Literature DB >> 24696521

The redox potential of the plastoquinone pool of the cyanobacterium Synechocystis species strain PCC 6803 is under strict homeostatic control.

R Milou Schuurmans1, J Merijn Schuurmans, Martijn Bekker, Jacco C Kromkamp, Hans C P Matthijs, Klaas J Hellingwerf.   

Abstract

A method is presented for rapid extraction of the total plastoquinone (PQ) pool from Synechocystis sp. strain PCC 6803 cells that preserves the in vivo plastoquinol (PQH2) to -PQ ratio. Cells were rapidly transferred into ice-cold organic solvent for instantaneous extraction of the cellular PQ plus PQH2 content. After high-performance liquid chromatography fractionation of the organic phase extract, the PQH2 content was quantitatively determined via its fluorescence emission at 330 nm. The in-cell PQH2-PQ ratio then followed from comparison of the PQH2 signal in samples as collected and in an identical sample after complete reduction with sodium borohydride. Prior to PQH2 extraction, cells from steady-state chemostat cultures were exposed to a wide range of physiological conditions, including high/low availability of inorganic carbon, and various actinic illumination conditions. Well-characterized electron-transfer inhibitors were used to generate a reduced or an oxidized PQ pool for reference. The in vivo redox state of the PQ pool was correlated with the results of pulse-amplitude modulation-based chlorophyll a fluorescence emission measurements, oxygen exchange rates, and 77 K fluorescence emission spectra. Our results show that the redox state of the PQ pool of Synechocystis sp. strain PCC 6803 is subject to strict homeostatic control (i.e. regulated between narrow limits), in contrast to the more dynamic chlorophyll a fluorescence signal.

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Year:  2014        PMID: 24696521      PMCID: PMC4012603          DOI: 10.1104/pp.114.237313

Source DB:  PubMed          Journal:  Plant Physiol        ISSN: 0032-0889            Impact factor:   8.340


  67 in total

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2.  Redox potential of plastoquinone A in spinach chloroplasts.

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3.  Concerning a dual function of coupled cyclic electron transport in leaves.

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Journal:  Photosynth Res       Date:  2009-01-17       Impact factor: 3.573

Review 5.  Plastid lipid droplets at the crossroads of prenylquinone metabolism.

Authors:  Lucia Eugeni Piller; Marion Abraham; Peter Dörmann; Felix Kessler; Céline Besagni
Journal:  J Exp Bot       Date:  2012-02       Impact factor: 6.992

6.  Interplay between non-photochemical plastoquinone reduction and re-oxidation in pre-illuminated Chlamydomonas reinhardtii: a chlorophyll fluorescence study.

Authors:  Pierre-Alain Houyoux; Bart Ghysels; Renaud Lecler; Fabrice Franck
Journal:  Photosynth Res       Date:  2011-09-24       Impact factor: 3.573

7.  Continuous recording of photochemical and non-photochemical chlorophyll fluorescence quenching with a new type of modulation fluorometer.

Authors:  U Schreiber; U Schliwa; W Bilger
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8.  Nonphotochemical quenching of chlorophyll fluorescence in Chlamydomonas reinhardtii.

Authors:  Giovanni Finazzi; Giles N Johnson; Luca Dall'Osto; Francesca Zito; Giulia Bonente; Roberto Bassi; Francis-André Wollman
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  13 in total

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Journal:  J Bacteriol       Date:  2014-07-14       Impact factor: 3.490

2.  Distinguishing the Roles of Thylakoid Respiratory Terminal Oxidases in the Cyanobacterium Synechocystis sp. PCC 6803.

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Journal:  Plant Physiol       Date:  2016-04-18       Impact factor: 8.340

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4.  Acclimation to High CO2 Requires the ω Subunit of the RNA Polymerase in Synechocystis.

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Authors:  Que Chen; Jeroen B van der Steen; Jos C Arents; Aloysius F Hartog; Srividya Ganapathy; Willem J de Grip; Klaas J Hellingwerf
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6.  Comparison of the Photosynthetic Yield of Cyanobacteria and Green Algae: Different Methods Give Different Answers.

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Review 7.  Synechocystis: Not Just a Plug-Bug for CO2, but a Green E. coli.

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Review 8.  Systems and photosystems: cellular limits of autotrophic productivity in cyanobacteria.

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Review 9.  Cyanobacterial Oxygenic Photosynthesis is Protected by Flavodiiron Proteins.

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10.  Cyanobacterial Alkanes Modulate Photosynthetic Cyclic Electron Flow to Assist Growth under Cold Stress.

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