References
- Riznichenko G.Iu., Rubin A.B. Dinamicheskie modeli elektronnogo transporta v fotosinteze (Dynamic models of electron transport in photosynthesis). Moscow: Publishing House of the Institute of Computer Research, 2020. 331 p. (in Russ.).
- Lokstein H., Renger G., Götze J.P. Photosynthetic light-harvesting (antenna) complexes – structures and functions. Molecules. 2021;26. doi: 10.3390/molecules26113378
- Büchel C. Light harvesting complexes in chlorophyll c-containing algae. BBA – Bioenergetics. 2019. doi: 10.1016/j.bbabio.2019.05.003
- Karapetyan N.V., Bolychevtseva Yu.V., Yurina N.P., Terekhova I.V., Shubin V.V., Brecht M. Review: Long-Wavelength Chlorophylls in Photosystem I of Cyanobacteria: Origin, Localization, and Functions. Biochemistry (Moscow). 2014;79(3):221. doi: 10.1134/S0006297914030067
- Cunningham F.X., Dennenberg R.J., Mustardy L., Jursinic P.A., Gantt E. Stoichiometry of photosystem I, photosystem II, and phycobilisomes in the red alga Porphyridium cruentum as a function of growth irradiance. Plant Physiol. 1989;91(. 3):1179–1187. doi: 10.1104/pp.91.3.1179
- Boichenko V.A. Review: Photosynthetic Units of Phototrophic Organisms. Biochemistry (Moscow). 2004;69(5):471. doi: 10.1023/B:BIRY.0000029844.31857.40
- Stadnichuk I.N., Tropin I.V. Phycobiliproteins: Structure, Functions And Biotechnological Applications. Applied Biochemistry and Microbiology. 2017;53(1). doi: 10.1134/S0003683817010185
- Fang Y., Liu D., Jiang J., He A., Zhu R., Tian L. Photoprotective energy quenching in the red alga Porphyridium purpureum occurs at the core antenna of the photosystem II but not at its reaction center. J. Biol. Chem. 2022;298(4). doi: 10.1016/j.jbc.2022.101783
- Rubin A.B., Krendeleva T.E. Regulation of the primary photosynthesis processes. Biophysics. 2004;49(2):223–237.
- Vetoshkina D.V. Rol' peroksida vodoroda v adaptatsii fotosinteticheskogo apparata k usloviiam osveshcheniia (The role of hydrogen peroxide in the adaptation of the photosynthetic apparatus to lighting conditions): PhD Thesis. Pushchino, 2016. 23 p. (in Russ.).
- Krasnovsky A.A. Singlet molecular oxygen in photobiochemical systems: IR phosphorescence studies. Membr. Cell Biol. 1998;12(5):665–690.
- Lingvay M., Akhtar P., Sebok-Nagy K., Páli T., Lambrev P. Photobleaching of chlorophyll in light-harvesting complex ii increases in lipid environment. Front. Plant Sci. 2020;11. doi: 10.3389/fpls.2020.00849
- Zavorueva E.N., Zavoruev V.V., Krum S.P. Labil'nost' pervoi fotosistemy fototrofov v razlichnykh usloviiakh okruzhaiushchei sredy (Lability of the first photosystem of phototrophs under different environmental conditions). Krasnoiarsk, 2011. 152 p. (in Russ.).
- Falkowski P.G., Owens T.G. Light-shade adaptation: two strategies in marine phytoplankton. Plant Physiol. 1980;66:592–595. doi: 10.1104/pp.66.4.592
- Tan S., Wolfe G.R., Cunningham F.X., Gantt E. Decrease of polypeptides in the PS I antenna complex with increasing growth irradiance in the red alga Porphyridium cruentum. Photosyn. Res. 1995;45:1–10. doi: 10.1007/BF00032230
- Lelekov A.S., Trenkenshu R.P. Modeling Of Chlorophyll a Content in Microalgae Cultures. Mathematical Biology and Bioinformatics. 2020;15(2):158–171. doi: 10.17537/2020.15.158
- Geider R.J. Light and temperature dependence of the carbon to chlorophyll a ratio in microalgae and cyanobacteria: implications for physiology and growth of phytoplankton. New Phytol. 1987;106(1):1–34. doi: 10.1111/j.1469-8137.1987.tb04788.x
- Borovkov A.B. Ekologiya morya (Ecology of the Sea). 2010;80:17–24 (in Russ.).
- Macintyre H.L., Kana T.M., Anning T., Geider R.J. Photoacclimation of photosynthesis irradiance response curves and photosynthetic pigments in microalgae and cyanobacteria. J. Phycol. 2002;38:17–38. doi: 10.1046/j.1529-8817.2002.00094.x
- Lelekov A.S., Trenkenshu R.P. Modeling of the macromolecular composition dynamics of microalgae batch culture. Computer Research and Modeling. 2023;15(3):739–756. doi: 10.20537/2076-7633-2023-15-3-739-756
- Borovkov A.B., Gudvilovich I.N., Lelekov A.S., Avsiyan A.L. Effect of specific irradiance on productivity and pigment and protein production of Porphyridium purpureum (Rhodophyta) semi-continuous culture. Bioresource Technology. 2023;374. doi: 10.1016/j.biortech.2023.128771
- Wu H., Li T., Lv J., Chen Z., Wu J., Wang N., Wu H., Xiang W. Growth and biochemical composition characteristics of Arthrospira platensis induced by simultaneous nitrogen deficiency and seawater-supplemented medium in an outdoor raceway pond in winter. Foods. 2021;10. doi: 10.3390/foods10122974
- Trenkenshu R. P., Lelekov A. S., Novikova T. M. Linear growth of marine microalgae culture. Marine Biological Journal. 2018;3(1):53–60. doi: 10.21072/mbj.2018.03.1.06
- Jallet D., Caballero M., Gallina A., Youngblood M. Photosynthetic physiology and biomass partitioning in the model diatom Phaeodactylum tricornutum grown in a sinusoidal light regime. Algal Research. 2016;18:51–60. doi: 10.1016/j.algal.2016.05.014
- Losh J.L., Young J.N., François M.M. Morel. Rubisco is a small fraction of total protein in marine phytoplankton. New Phytologist. 2013;198(1):52–58. doi: 10.1111/nph.12143
- Antal T.K. Mekhanizmy adaptatsii fotosinteticheskogo apparata k nedostatku osnovnykh elementov mineral'nogo pitaniia (Mechanisms of adaptation of the photosynthetic apparatus to the lack of essential mineral nutrients): PhD Thesis. Moscow, 2018. 46 p. (in Russ.).
- Trenkenshu R.P. Influence of light on macromolecular composition of microalgae in continuous culture of low density (Part 2). Issues of Modern Alcology. 2017;3(15). http://algology.ru/1241 (accessed 09 September 2025).
- Lelekov A.S., Trenkenshu R.P. Two-Component Model of Microalgae Growth in the Turbidostat. Mathematical Biology and Bioinformatics. 2021;16(1):101–114. doi: 10.17537/2021.16.101
- Geider R.J., Osborne B.A. Respiration and microalgal growth: a review of the quantitative relationship between dark respiration and growth. New Phytol. 1989;112(3):327–341. doi: 10.1111/j.1469-8137.1989.tb00321.x
- Torzillo G., Sacchi A., Materassi R., Richmond A. Effect of temperature on yield and night biomass loss in Spirulina platensis grown outdoors in tubular photobioreactors. J. Appl. Phycol. 1991;3:103–109. doi: 10.1007/BF00003691
|
|
|