Plants cope with fluctuating light by frequency‐dependent nonphotochemical quenching and cyclic electron transport

Author:

Niu Yuxi1ORCID,Lazár Dušan2ORCID,Holzwarth Alfred R.3ORCID,Kramer David M.4ORCID,Matsubara Shizue1ORCID,Fiorani Fabio1ORCID,Poorter Hendrik15ORCID,Schrey Silvia D.1ORCID,Nedbal Ladislav126ORCID

Affiliation:

1. Institute of Bio‐ and Geosciences/Plant Sciences Forschungszentrum Jülich Wilhelm‐Johnen‐Straße D‐52428 Jülich Germany

2. Department of Biophysics, Faculty of Science Palacký University Šlechtitelů 27 783 71 Olomouc Czech Republic

3. Department of Physics and Astronomy, Faculty of Science Vrije Universiteit Amsterdam De Boelelaan 1105 NL‐1081 HV Amsterdam the Netherlands

4. MSU‐DOE Plant Research Laboratory Michigan State University East Lansing MI 48824 USA

5. Department of Biological Sciences Macquarie University North Ryde NSW 2109 Australia

6. PASTEUR, Department of Chemistry École Normale Supérieure, Université PSL, Sorbonne Université, CNRS 24, rue Lhomond 75005 Paris France

Abstract

Summary In natural environments, plants are exposed to rapidly changing light. Maintaining photosynthetic efficiency while avoiding photodamage requires equally rapid regulation of photoprotective mechanisms. We asked what the operation frequency range of regulation is in which plants can efficiently respond to varying light. Chlorophyll fluorescence, P700, plastocyanin, and ferredoxin responses of wild‐types Arabidopsis thaliana were measured in oscillating light of various frequencies. We also investigated the npq1 mutant lacking violaxanthin de‐epoxidase, the npq4 mutant lacking PsbS protein, and the mutants crr2‐2, and pgrl1ab impaired in different pathways of the cyclic electron transport. The fastest was the PsbS‐regulation responding to oscillation periods longer than 10 s. Processes involving violaxanthin de‐epoxidase dampened changes in chlorophyll fluorescence in oscillation periods of 2 min or longer. Knocking out the PGR5/PGRL1 pathway strongly reduced variations of all monitored parameters, probably due to congestion in the electron transport. Incapacitating the NDH‐like pathway only slightly changed the photosynthetic dynamics. Our observations are consistent with the hypothesis that nonphotochemical quenching in slow light oscillations involves violaxanthin de‐epoxidase to produce, presumably, a largely stationary level of zeaxanthin. We interpret the observed dynamics of photosystem I components as being formed in slow light oscillations partially by thylakoid remodeling that modulates the redox rates.

Funder

Bundesministerium für Bildung und Forschung

European Regional Development Fund

U.S. Department of Energy

Publisher

Wiley

Subject

Plant Science,Physiology

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