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Luminescence and photosynthesis of marine phytoplankton - a brief presentation of new results

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This volume contains a set of eight papers presenting the results of the latest research into the interaction of light with marine phytoplankton by teams from the Marine Physics Department at the IO PAS in Sopot, and the Department of Environmental Physics at the Pedagogical University of Slupsk. These results were presented at the 'Second Workshop on Luminescence and Photosynthesis of Marine Phytoplankton' (Sopot-Paraszyno, 11-15 October 1999) sponsored by the Polish State Committee for Scientific Research. This introductory article discusses the most important assumptions and objectives of the research, and outlines the latest results. These are subsequently discussed in detail in the following papers: (1) Majchrowski & Ostrowska, Influence of photo- and chromatic acclimation on pigment composition in the sea, (2) Wozniak et al., Model of the 'in vivo' spectral absorption of algal pigments. Part 1. Mathematical apparatus, (3) Majchrowski et al., Model of the 'in vivo'spectral absorption of algal pigments. Part 2. Practical applications of the model, (4) Ostrowska et al., Variability of the specific fluorescence of chlorophyll in the ocean. Part 1. Theory of classical 'in situ' chlorophyll fluorometry, (5) Ostrowska et al., Variability of the specific fluorescence of chlorophyll in the ocean. Part 2. Fluorometric method of chlorophyll a determination, (6) Ficek et al., Influence of non-photosynthetic pigments on the measured quantum yield of photosynthesis, (7) Ficek et al., Variability of the portion of functional PS2 reaction centres in the light of a fluorometric study. For the reader's convenience, we append a list of the symbols denoting the physical quantities used in the texts. The nomenclature and denotations are in line with the conventions employed in the subject literature.
Czasopismo
Rocznik
Strony
137--156
Opis fizyczny
Bibliogr. 62 poz.
Twórcy
autor
  • Institute of Oceanology, Polish Academy of Sciences
  • Institute of Physics, Pedagogical University
autor
  • Institute of Oceanology, Polish Academy of Sciences
  • Institute of Oceanology, Polish Academy of Sciences, Powstańców Warszawy 55, 81-712 Sopot, Poland, wozniak.iopan.gda.pl
Bibliografia
  • 1. Allali K., Bricaud A., Claustre H., 1997, Spatial variations in the chlorophyll-specific absorption coefficients of phytoplankton and photosynthetically active pigments in the equatorial Pacific, J. Geophys. Res., 102, 12413-12423.
  • 2. Babin M., Morel A., Claustre H., Bricaud A., Kolber Z., Falkowski P. G., 1996, Nitrogen- and irradiance-dependent variations of the maximum quantum yield of carbon fixation in eutrophic, mesotrophic and oligotrophic marine systems, Deep-Sea Res., 43, 1241-1272.
  • 3. Bricaud A., Babin M., Morel A., Claustre H., 1995, Variability in the chlorophyll-specific absorption coefficients of natural phytoplankton: analysis and parameterisation, J. Geophys. Res., 100, 13321-13332.
  • 4. Bricaud A., Morel A., Babin M., Allali K., Claustre H., 1998, Variations of light absorption by suspended particles with chlorophyll a concentration in oceanic (case 1) waters: analysis and implications for bio-optical models, J. Geophys. Res., 103, 31033-31044.
  • 5. Clayton R. K., 1980, Photosynthesis: physical mechanisms and chemical patterns, Cambridge Univ. Press, London–New York, 350 pp., (the authors used the Russian translation).
  • 6. Dera J., 1992, Marine physics, Elsevier, Amsterdam–Oxford–New York–Tokyo, 516 pp.
  • 7. Dera J., 1995, Underwater irradiance as a factor affecting primary production, Diss. and monogr., Inst. Oceanol. PAS, Sopot, 7, 110 pp.
  • 8. Falkowski P. G., Kiefer D. A., 1985, Chlorophyll a fluorescence in phytoplankton: relationship to photosynthesis and biomass, J. Plankton Res., 7, 715-731.
