dry state at the expense of the LEF, due to the changed protein organization of photosynthetic apparatus. We suggest that, this activity could have a photoprotective role and prevent a complete drop in adenosine triphosphate (ATP), in the absence of LEF, to fuel specific energy-dependent processes necessary for the survival of the plant, during the late states of desiccation. The NMR fingerprint shows the significant metabolic changes in several pathways. Due to the declining of LEF accompanied by biosynthetic reactions during desiccation, a reduction of the ATP pool during drought was observed, which was fully and quickly recovered after plants rehydration. We found a decline of valine accompanied by lipid degradation during stress, likely to provide alternative carbon sources for sucrose accumulation at late stages of desiccation. This accumulation, as well as the increased levels of glycerophosphodiesters during drought stress could provide osmoprotection to the cells. Frontiers Media S.A. 2015-07-21 /pmc/articles/PMC4508511/ /pubmed/26257765 http://dx.doi.org/10.3389/fpls.2015.00564 Text en Copyright © 2015 Mladenov, Finazzi, Bligny, Moyankova, Zasheva, Boisson, Brugière, Krasteva, Alipieva, Simova, Tchorbadjieva, Goltsev, Ferro, Rolland and Djilianov. http://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) or licensor 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
Mladenov, Petko
Finazzi, Giovanni
Bligny, Richard
Moyankova, Daniela
Zasheva, Diana
Boisson, Anne-Marie
Brugière, Sabine
Krasteva, Vasilena
Alipieva, Kalina
Simova, Svetlana
Tchorbadjieva, Magdalena
Goltsev, Vasiliy
Ferro, Myriam
Rolland, Norbert
Djilianov, Dimitar
In vivo spectroscopy and NMR metabolite fingerprinting approaches to connect the dynamics of photosynthetic and metabolic phenotypes in resurrection plant Haberlea rhodopensis during desiccation and recovery
title In vivo spectroscopy and NMR metabolite fingerprinting approaches to connect the dynamics of photosynthetic and metabolic phenotypes in resurrection plant Haberlea rhodopensis during desiccation and recovery
title_full In vivo spectroscopy and NMR metabolite fingerprinting approaches to connect the dynamics of photosynthetic and metabolic phenotypes in resurrection plant Haberlea rhodopensis during desiccation and recovery
title_fullStr In vivo spectroscopy and NMR metabolite fingerprinting approaches to connect the dynamics of photosynthetic and metabolic phenotypes in resurrection plant Haberlea rhodopensis during desiccation and recovery
title_full_unstemmed In vivo spectroscopy and NMR metabolite fingerprinting approaches to connect the dynamics of photosynthetic and metabolic phenotypes in resurrection plant Haberlea rhodopensis during desiccation and recovery
title_short In vivo spectroscopy and NMR metabolite fingerprinting approaches to connect the dynamics of photosynthetic and metabolic phenotypes in resurrection plant Haberlea rhodopensis during desiccation and recovery
title_sort in vivo spectroscopy and nmr metabolite fingerprinting approaches to connect the dynamics of photosynthetic and metabolic phenotypes in resurrection plant haberlea rhodopensis during desiccation and recovery
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4508511/
https://www.ncbi.nlm.nih.gov/pubmed/26257765
http://dx.doi.org/10.3389/fpls.2015.00564
work_keys_str_mv AT mladenovpetko invivospectroscopyandnmrmetabolitefingerprintingapproachestoconnectthedynamicsofphotosyntheticandmetabolicphenotypesinresurrectionplanthaberlearhodopensisduringdesiccationandrecovery
AT finazzigiovanni invivospectroscopyandnmrmetabolitefingerprintingapproachestoconnectthedynamicsofphotosyntheticandmetabolicphenotypesinresurrectionplanthaberlearhodopensisduringdesiccationandrecovery
AT blignyrichard invivospectroscopyandnmrmetabolitefingerprintingapproachestoconnectthedynamicsofphotosyntheticandmetabolicphenotypesinresurrectionplanthaberlearhodopensisduringdesiccationandrecovery
AT moyankovadaniela invivospectroscopyandnmrmetabolitefingerprintingapproachestoconnectthedynamicsofphotosyntheticandmetabolicphenotypesinresurrectionplanthaberlearhodopensisduringdesiccationandrecovery
AT zashevadiana invivospectroscopyandnmrmetabolitefingerprintingapproachestoconnectthedynamicsofphotosyntheticandmetabolicphenotypesinresurrectionplanthaberlearhodopensisduringdesiccationandrecovery
AT boissonannemarie invivospectroscopyandnmrmetabolitefingerprintingapproachestoconnectthedynamicsofphotosyntheticandmetabolicphenotypesinresurrectionplanthaberlearhodopensisduringdesiccationandrecovery
AT brugieresabine invivospectroscopyandnmrmetabolitefingerprintingapproachestoconnectthedynamicsofphotosyntheticandmetabolicphenotypesinresurrectionplanthaberlearhodopensisduringdesiccationandrecovery
AT krastevavasilena invivospectroscopyandnmrmetabolitefingerprintingapproachestoconnectthedynamicsofphotosyntheticandmetabolicphenotypesinresurrectionplanthaberlearhodopensisduringdesiccationandrecovery
AT alipievakalina invivospectroscopyandnmrmetabolitefingerprintingapproachestoconnectthedynamicsofphotosyntheticandmetabolicphenotypesinresurrectionplanthaberlearhodopensisduringdesiccationandrecovery
AT simovasvetlana invivospectroscopyandnmrmetabolitefingerprintingapproachestoconnectthedynamicsofphotosyntheticandmetabolicphenotypesinresurrectionplanthaberlearhodopensisduringdesiccationandrecovery
AT tchorbadjievamagdalena invivospectroscopyandnmrmetabolitefingerprintingapproachestoconnectthedynamicsofphotosyntheticandmetabolicphenotypesinresurrectionplanthaberlearhodopensisduringdesiccationandrecovery
AT goltsevvasiliy invivospectroscopyandnmrmetabolitefingerprintingapproachestoconnectthedynamicsofphotosyntheticandmetabolicphenotypesinresurrectionplanthaberlearhodopensisduringdesiccationandrecovery
AT ferromyriam invivospectroscopyandnmrmetabolitefingerprintingapproachestoconnectthedynamicsofphotosyntheticandmetabolicphenotypesinresurrectionplanthaberlearhodopensisduringdesiccationandrecovery
AT rollandnorbert invivospectroscopyandnmrmetabolitefingerprintingapproachestoconnectthedynamicsofphotosyntheticandmetabolicphenotypesinresurrectionplanthaberlearhodopensisduringdesiccationandrecovery
AT djilianovdimitar invivospectroscopyandnmrmetabolitefingerprintingapproachestoconnectthedynamicsofphotosyntheticandmetabolicphenotypesinresurrectionplanthaberlearhodopensisduringdesiccationandrecovery