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      실내 자외선 노출 실험을 통한 극지 식물플랑크톤(Phaeocystis pouchetii, Porosira glacialis)의 자외선 흡수물질 생성 연구 = Photoinduction of UV-absorbing Compounds and Photo-protective Pigment in Phaeocystis pouchetii and Porosira glacialis by UV Exposure

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      https://www.riss.kr/link?id=A104079776

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      다국어 초록 (Multilingual Abstract)

      Herein, we compared the production rate of UV-absorbing compounds (mycosporine-like amino acids) and carotenoids in two phytoplankton species--Phaeocystis pouchetii and Porosira glacialis--which are the dominant species in Polar Regions under artificial UV radiation conditions. P. pouchetii exposed to UVR and PAR evidenced reductions in the carbon fixation rate, and was not significantly influenced by differing light conditions. However, the concentrations of UV-absorbing compounds and photo-protective pigments of P. pouchetii were increased with increasing exposure time, but P. glacialis maintained constant levels during the UVR exposure experiment. The production rates of MAAs showed a reverse phase between the two phytoplankton species. The carbon fixation rate of P. pouchetii cells was inhibited by exposure to UV radiation, but the production rates of MAAs in P. pouchetii were increased under UV radiation exposure. The carbon fixation rate and production rate of MAAs in P. glacialis were simultaneously inhibited under UV radiation exposure conditions. These results provide us with new information regarding the processes involved in the production of UV-absorbing compounds and photoprotective pigments in two phytoplankton species.
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      Herein, we compared the production rate of UV-absorbing compounds (mycosporine-like amino acids) and carotenoids in two phytoplankton species--Phaeocystis pouchetii and Porosira glacialis--which are the dominant species in Polar Regions under artifici...

      Herein, we compared the production rate of UV-absorbing compounds (mycosporine-like amino acids) and carotenoids in two phytoplankton species--Phaeocystis pouchetii and Porosira glacialis--which are the dominant species in Polar Regions under artificial UV radiation conditions. P. pouchetii exposed to UVR and PAR evidenced reductions in the carbon fixation rate, and was not significantly influenced by differing light conditions. However, the concentrations of UV-absorbing compounds and photo-protective pigments of P. pouchetii were increased with increasing exposure time, but P. glacialis maintained constant levels during the UVR exposure experiment. The production rates of MAAs showed a reverse phase between the two phytoplankton species. The carbon fixation rate of P. pouchetii cells was inhibited by exposure to UV radiation, but the production rates of MAAs in P. pouchetii were increased under UV radiation exposure. The carbon fixation rate and production rate of MAAs in P. glacialis were simultaneously inhibited under UV radiation exposure conditions. These results provide us with new information regarding the processes involved in the production of UV-absorbing compounds and photoprotective pigments in two phytoplankton species.

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      참고문헌 (Reference)

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      1 Klisch M, "Wavelength dependence of mycosporine –like amino acids synthesis in Gyrodinium dorsum" 66 : 60-66, 2002

      2 Behrenfeld MJ, "Ultraviolet-B radiation effects on inorganic nitrogen uptake by natural assemblages of oceanic plankton" 31 (31): 25-36, 1995

      3 Lorenzen CJ, "Ultaviolet radiation and phytoplankton photosynthesis" 24 (24): 1117-1120, 1979

      4 Boelen P, "UVBR-induced DNA damage in natural marine picoplankton assemblages in the tropical Atlantic Ocean" 193 : 1-9, 2000

      5 Sinha RP, "UV-protectants in cyanobacteria" 174 (174): 278-289, 2008

      6 Sommaruga R, "UV-absorbing compounds in planktonic and benthic organisms from a highmountain lake" 144 : 225-269, 1999

      7 Marchant HJ, "UV-B protecting compounds in the marine alga Phaeocystis pouchetii from Antarctica" 109 (109): 391-395, 1991

      8 Moisan TA, "UV absorption by mycosporine-like amino acids in Phaeocystis Antarctica Karsten induced by photosynthetically available radiation" 138 : 217-227, 2001

      9 Xiong F, "The occurrence of UV-B absorbing mycosporine-like amino acids in freshwater and terrestrial microalgae (Chlorophyta)" 6 (6): 37-49, 1999

      10 Tartarotti B, "The effect of different methanol concentrations and temperatures on the extraction of mycosporine-like amino acids (MAAs) in algae and zooplankton" 154 (154): 691-703, 2002

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      16 Dunlap WC, "Small-molecule antioxidants in marine organisms: antioxidant activity of mycosporineglycine" 112 : 105-114, 1995

      17 Rawlings TA, "Shields against ultraviolet radiation: an additional protective role for the egg capsules of benthic marine gastropods" 136 : 81-95, 1996

      18 Zapata M, "Separation of chlorophylls and carotenoids from marine phytoplankton:a new HPLC method using a reversed phase C-8 column and pyridine-containing mobile phases" 195 : 29-45, 2000

      19 Vernet M, "Release of ultraviolet-absorbing compounds by the red-tide dinoflagellate Lingulodinium polyedra" 127 (127): 35-44, 1996

