Photosynthetica - Ahead of Print
Photosynthetica X:X | DOI: 10.32615/ps.2019.107
Development and aging of photosynthetic apparatus of Vitis vinifera L. during growing season
- 1 Department of Plant Physiology, University of Silesia in Katowice, Katowice, Poland
- 2 Institute for Ecology of Industrial Areas, Katowice, Poland
- 3 Department of Genetics, University of Silesia in Katowice, Katowice, Poland
- 5 Department of Plant Physiology, Warsaw University of Life Sciences (SGGW), Warsaw, Poland
The aim of this study was to examine the development and aging of chosen grapevine leaves in situ during the growing season (130 d) using chlorophyll (Chl) a fluorescence measurements and determining the changes in pigment contents. During the course of photosystems development, the increase of Chl and decrease of anthocyanin contents in leaves was observed simultaneously. On 28th day, the maximum content of Chl and minimum content of anthocyanins was measured. However, the maximal photosynthetic performance was found one week later, when the content of Chl started to diminish. Our study proved that the achievement of maximal photosynthetic performance of each leaf took about quarter of organ life and this state lasted very shortly. In this work, we described and discussed for the first time the dynamics of Chl, anthocyanins, and flavonols combined with photosynthetic efficiency changes during the leaf life in situ.
Keywords: chlorophyll a fluorescence transient; energy flux; photosynthesis; reaction center; senescence.
Received: February 20, 2019; Accepted: July 2, 2019; Prepublished online: August 8, 2019
Supplementary files
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References
- Agati G., Meyer S., Matteini P., Cerovic Z.G.: Assessment of anthocyanins in grape (Vitis vinifera L.) berries using a noninvasive chlorophyll fluorescence method. - J. Agr. Food Chem. 55: 1053-1061, 2007. Go to original source...
- Baker N.R.: Chlorophyll fluorescence: a probe of photosynthesis in vivo. - Annu. Rev. Plant. Biol. 59: 89-113, 2008. Go to original source...
- Balazadeh S., Parlitz S., Mueller-Roeber B., Meyer R.C.: Natural developmental variations in leaf and plant senescence in Arabidopsis thaliana. - Plant Biol. 10: 136-147, 2008. Go to original source...
- Boss P.K., Davies C., Robinson S.P.: Analysis of the expression of anthocyanin pathway genes in developing Vitis vinifera L. cv Shiraz grape berries and the implications for pathway regulation. - Plant Physiol. 111: 1059-1066, 1996. Go to original source...
- Cerovic Z.G., Ben Ghozlen N., Milhade C. et al.: Nondestructive diagnostic test for nitrogen nutrition of grapevine (Vitis vinifera L.) based on Dualex Leaf-Clip measurements in the field. - J. Agr. Food Chem. 63: 3669-3680, 2015. Go to original source...
- Chaves M.M., Zarrouk O., Francisco R. et al.: Grapevine under deficit irrigation: hints from physiological and molecular data. -Ann. Bot.-London 105: 661-676, 2010. Go to original source...
- Daszkowska-Golec A., Skubacz A., Marzec M. et al.: Mutation in HvCBP20 (Cap Binding Protein 20) adapts barley to drought stress at phenotypic and transcriptomic levels. - Front. Plant Sci. 8: 942, 2017. Go to original source...
- Goltsev V.N., Kalaji H.M., Paunov M. et al.: Variable chlorophyll fluorescence and its use for assessing physiological condition of plant photosynthetic apparatus. - Russ. J. Plant Physl+ 63: 869-893, 2016.
- Gonzalez-Mendoza D., Mendez-Trujillo V., Grimaldo-Juarez O. et al.: Changes of photochemical efficiency and epidermal polyphenols content of Prosopis glandulosa and Prosopis juliflora leaves exposed to cadmium and copper. - Open Life Sci. 12: 373-378, 2017. Go to original source...
- Haider M.S., Zhang C., Kurjogi M.M. et al.: Insights into grapevine defense response against drought as revealed by biochemical, physiological and RNA-Seq analysis. - Sci. Rep.-UK 7: 13134, 2017. Go to original source...
- Hichri I. Heppel S.C. Pillet J. et al.: The basic Helix-Loop-Helix transcription factor MYC1 is involved in the regulation of the flavonoid biosynthesis pathway in grapevine. - Mol. Plant 3: 509-523, 2010. Go to original source...
