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光合动力学决定了淡水微藻对溶解无机碳的竞争结果:对酸化湖泊的影响

Photosynthetic kinetics determine the outcome of competition for dissolved inorganic carbon by freshwater microalgae: implications for acidified lakes.

作者信息

Williams T G, Turpin D H

机构信息

Department of Biology, Queen's University, K7L 3N6, Kingston, Ontario, Canada.

出版信息

Oecologia. 1987 Sep;73(2):307-311. doi: 10.1007/BF00377523.

Abstract

Photosynthetic kinetics with respect to dissolved inorganic carbon were used to predict the outcome of competition for DIC between the green alga Selenastrum minutum and the cyanobacterium Synechococcus leopoliensis at pH 6.2, 7.5, and 10. Based on measured values of the maximum rate of photosynthesis, the half-saturation value of photosynthesis with respect to DIC (K ), and the DIC compensation point, it was predicted that S. leopoliensis would lower the steady-state DIC concentration below the DIC compensation point of S. minutum. This should result in competitive displacement of the green alga at a rate equivalent to the chemostat dilution rate. This prediction was validated by carrying out competition experiments over the range of pH. These results suggest that the low levels of DIC in air-equilibrated acidified lakes may be an important rate-limiting resource and hence affect phytoplankton community structure. Furthermore, the low levels of DIC in these systems may be below the DIC compensation point for some species, thereby precluding their growth at acid pH solely as a function of DIC limitation. The potential importance of DIC in shaping phytoplankton community structure in acidified systems is discussed.

摘要

利用关于溶解无机碳的光合动力学来预测绿藻微小月形藻(Selenastrum minutum)和蓝细菌利奥波利斯聚球藻(Synechococcus leopoliensis)在pH值为6.2、7.5和10时对溶解无机碳(DIC)的竞争结果。根据测得的最大光合速率、光合作用相对于DIC的半饱和值(K )以及DIC补偿点的值,预测利奥波利斯聚球藻会将稳态DIC浓度降低到微小月形藻的DIC补偿点以下。这应该会导致绿藻以与恒化器稀释率相当的速率被竞争性取代。通过在该pH范围内进行竞争实验验证了这一预测。这些结果表明,在与空气平衡的酸化湖泊中低水平的DIC可能是一种重要的速率限制资源,因此会影响浮游植物群落结构。此外,这些系统中低水平的DIC可能低于某些物种的DIC补偿点,从而仅由于DIC限制就排除了它们在酸性pH下的生长。本文讨论了DIC在塑造酸化系统中浮游植物群落结构方面的潜在重要性。

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