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Evaluating bloom potential of the green-tide forming alga Ulva ohnoi under ocean acidification and warming.
Kang, Eun Ju; Han, A-Reum; Kim, Ju-Hyoung; Kim, Il-Nam; Lee, Sukyeon; Min, Jun-Oh; Nam, Bo-Ra; Choi, Young-Joon; Edwards, Matthew S; Diaz-Pulido, Guillermo; Kim, Changsin.
Affiliation
  • Kang EJ; Department of Marine Science, Incheon National University, Incheon 22012, Republic of Korea.
  • Han AR; Faculty of Marine Applied Biosciences, Kunsan National University, Gunsan 54150, Republic of Korea; Jeolla High School, Jeollabukdo Office of Education, Jeonju 54863, Republic of Korea.
  • Kim JH; Faculty of Marine Applied Biosciences, Kunsan National University, Gunsan 54150, Republic of Korea. Electronic address: juhyoung@kunsan.ac.kr.
  • Kim IN; Department of Marine Science, Incheon National University, Incheon 22012, Republic of Korea.
  • Lee S; Faculty of Marine Applied Biosciences, Kunsan National University, Gunsan 54150, Republic of Korea.
  • Min JO; Department of Marine Science and Convergence Engineering, Hanyang University, Ansan 15588, Republic of Korea.
  • Nam BR; Department of Biology, Kunsan National University, Gunsan 54150, Republic of Korea.
  • Choi YJ; Department of Biology, Kunsan National University, Gunsan 54150, Republic of Korea.
  • Edwards MS; Department of Biology, San Diego State University, 5500 Campanile Dr., San Diego, CA 92182, USA.
  • Diaz-Pulido G; School of Environment and Science and Australian Rivers Institute-Coast & Estuaries, Nathan Campus, Griffith University, 170 Kessels Road, Nathan, QLD 4111, Australia.
  • Kim C; Fisheries Resource Management Division, National Institute of Fisheries Science, Busan 46083, Republic of Korea.
Sci Total Environ ; 769: 144443, 2021 May 15.
Article in En | MEDLINE | ID: mdl-33493906
ABSTRACT
The occurrence of green-tides, whose bloom potential may be increased by various human activities and biogeochemical process, results in enormous economic losses and ecosystem collapse. In this study, we investigated the ecophysiology of the subtropical green-tide forming alga, Ulva ohnoi complex (hereafter U. ohnoi), under simulated future ocean conditions in order to predict its bloom potential using photosynthesis and growth measurements, and stable isotope analyses. Our mesocosm system included four experimental conditions that simulated the individual and combined effects of elevated CO2 and temperature, namely control (450 µatm CO2 & 20 °C), acidification (900 µatm CO2 & 20 °C), warming (450 µatm CO2 & 25 °C), and greenhouse (900 µatm CO2 & 25 °C). Photosynthetic electron transport rates (rETR) increased significantly under acidification conditions, but net photosynthesis and growth were not affected. In contrast, rETR, net photosynthesis, and growth all decreased significantly under elevated temperature conditions (i.e. both warming and greenhouse). These results represent the imbalance of energy metabolism between electron transport and O2 production that may be expected under ocean acidification conditions. This imbalance appears to be related to carbon and nitrogen assimilation by U. ohnoi. In particular, 13C and 15N discrimination data suggest U. ohnoi prefers CO2 and NH4+ over HCO3- and NO3- as sources of carbon and nitrogen, respectively, and this results in increased N content in the thallus under ocean acidification conditions. Together, our results suggest a trade-off in which the bloom potential of U. ohnoi could increase under ocean acidification due to greater N accumulation and through the saving of energy during carbon and nitrogen metabolism, but that elevated temperatures could decrease U. ohnoi's bloom potential through a decrease in photosynthesis and growth.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Ulva Limits: Humans Language: En Journal: Sci Total Environ Year: 2021 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Ulva Limits: Humans Language: En Journal: Sci Total Environ Year: 2021 Document type: Article