  • 9. Falkowski P. G., Wyman K., Ley A. C., Mauzerall D., 1986, Relationship of steady-state photosynthesis to fluorescence in eukaryotic algae, Biochim. Biophys. Acta, 829, 183-192.
  • 10. Ficek D., 2000, Modelling the quantum yield of photosynthesis in various marine systems, Ph. D. thesis, Inst. Oceanol. PAN, Sopot, (in Polish).
  • 11. Ficek D., Ostrowska M., Kuzio M., Pogosyan S. I., 2000b, Variability of the portion of functional PS2 reaction centres in the light of a fluorometric study, Oceanologia, 42 (2), 243-249.
  • 12. Ficek D., Woźniak B., Majchrowski R., Ostrowska M., 2000a, Influence of non-photosynthetic pigments on the measured quantum yield of photosynthesis, Oceanologia, 42 (2), 231-242.
  • 13. Glantz M. H. (ed.), 1988, Societal responses to regional climate change. Forecasting by analogy, West View Press, Boulder–London, 403 pp.
  • 14. Grodziński D. M., 1972, Plant biophysics, Nauk. Dumka, Kiyev, 403 pp., (in Russian).
  • 15. Hapter R., Woźniak B., Dobrowolski K., 1983, Primary production in Ezcurra Inlet during the Antarctic summer of 1977/78, Oceanologia, 15, 175-184.
  • 16. Kaurov Yu. N., Pogosyan S. I., Mikaelyan A. S., Woźniak B., Hapter R., 1996, Chlorophyll thermochemiluminescence as an indicator of the life activity of natural phytoplankton (evaluated in the course of the 23rd voyage of the research vessel ‘Vityaz’), Russian J. Plant Physiol., 43 (4), 552-559, (translated from Fiziol. Rast., 43 (4), 629-637).
  • 17. Kellogg W.W., 1988, Human impact on climate. The evolution of an awareness, [in:] Glantz M. H. (ed.), (op. cit.), 9-33.
  • 18. Kirk J. T. O., 1994, Light and photosynthesis in aquatic ecosystems, Cambridge Univ. Press, London–New York, 509 pp.
  • 19. Koblentz-Mishke O. I. (ed.), 1987, The ecosystems of the Baltic Sea in May–June 1984, Izd. Inst. Okeanol. AN SSSR, Moskva, 439 pp., (in Russian).
  • 20. Koblentz-Mishke O. I., Woźniak B., Kaczmarek S., Konovalov B. V., 1995, The assimilation of light energy by marine phytoplankton. Part 1. The light absorption capacity of the Baltic and Black Sea phytoplankton (methods; relation to chlorophyll concentration), Oceanologia, 37 (2), 145-169.
  • 21. Koblentz-Mishke O. I., Woźniak B., Ochakovskiy Yu. E. (eds.), 1985, Utilisation of solar energy in the photosynthesis of the Baltic and Black Sea phytoplankton, Izd. Inst. Okeanol. AN SSSR, Moskva, 336 pp., (in Russian).
  • 22. Kolber Z., Falkowski P. G., 1993, Use of active fluorescence to estimate phytoplankton photosynthesis ‘in situ’, Limnol. Oceanogr., 38 (8), 1646-1665.
  • 23. Kowda W. A., 1976, Biosphere and man, [in:] Biosphere and its resources, PWN, Warszawa, 9-58, (in Polish).
  • 24. Kożuchowski K., Przybylak R., 1995, The greenhouse effect, Wiedza Powszechna, Warszawa, 220 pp., (in Polish).
  • 25. Lieth H., Whittaker R. H., 1975, Primary productivity of the biosphere, Springer Verlag, Berlin–Heidelberg–New York, 339 pp.
  • 26. Majchrowski R., 2000, Influence of irradiance on the light absorption characteristics of marine phytoplankton, Ph. D. thesis, Inst. Oceanol. PAN, Sopot, (in Polish).
  • 27. Majchrowski R., Ostrowska M., 2000,Influence of photo- and chromatic acclimation on pigment composition in the sea, Oceanologia, 42 (2), 157-175.
