Increased CO2 modifies the carbon balance and the photosynthetic yield of two common Arctic brown seaweeds: Desmarestia aculeata and Alaria esculenta

被引:0
作者
Concepción Iñiguez
Raquel Carmona
M. Rosario Lorenzo
F. Xavier Niell
Christian Wiencke
Francisco J. L. Gordillo
机构
[1] University of Malaga,Department of Ecology, Faculty of Sciences
[2] Alfred-Wegener-Institute,Department Functional Ecology
[3] Helmholtz Centre for Marine and Polar Research,undefined
来源
Polar Biology | 2016年 / 39卷
关键词
Carbon concentrating mechanisms; Growth; Macroalgae; Ocean acidification; Photosynthesis; Respiration;
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学科分类号
摘要
Ocean acidification affects with special intensity Arctic ecosystems, being marine photosynthetic organisms a primary target, although the consequences of this process in the carbon fluxes of Arctic algae are still unknown. The alteration of the cellular carbon balance due to physiological acclimation to an increased CO2 concentration (1300 ppm) in the common Arctic brown seaweeds Desmarestia aculeata and Alaria esculenta from Kongsfjorden (Svalbard) was analysed. Growth rate of D. aculeata was negatively affected by CO2 enrichment, while A. esculenta was positively affected, as a result of a different reorganization of the cellular carbon budget in both species. Desmarestia aculeata showed increased respiration, enhanced accumulation of storage biomolecules and elevated release of dissolved organic carbon, whereas A. esculenta showed decreased respiration and lower accumulation of storage biomolecules. Gross photosynthesis (measured both as O2 evolution and 14C fixation) was not affected in any of them, suggesting that photosynthesis was already saturated at normal CO2 conditions and did not participate in the acclimation response. However, electron transport rate changed in both species in opposite directions, indicating different energy requirements between treatments and species specificity. High CO2 levels also affected the N-metabolism, and 13C isotopic discrimination values from algal tissue pointed to a deactivation of carbon concentrating mechanisms. Since increased CO2 has the potential to modify physiological mechanisms in different ways in the species studied, it is expected that this may lead to changes in the Arctic seaweed community, which may propagate to the rest of the food web.
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页码:1979 / 1991
页数:12
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  • [1] Amthor JS(1991)Respiration in a future, higher CO Plant Cell Environ 14 13-20
  • [2] Andría JR(2001) world Bot Mar 44 361-370
  • [3] Brun FG(2000)Acclimation responses of Eur J Phycol 35 53-59
  • [4] Pérez-Lloréns JL(1994) (Rhodophyta) and Plant Physiol 106 1163-1168
  • [5] Vergara JJ(2000) (Chlorophyta) to changes in the external inorganic carbon concentration Eur J Phycol 35 69-74
  • [6] Axelsson L(1993)Utilization of HCO Helgoländer Meeresunters 47 167-191
  • [7] Mercado J(2012) at high pH by the brown macroalga Biogeosciences 9 3405-3423
  • [8] Figueroa F(1967)Acclimation of respiratory O Can J Bot 45 1135-1143
  • [9] Azcón-Bieto J(1991) uptake in green tissues of field-grown native species after long-term exposure to elevated atmospheric CO Ann Bot 67 325-330
  • [10] González-Meler M(2001)Photosynthetic rates of Limnol Oceanogr 46 1378-1391