- Hosseini S.A., Maillard A., Hajirezaei M.R. et al.: Induction of barley silicon transporter HvLsi1 and HvLsi2, increased silicon concentration in the shoot and regulated starch and ABA homeostasis under osmotic stress and concomitant potassium deficiency. - Front. Plant Sci. 8: 1359, 2017. Go to original source...
- Ierna A.: Characterization of potato genotypes by chlorophyll fluorescence during plant aging in a Mediterranean environ-ment. - Photosynthetica 45: 568-575, 2007. Go to original source...
- Jaakola L., Määttä-Riihinen K., Kärenlampi S., Hohtola A.: Activation of flavonoid biosynthesis by solar radiation in bilberry (Vaccinium myrtillus L.) leaves. - Planta 218: 721-728, 2004.
- Jaillon O. Aury J.-M. Noel B. et al.: The grapevine genome sequence suggests ancestral hexaploidization in major angio-sperm phyla. - Nature 449: 463-467, 2007.
- Jayaprakasha G.K., Singh R.P., Sakariah K.K.: Antioxidant activity of grape seed (Vitis vinifera) extracts on peroxidation models in vitro. - Food Chem. 73: 285-290, 2001. Go to original source...
- Jiang C.-D., Jiang G.-M., Wang X. et al.: Increased photosynthetic activities and thermostability of photosystem II with leaf development of elm seedlings (Ulmus pumila) probed by the fast fluorescence rise OJIP. - Environ. Exp. Bot. 58: 261-268, 2006b. Go to original source...
- Jiang C.-D., Shi L., Gao H.-Y. et al.: Development of photosystems 2 and 1 during leaf growth in grapevine seedlings probed by chlorophyll a fluorescence transient and 820 nm transmission in vivo. - Photosynthetica 44: 454-463, 2006a.
- Julkunen-Tiitto R. Nenadis N. Neugart S. et al.: Assessing the response of plant flavonoids to UV radiation: An overview of appropriate techniques. - Phytochem. Rev. 14: 273-297, 2015. Go to original source...
- Kadir S., Von Weihe M., Al-Khatib K.: Photochemical efficiency and recovery of photosystem II in grapes after exposure to sudden and gradual heat stress. - J. Am. Soc. Hortic. Sci. 132: 764-769, 2007. Go to original source...
- Kalaji H.M., Oukarroum A., Alexandrov V. et al.: Identification of nutrient deficiency in maize and tomato plants by in vivo chlorophyll a fluorescence measurements. - Plant Physiol. Bioch. 81: 16-25, 2014b. Go to original source...
- Kalaji H.M., Schansker G., Brestič M. et al.: Frequently asked questions about chlorophyll fluorescence, the sequel. - Photosynth. Res. 132: 13-66, 2017. Go to original source...
- Kalaji H.M., Schansker G., Ladle R.J. et al.: Frequently asked questions about in vivo chlorophyll fluorescence: practical issues. - Photosynth. Res. 122: 121-158, 2014a. Go to original source...
- Kolb C.A., Käser M.A., Kopecký J. et al.: Effects of natural intensities of visible and ultraviolet radiation on epidermal ultraviolet screening and photosynthesis in grape leaves. - Plant Physiol. 127: 863-875, 2001. Go to original source...
- Landi M., Tattini M., Gould K.S.: Multiple functional roles of anthocyanins in plant-environment interactions. - Environ. Exp. Bot. 119: 4-17, 2015. Go to original source...
- Lefebvre T., Millery-Vigues A., Gallet C.: Does leaf optical absorbance reflect the polyphenol content of alpine plants along an elevational gradient? - Alpine Bot. 126: 177-185, 2016. Go to original source...
- Lo Piccolo E., Landi M., Pellegrini E. et al.: Multiple conse-quences induced by epidermally-located anthocyanins in young, mature and senescent leaves of Prunus. - Front. Plant Sci. 9: 917, 2018. Go to original source...
- Lu C., Lu Q., Zhang J., Kuang T.: Characterization of photosynthetic pigment composition, photosystem II photochemistry and thermal energy dissipation during leaf senescence of wheat plants growing in field. - J. Exp. Bot. 52: 1805-1810, 2001.