  • 28. Majchrowski R., Ostrowska M., 1999, Modified relationships between the occurrence of photoprotecting carotenoids of phytoplankton and Potentially Destructive Radiation in the sea, Oceanologia, 41 (4), 589-599.
  • 29. Majchrowski R., Woźniak B., Dera J., Ficek D., Kaczmarek S., Ostrowska M., Koblentz-Mishke O. I., 2000, Model of the ‘in vivo’ spectral absorption of algal pigments. Part 2. Practical applications of the model, Oceanologia, 42 (2), 191-202.
  • 30. Matorin D. N., Venediktov P. S., Konev Yu. N., Kazemirko Yu. V., Rubin A. B., 1996, Application of a double-flash, impulse, submersible fluorimeter in the determination of photosynthetic activity of natural phytoplankton, Transactions Russian Acad. Sci. – Earth Sci. Sec., 350 (7), 1159-1161.
  • 31. Morel A., 1991, Light and marine photosynthesis: a spectral model with geochemical and climatological implications, Prog. Oceanogr., 26, 263-306.
  • 32. Morel A., Antoine D., Babin M., Dandonneau Y., 1996, Measured and modeled primary production in the northeast Atlantic (Eumeli JGOFS program): the impact of natural variations in photosynthetic parameters on model predictive skill, Deep-Sea Res., 43, 1273-1304.
  • 33. Morel A., Bricaud A., 1981, Theoretical results concerning light absorption in a discrete medium and application to specific absorption of phytoplankton, Deep-Sea Res., 28, 1375-1393.
  • 34. Morel A., Prieur L., 1977, Analysis of variations in ocean color, Limnol. Oceanogr., 22 (4), 709-722.
  • 35. Ostrowska M., 1990, Fluorescence ‘in situ’ method for the determination of chlorophyll a concentration in sea, Oceanologia, 29, 175-202.
  • 36. Ostrowska M., 2000, Using the fluorometric method for marine photosynthesis investigations in the Baltic, Ph. D. thesis, Inst. Oceanol. PAN, Sopot, (in Polish).
  • 37. Ostrowska M., Majchrowski R., Matorin D. N., Woźniak B., 2000a, Variability of the specific fluorescence of chlorophyll in the ocean. Part 1. Theory of classical ‘in situ’ chlorophyll fluorometry, Oceanologia 42 (2), 203-219.
  • 38. Ostrowska M., Matorin D. N., Ficek D., 2000b, Variability of the specific fluorescence of chlorophyll in the ocean. Part 2. Fluorometric method of chlorophyll a determination, Oceanologia, 42 (2), 221-229.
  • 39. Pogosyan S. I., Sivchenko M. A., Maximov V. M., Ostrowska M., 1997, Physiological heterogenity of an algal population: classification of ‘Scenedesmus quadricauda’ cenobia by the features of their photosynthetic apparatus, Oceanologia, 39 (2), 163-175.
  • 40. Rubin A. B., 1995, Principles of organisation and regulation of primary processes of photosynthesis, OHTI PHC RAN, Moskva, 33, 38 pp., (in Russian).
  • 41. Rubin A. B., Kononenko A. A., Shaitan K. V., Paschenko V. Z., Riznichenko G. Yu., 1994, Electron transport in photosynthesis, Biophysics, 39 (2), 173-195.
  • 42. Smekot-Wensierski W., Woźniak B., Grassl H., Doerffer R., 1992, Die Absorptionseigenschaften des marinen Phytoplanktons, GKSS 92/E/105, GKSS–Forschungszentrum Geesthacht GMBH, Geesthacht, 104 pp.
  • 43. Steemann Nielsen E., 1975, Marine photosynthesis with special emphasis on the ecological aspect, Elsevier, Amsterdam–New York–Tokyo, 141 pp.
  • 44. Trenberth K. E. (ed.), 1992, Climate system modelling, Cambridge Univ. Press, London–New York, 788 pp.
