Abstract
The spectral distributions of light absorption rates by intact leaves are notably different from the incident solar radiation spectra, for reasons that remain elusive. Incident global radiation comprises two main components; direct radiation from the direction of the sun, and diffuse radiation, which is sunlight scattered by molecules, aerosols and clouds. Both irradiance and photon flux density spectra differ between direct and diffuse radiation in their magnitude and profile. However, most research has assumed that the spectra of photosynthetically active radiation (PAR) can be averaged, without considering the radiation classes. We used paired spectroradiometers to sample direct and diffuse solar radiation, and obtained relationships between the PAR spectra and the absorption spectra of photosynthetic pigments and organs. As monomers in solvent, the spectral absorbance of Chl a decreased with the increased spectral irradiance (W m−2 nm−1) of global PAR at noon (R2 = 0.76), and was suitable to avoid strong spectral irradiance (λmax = 480 nm) rather than absorb photon flux density (μmol m−2 s−1 nm−1) efficiently. The spectral absorption of photosystems and the intact thallus and leaves decreased linearly with the increased spectral irradiance of direct PAR at noon (I dir-max), where the wavelength was within the 450–650 nm range (R2 = 0.81). The higher-order structure of photosystems systematically avoided the strong spectral irradiance of I dir-max. However, when whole leaves were considered, leaf anatomical structure and light scattering in leaf tissues made the leaves grey bodies for PAR and enabled high PAR use efficiency. Terrestrial green plants are fine-tuned to spectral dynamics of incident solar radiation and PAR absorption is increased in various structural hierarchies.
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References
Akitsu T, Kume A, Hirose Y, Ijima O, Nasahara KN (2015) On the stability of radiometric ratios of photosynthetically active radiation to global solar radiation in Tsukuba, Japan. Agric For Meteorol 209–210:59–68
Allorent G, Tokutsu R, Roach T, Peers G, Cardol P, Girard-Bascou J, Seigneurin-Berny D, Petroutsos D, Kuntz M, Breyton C, Franck F, Wollman FA, Niyogi KK, Krieger-Liszkay A, Minagawa J, Finazzi G (2013) A dual strategy to cope with high light in Chlamydomonas reinhardtii. Plant Cell 25:545–557
Baker NR, Ort DR, Harbinson J, Whitmarsh J (2004) Sunlight processing: chloroplast to leaf. In: Smith WK et al (eds) Photosynthetic Adaptation: Chloroplast to Landscape. Springer, New York, pp 89–104
Bird R, Riordan C (1986) Simple solar spectral model for direct and diffuse irradiance on horizontal and tilted planes at the Earth’s surface for cloudless atmospheres. J Climate Appl Meteor 25:87–97
Björn LO, Papageorgiou GC, Blankenship RE, Govindjee (2009) A viewpoint: why chlorophyll a? Photosynth Res 99:85–98
Brodersen CR, Vogelmann TC (2010) Do changes in light direction affect absorption profile in leaves? Funct Plant Biol 37:403–412
Brodersen CR, Vogelmann TC, Williams WE, Gorton HL (2008) A new paradigm in leaf-level photosynthesis: direct and diffuse lights are not equal. Plant Cell Environ 31:159–164
Caffarri S, Croce R, Breton J, Bassi R (2001) The major antenna complex of photosystem II has a xanthophyll binding site not involved in light harvesting. J Biol Chem 276:35924–35933
Cinque G, Croce R, Bassi R (2000) Absorption spectra of chlorophyll a and b in Lhcb protein environment. Photosynth Res 64:233–242
Dring MJ (1981) Chromatic adaptation of photosynthesis in benthic marine algae: an examination of its ecological significance using a theoretical model. Limnol Oceanogr 26:271–284
Dutton HJ, Juday C (1944) Chromatic adaptation in relation to color and depth distribution of freshwater phytoplankton and large aquatic plants. Ecology 25:273–282
Engelmann ThW (1883) Farbe und Assimilation. Botanische Zeitung 41:17–29
Evans JR, Anderson JM (1987) Absolute absorption and relative fluorescence excitation spectra of the 5 major chlorophyll-protein complexes from spinach thylakoid membranes. Biochim Biophys Acta 892:75–82
Evans JR, Vogelmann TC, Williams WE, Gorton HL (2004) Chloroplast to Leaf. In: Smith WK et al (eds) Photosynthetic Adaptation: Chloroplast to Landscape. Springer, New York, pp 15–41
French CS (1971) The distribution and action in photosynthesis of several forms of chlorophyll. PNAS 68:2893–2897
Fujita Y, Hattori A (1960) Effect of chromatic lights on phycobilin formation in a blue-green alga, Tolypothrix tenuis. Plant Cell Physiol 1:293–303
