Scinovex
review Open AccessTop 10% cited

Green Light Drives Leaf Photosynthesis More Efficiently than Red Light in Strong White Light: Revisiting the Enigmatic Question of Why Leaves are Green

Plant and Cell Physiology · 2009 · Vol. 50(4) · pp. 684–697
Ichiro TerashimaTakashi FujitaTakeshi InoueWah Soon ChowRiichi Oguchi

Abstract

The literature and our present examinations indicate that the intra-leaf light absorption profile is in most cases steeper than the photosynthetic capacity profile. In strong white light, therefore, the quantum yield of photosynthesis would be lower in the upper chloroplasts, located near the illuminated surface, than that in the lower chloroplasts. Because green light can penetrate further into the leaf than red or blue light, in strong white light, any additional green light absorbed by the lower chloroplasts would increase leaf photosynthesis to a greater extent than would additional red or blue light. Based on the assessment of effects of the additional monochromatic light on leaf photosynthesis, we developed the differential quantum yield method that quantifies efficiency of any monochromatic light in white light. Application of this method to sunflower leaves clearly showed that, in moderate to strong white light, green light drove photosynthesis more effectively than red light. The green leaf should have a considerable volume of chloroplasts to accommodate the inefficient carboxylation enzyme, Rubisco, and deliver appropriate light to all the chloroplasts. By using chlorophylls that absorb green light weakly, modifying mesophyll structure and adjusting the Rubisco/chlorophyll ratio, the leaf appears to satisfy two somewhat conflicting requirements: to increase the absorptance of photosynthetically active radiation, and to drive photosynthesis efficiently in all the chloroplasts. We also discuss some serious problems that are caused by neglecting these intra-leaf profiles when estimating whole leaf electron transport rates and assessing photoinhibition by fluorescence techniques.

Photosynthetic Processes and MechanismsLight effects on plantsPlant responses to elevated CO2PhotosynthesisChloroplastPhotosynthetically active radiationChlorophyllPhotoinhibitionRuBisCOBotanyChlorophyll fluorescencePhotosynthetic efficiencyAbsorptance

MeSH terms

ChlorophyllChloroplastsFluorometryHelianthusLightModels, BiologicalPhotosynthesisRibulose-Bisphosphate CarboxylasePlant Leaves

Funding

  • University of Tokyo
  • Japan Society for the Promotion of Science
Citations
731
FWCI
6.18
field-weighted impact
References
70
Percentile
97%
vs. same field & year
Citations per year
References
Physiological plant anatomy
Bulletin of Miscellaneous Information (Royal Gardens Kew) · 2010 · 611 citations
The relationship between the quantum yield of photosynthetic electron transport and quenching of chlorophyll fluorescence
Biochimica et Biophysica Acta (BBA) - General Subjects · 1989 · 8,536 citations
A new paradigm for the action of reactive oxygen species in the photoinhibition of photosystem II
Biochimica et Biophysica Acta (BBA) - Bioenergetics · 2006 · 719 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.

Green Light Drives Leaf Photosynthesis More Efficiently than Red Light in Strong White Light: Revisiting the Enigmatic Question of Why Leaves are Green · Scinovex