      20 Jeffrey SW, "Qualitative and quantitative HPLC analysis of SCOR reference algal cultures. in: Phytoplankton pigments in oceanography: guidelines to modern methods, vol 10" UNESCO Monographs on Oceanographic Methodology 343-360, 1997

      21 Karentz D, "Prevention of ultraviolet radiation damage in Antarctic marine invertebrates. in: Stratospheric ozone depletion/UVB radiation in the biosphere: Proceedings of NATO advanced research workshop" Springer-Verlag 175-, 1994

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      27 Whitehead K, "Mycosporinelike amino acids (MAAs) in phytoplankton, a herbivorous pteropod (Limacina helicina), and its pteropod predator (Clione antarctica) in McMurdo Bay, Antarctica" 139 (139): 1013-1019, 2001

      28 Singh SP, "Mycosporine-like amino acids (MAAs): Chemical structure, biosynthesis and significance as UV-absorbing/screening compounds" 46 : 7-17, 2008

      29 Adams NL, "Mycosporine-like Amino Acids Provide Protection Against Ultraviolet Radiation in Eggs of the Green Sea Urchin Strongylocentrotus droebachiensis" 64 (64): 149-158, 1996

      30 Ben-Amotz A, "Mode of Action of the Massively Accumulated β-Carotene of Dunaliella bardawil in Protecting the Alga against Damage by Excess Irradiation" 91 (91): 1040-1043, 1989

      31 Goodwin TW, "Metabolism, nutrition, and function of carotenoids" 6 : 273-297, 1986

      32 Hama T, "Measurement of photosynthestic production of a marine phytoplankton population using a stable isotope" 73 : 31-36, 1983

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      34 Sinha RP, "Life under solar UV radiation in aquatic organisms" 30 (30): 1547-1556, 2002

      35 Dohler G, "Impact of solar UV radiation on uptake of 15N-ammonia and 15N-nitrate by marine diatoms and natural phytoplankton" 187 : 293-303, 1991

      36 Helbling EW, "Impact of natural ultraviolet radiation on rates of photosynthesis and on specific marine phytoplankton species" 80 : 89-100, 1992

      37 Park MO, "HPLC method for the analysis of chlorophylls and carotenoids from marine phytoplankton" 32 : 46-55, 1997

      38 Bidigare RR, "Evidence for a photoprotective function for secondary carotenoids of snow algae" 29 (29): 427-434, 1995

      39 Häder DP, "Effects on aquatic ecosystems" 46 (46): 53-68, 1998

      40 Häder DP, "Effects of solar UV radiation on aquatic ecosystems and interactions with climate change" 6 (6): 267-285, 2007

      41 Wägberg Sk, "Effects of UV-B radiation on synthesis of mycosporine-like amino acid and growth in Heterocapsa triquetra (Dinophyceae)" 37 (37): 141-146, 1997

      42 Davidson AT, "Effects of UV-B irradiation on growth and survival of Antarctic marine diatoms" 119 (119): 507-515, 1994

      43 Goes JI, "Effect of UVB radiation on the fatty acid composition of the marine phytoplankter Tetraselmis sp.: relationship to cellular pigments" 114 : 259-274, 1994

      44 Laurion I, "Distribution of mycosporine-like amino acids and photprotective carotenoids among freshwatr phytoplankton assemblages" 26 : 283-294, 2002

      45 Moeller RE, "Dietary acquisition of photoprotective compounds (mycosporine-like amino acids, carotenoids) and acclimation to ulraviolet radiation in a freshwater copepod" 50 (50): 427-439, 2005

      46 Sinha RP, "Database on mycosporines and mycosporine-like amino acids (MAAs) in fungi, cyanobacteria, macroalgae, phytoplankton and animals" 89 (89): 29-35, 2007

      47 Karentz D, "Chemical defenses of marine organisms against solar radiation exposure: UV-absorbing mycosporinelike amino acids and scytonemin" CRC Press 481-520, 2001

      48 Karentz D, "Cell survival characteristics and molecular responses of Antarctic phytoplankton to ultraviolet-B radiation" 27 (27): 326-341, 1991

      49 Pearl HW, "Carotenoid enhancement and its role in maintaining blue-green algal (Microcystis aeruginosa) surface blooms" 28 : 847-857, 1983

      50 Fryxell GA, "Austral spring microalgae across the Weddell Sea ice edge: spatial relationships found along a northward transect during AMERIEZ 83" 35 (35): 1-20, 1988

      51 Garrison DL, "Algal assemblages in antarctic pack ice and in ice-edge plankton" 23 : 564-572, 1987

      52 Garcia-Pichel F, "A model for internal self-shading in phlaktonic orgaisms and its implications for the usefulness of ultraviolet sunscreens" 39 (39): 1704-1717, 1994

      53 Volkmann M, "A broadly applicable method for extraction and characterization of mycosporines and mycosporine-like amino acids of terrestrial, marine and freshwater origin" 255 (255): 286-295, 2006

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      영문명 : Korea Ocean Research and Development Institute -> Korea Institute of Ocean Science & Technology
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