Ocean deoxygenation dampens resistance of diatoms to ocean acidification in darkness
文献类型: 外文期刊
第一作者: Sun, Jia-Zhen
作者: Sun, Jia-Zhen;Gao, Kunshan;Sun, Jia-Zhen;Gao, Kunshan;Sun, Jia-Zhen;Zhang, Di;Yi, Xiangqi;Beardall, John
作者机构:
关键词: ocean deoxygenation; diatom; darkness tolerance; prolonged darkness; seed bank
期刊名称:FRONTIERS IN MARINE SCIENCE ( 影响因子:3.7; 五年影响因子:4.7 )
ISSN:
年卷期: 2024 年 11 卷
页码:
收录情况: SCI
摘要: Respiratory activity in the oceans is declining due to the expansion of hypoxic zones and progressive deoxygenation, posing threats to marine organisms along with impacts of concurrent ocean acidification. Therefore, understanding the combined impacts of reduced pO(2) and elevated pCO(2) on marine primary producers is of considerable significance. Here, to simulate diatoms' sinking into the aphotic zone of turbid coastal water, we exposed the diatoms Thalassiosira pseudonana and Thalassiosira weissflogii in darkness at 20 degrees C to different levels of pO(2) and pCO(2) conditions for similar to 3 weeks, and monitored their biomass density, photosynthetic activity and dark respiration, and examined their recovery upon subsequent exposure to light at 20 degrees C, simulating surface water conditions. Along with decreased cell abundance and size, measured photosynthetic capacity and dark respiration rates in these two diatoms both gradually decreased during the prolonged darkness. Reduced pO(2) alone did not negatively affect the photosynthetic machinery in both the dark-survived diatom, and enhanced their subsequent recovery upon light exposure. Nevertheless, the combination of the elevated pCO(2) and reduced pO(2) (equivalent to hypoxia) led to the biomass loss by about 90% in T. pseudonana, and delayed the recovery of both species upon subsequent exposure to light, though it did not reduce the cell concentration of T. weissflogii during the elongated darkness. Our results suggest that reduced O-2 availability diminishes the abilities of the diatoms to cope with the acidic stress associated with ocean acidification, and the expansion of hypoxic waters could delay the photosynthetic recovery of coastal diatoms when they are transported upwards through mixing from dark layers to sunlit waters.
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