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Nonphotochemical Chlorophyll Fluorescence Quenching: Mechanism and Effectiveness in Protecting Plants from Photodamage

PLANT PHYSIOLOGY · 2016 · Vol. 170(4) · pp. 1903–1916
Alexander V. Ruban

Abstract

We review the mechanism underlying nonphotochemical chlorophyll fluorescence quenching (NPQ) and its role in protecting plants against photoinhibition. This review includes an introduction to this phenomenon, a brief history of major milestones in our understanding of NPQ, definitions, and a discussion of quantitative measurements of NPQ We discuss the current knowledge and unknown aspects in the NPQ scenario, including the following: ΔpH, the proton gradient (trigger); light-harvesting complex II (LHCII), PSII light harvesting antenna (site); and changes in the antenna induced by ΔpH (change), which lead to the creation of the quencher We conclude that the minimum requirements for NPQ in vivo are ΔpH, LHCII complexes, and the PsbS protein. We highlight the most important unknown in the NPQ scenario, the mechanism by which PsbS acts upon the LHCII antenna. Finally, we describe a novel, emerging technology for assessing the photoprotective "power" of NPQ and the important findings obtained through this technology.

Photosynthetic Processes and MechanismsPlant Stress Responses and ToleranceLight effects on plantsPhotoinhibitionChlorophyll fluorescenceQuenching (fluorescence)Non-photochemical quenchingBiophysicsPhotoprotectionChemistryChlorophyllFluorescencePhotosystem II

MeSH terms

ChlorophyllFluorescenceLightModels, BiologicalPhotosystem II Protein ComplexPhotochemical Processes

Funding

  • Biotechnology and Biological Sciences Research Council
Citations
966
FWCI
34.81
field-weighted impact
References
169
Percentile
100%
vs. same field & year
Citations per year
References
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