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In order to lower the phytoplankton biomass in lakes it is theoretically most effective to reduce the nutrient that is actually limiting. However, it is widely assumed that the abundance and N₂-fixation rate of N₂-fixing cyanobacteria (Nostocales) would increase in response to reduced N loading, and thereby render efforts to improve water quality by N reduction ineffective. Nostocales N₂-fixation has a huge energy demand and consequently the light intensity may affect the response of Nostocales biovolume and N₂-fixation to varying N additions. This led to the following aims, for which three different sets of experiments were conducted.
(i) Determination of the seasonal dynamic of N- and P-limitation for four lakes of differing lake types in the German lowlands and testing the power of four N:P ratios to predict the limiting nutrient: Biweekly experiments were performed in 4 lakes differing in lake. For the shallow lakes there was a trend from P limitation in spring to N or light limitation in summer and autumn, while the deep lake remained predominantly P limited. The ability of in-lake N:P ratios to predict the relative strength of N vs. P limitation was tested using linear regression. All four N:P ratios had significant positive relationships with the response ratio to N and P additions, but the TN:TP and DIN:TP ratios performed best. Nitrogen limitation was predictable, frequent and persistent, suggesting that nitrogen reduction could play a role in water quality management.
(ii) Determination of the response of Nostocales biovolume and N₂-fixation to varying N additions: To achieve this, an experiment with water from an N limited lake (LAN) was conducted. While the Nostocales biovolume did not respond to varying N additions, the N₂-fixation increased in low N microcosms. To quantify the extent to which Nostocales compensated for the varying N addition rate, we calculated a compensation rate (CR). By the end of the experiment a CR of 36 % was reached. However, at biovolumes typical for summer in LAN the CR would be much lower. Therefore, in shallow polymictic lakes like LAN, reduced N loading may lower both in-lake N concentrations and biovolumes of non-fixing phytoplankton without significantly impacting Nostocales biovolume.
(iii) Determination of the effect of the light intensity on the response of Nostocales biovolume and N₂-fixation to varying N additions: To accomplish this aim another microcosm experiment with water from LAN was conducted. While at low and intermediate light intensities the reduction of N addition had no effect on Nostocales biovolume, at high light intensities it led to an increase. The N₂-fixation increased at all light intensities when N addition got reduced. This positive response to a reduction in N addition increased with light, showing that Nostocales may take advantage of being able to fix N₂ mainly at high light intensities.