Gu L, Baldocchi D, Verma SB, Black TA, Vesala T, Falge EM, Dowty PR (2002) Advantages of diffuse radiation for terrestrial ecosystem productivity. J Geophys Res. doi:10.1029/2001JD001242
Hakala M, Tuominen I, Keränen M, Tyystjärvi T, Tyystjärvi E (2005) Evidence for the role of the oxygen-evolving manganese complex in photoinhibition of Photosystem II. Biochim Biophys Acta 1706:68–80
Haxo FT, Blinks LR (1950) Photosynthetic action spectra of marine algae. J Gen Physiol 33:389–422
Henley WJ, Ramus J (1989) Optimization of pigment content and the limits of photoacclimation for Ulva rotundata (Chlorophyta). Mar Biol 103:267–274
Hogewoning SW, Wientjes E, Douwstra P, Trouwborst G, van Ieperen W, Croce R, Harbinson J (2012) Photosynthetic quantum yield dynamics: from photosystems to leaves. Plant Cell 24:1921–1935
Inada K (1976) Action spectra for photosynthesis in higher plants. Plant Cell Physiol 17:355–365
Kirk JTO (2011) Light and photosynthesis in aquatic ecosystems. Cambridge University Press, Cambridge
Lichtenthaler HK (1987) Chlorophylls and carotenoids: pigments of photosynthetic biomembranes. Meth Enzymol 148:350–382
McCree KJ (1972) The action spectrum, absorptance and quantum yield of photosynthesis in crop plants. Agric Meteorol 9:90–98
Mimuro M, Kakitani K, Tamiaki H (2011) Chlorophylls-structure, reaction and function. Shokabo, Tokyo
Moss RA, Loomis WE (1952) Absorption spectra of leaves. 1. The visible spectrum. Plant Physiol 27:370–391
Nishio JN (2000) Why are higher plants green? Evolution of the higher plant photosynthetic pigment complement. Plant Cell Environ 23:539–548
Noda HM, Motohka T, Murakami K, Muraoka H, Nasahara KN (2014) Reflectance and transmittance spectra of leaves and shoots of 22 vascular plant species and reflectance spectra of trunks and branches of 12 tree species in Japan. Ecol Res 29:111
Oguchi R, Douwstra P, Fujita T, Chow WS, Terashima I (2011) Intra-leaf gradients of photoinhibition induced by different color lights: implications for the dual mechanisms of photoinhibition and for the application of conventional chlorophyll fluorometers. New Phytol 191:146–159
Ohnishi N, Allakhverdiev SI, Takahashi S, Higashi S, Watanabe M, Nishiyama Y, Murata N (2005) Two-step mechanism of photodamage to photosystem II: Step 1 occurs at the oxygen-evolving complex and Step 2 occurs at the photochemical reaction center. Biochem 44:8494–8499
Ramus J (1983) A Physiological test of the theory of complementary chromatic adaptation II. J Phycol 19:173–178
Robinson SA, Waterman MJ (2014) Sunsafe bryopytes: photoprotection from excess and damaging solar radiation. Adv Photosynth Respir 37:113–130
Spitters CJT, Tussaint HAJM, Goudriaan J (1986) Separating the diffuse and direct component of global radiation and its implications for modeling canopy photosynthesis, part I, Components of incoming radiation. Agric For Meteorol 38:217–229
Terashima I, Fujita T, Inoue T, Chow WS, Oguchi R (2009) Green light drives leaf photosynthesis more efficiently than red light in strong white light: revisiting the enigmatic question of Why leaves are green. Plant Cell Physiol 50:684–697
Vogelmann TC (1993) Plant tissue optics. Annu Rev Plant Physiol Plant Mol Biol 44:231–251
Williams M, Rastetter EB, Van der Pol L, Shaver GR (2014) Arctic canopy photosynthetic efficiency enhanced under diffuse light, linked to a reduction in the fraction of the canopy in deep shade. New Phytol 201:1266–1276
Young AJ (1991) The photoprotective role of carotenoids in higher plants. Physiol Plant 83:702–708
Acknowledgments
This research was part of a joint study among NIES, JAXA/EORC, and Aerological Observatory of Japan Meteorological Agency (JMA), and received collaboration of various specialists of the institutions. We thank N. Saigusa (NIES), Y. Hirose (NIES), and H. Murakami (JAXA) for the development and operation of the solar measurement system. We also thank Y. Nakajima (JAXA) for calibration using integrating spheres, and T. Sakai (JMA) for the use of inspection equipment with incident angle characters. We also thank the two anonymous reviewers for their insightful comments and suggestions.
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Kume, A., Akitsu, T. & Nasahara, K.N. Leaf color is fine-tuned on the solar spectra to avoid strand direct solar radiation. J Plant Res 129, 615–624 (2016). https://doi.org/10.1007/s10265-016-0809-0
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DOI: https://doi.org/10.1007/s10265-016-0809-0