- Lu Q., Lu C., Zhang J., Kuang T.: Photosynthesis and chlorophyll a fluorescence during flag leaf senescence of field-grown wheat plants. - J. Plant Physiol. 159: 1173-1178, 2002. Go to original source...
- Martínez-Lüscher J., Sánchez-Díaz M., Delrot S. et al.: Ultraviolet-B radiation and water deficit interact to alter flavonol and anthocyanin profiles in grapevine berries through transcriptomic regulation. - Plant Cell Physiol. 55: 1925-1936, 2014.
- Mattila H., Valev D., Havurinne V. et al.: Degradation of chlorophyll and synthesis of flavonols during autumn senescence - The story told by individual leaves. - AoB Plants 10: ply028, 2018.
- Mattivi F., Guzzon R., Vrhovsek U. et al.: Metabolite profiling of grape: Flavonols and anthocyanins. - J. Agr. Food Chem. 54: 7692-7702, 2006. Go to original source...
- Mauromicale G., Ierna A., Marchese M.: Chlorophyll fluores-cence and chlorophyll content in field-grown potato as affected by nitrogen supply, genotype, and plant age. - Photosynthetica 44: 76-82, 2006. Go to original source...
- Miersch I., Heise J., Zelmer J., Humbeck K.: Differential degradation of the photosynthetic apparatus during leaf senescence in barley (Hordeum vulgare L.). - Plant Biol. 2: 618-623, 2000. Go to original source...
- Paunov M., Koleva L., Vassilev A. et al.: Effects of different metals on photosynthesis: Cadmium and zinc affect chloro-phyll fluorescence in durum wheat. - Int. J. Mol. Sci. 19: 787, 2018. Go to original source...
- Pogrzeba M., Rusinowski S., Sitko K. et al.: Relationships between soil parameters and physiological status of Miscanthus × giganteus cultivated on soil contaminated with trace elements under NPK fertilisation vs. microbial inoculation. - Environ. Pollut. 225: 163-174, 2017. Go to original source...
- Sitko K., Rusinowski S., Kalaji H.M. et al.: Photosynthetic efficiency as bioindicator of environmental pressure in A. halleri. - Plant Physiol. 175: 290-302, 2017. Go to original source...
- Skórzyńska-Polit E., Drążkiewicz M., Wianowska D. et al.: The influence of heavy metal stress on the level of some flavonols in the primary leaves of Phaseolus coccineus. - Acta Physiol. Plant. 26: 247-254, 2004. Go to original source...
- Tang G., Li X., Lin L. et al.: Combined effects of girdling and leaf removal on fluorescence characteristic of Alhagi sparsifolia leaf senescence. - Plant Biol. 17: 980-989, 2015. Go to original source...
- Tang Y., Wen X., Lu C.: Differential changes in degradation of chlorophyll-protein complexes of photosystem I and photosystem II during flag leaf senescence of rice. - Plant Physiol. Bioch. 43: 193-201, 2005. Go to original source...
- Velasco R., Zharkikh A., Troggio M. et al.: A high quality draft consensus sequence of the genome of a heterozygous grapevine variety. - PLoS ONE 2: e1326, 2007. Go to original source...
- Vitulo N., Forcato C., Corteggiani Carpinelli E. et al.: A deep survey of alternative splicing in grape reveals changes in the splicing machinery related to tissue, stress condition and genotype. - BMC Plant Biol. 14: 99-115, 2014. Go to original source...
- Weng X.-Y., Xu H.-X., Jiang D.-A.: Characteristics of gas exchange, chlorophyll fluorescence and expression of key enzymes in photosynthesis during leaf senescence in rice plants. - J. Integ. Plant Biol. 47: 560-566, 2005. Go to original source...
- Wright H., DeLong J., Lada R., Prange R.: The relationship between water status and chlorophyll a fluorescence in grapes (Vitis spp.). - Postharvest Biol. Tec. 51: 193-199, 2009. Go to original source...
- Ziliotto F., Corso M., Rizzini F.M. et al.: Grape berry ripening delay induced by a pre-véraison NAA treatment is paralleled by a shift in the expression pattern of auxin- and ethylene-related genes. - BMC Plant Biol. 12: 185-200, 2012. Go to original source...