  • 45. Vinogradov M. E., Shushkina E. A., 1987, Functioning of pelagic plankton communities in the ocean, Nauka, Moskva, 240 pp., (in Russian).
  • 46. Woźniak B., 1988, Halfempirical mathematical modelling of phytoplankton absorption properties of the World Ocean, Proc. 16th Conf. Baltic Oceanogr., Inst. Mar. Res., Kiel, 1160-1169.
  • 47. Woźniak B., 1987, Semi-empirical mathematical model of photosynthesis process in marine phytoplankton and optical method of estimating the global primary production in the sea, Bull. PAS, Earth Sci., 35, 71-89.
  • 48. Woźniak B., 1990, Statistical relations between photosynthesis and abiotic conditions of the marine environment; an initial prognosis of the World Ocean productivity ensuing from warming up of the Earth, Oceanologia, 29, 147-174.
  • 49. Woźniak B., Dera J., Ficek D., Majchrowski R., Kaczmarek S., Ostrowska M., Koblentz-Mishke O. I., 2000, Model of the ‘in vivo’ spectral absorption of algal pigments. Part 1. Mathematical apparatus, Oceanologia, 42 (2), 177-190.
  • 50. Woźniak B., Dera J., Ficek D., Majchrowski R., Kaczmarek S., Ostrowska M., Koblentz-Mishke O. I., 1999, Modelling the influence of acclimation on the absorption properties of marine phytoplankton, Oceanologia, 41 (2), 187-210.
  • 51. Woźniak B., Dera J., Koblentz-Mishke O. I., 1992a, Bio-optical relationships for estimating primary production in the Ocean, Oceanologia, 33, 5-38.
  • 52. Woźniak B., Dera J., Koblentz-Mishke O. I., 1992b, Modelling the relationship between primary production, optical properties, and nutrients in the sea, Ocean Optics 11, Proc. SPIE, 1750, 246-275.
  • 53. Woźniak B., Dera J., Majchrowski R., Ficek D., Koblentz-Mishke O. I., Darecki M., 1997, ‘IO PAS initial model’ of marine primary production for remote sensing application, Oceanologia, 39 (4), 377-395.
  • 54. Woźniak B., Dera J., Semovski S., Hapter R., Ostrowska M., Kaczmarek S., 1995a, Algorithm for estimating primary production in the Baltic by remote sensing, Stud. i Mater. Oceanol., 68, 91-123.
  • 55. Woźniak B., Hapter R., Dera J., 1989, Light curves of marine plankton photosynthesis in the Baltic, Oceanologia, 27, 61-78.
  • 56. Woźniak B., Hapter R., Maj B., 1983, The inflow of solar energy and the irradiance of the euphotic zone in the region of Ezcurra Inlet during the Antarctic summer of 1977/78, Oceanologia, 15, 141-174.
  • 57. Woźniak B., Ostrowska M., 1990a, Composition and resources of photosynthetic pigments of the sea phytoplankton, Oceanologia, 29, 91-115.
  • 58. Woźniak B., Ostrowska M., 1990b, Optical absorption properties of phytoplankton in various seas, Oceanologia, 29, 117-146.
  • 59. Woźniak B., Pelevin V. N., 1991, Optical classifications of the seas in relation to phytoplankton characteristics, Oceanologia, 31, 25-55.
  • 60. Woźniak B., Smekot-Wensierski W., Darecki M., 1995b, Semi-empirical modelling of backscattering and light reflection coefficients in WC1 seas, Stud. i Mater. Oceanol., 68, 61-90.
  • 61. Woźniak B., Smekot-Wensierski W., Doerfer R., Grassl H., 1994, On the relationship between spectral reflected irradiance at the sea surface and optical properties of marine phytoplankton, Ocean Optics 12, Proc. SPIE, 2258, 976-993.
  • 62. Zvalinsky V. I., 1986, Principles of influence of light intensity and spectral composition on marine phytoplankton, Ph. D. thesis (2nd degree), Akad. Nauk Beloruskoy SSR, Minsk, (in Russian).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BUS8-0014-0062
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