| Literature DB >> 33956797 |
Maximilian Berthold1, Martin Paar2.
Abstract
Aquatic ecosystems nowadays are under constant pressure, either from recent or historical events. In most systems with increased nutrient supply, submerged macrophytes got replaced by another stable state, dominated by phytoplankton as main primary producer. Yet, reducing the nutrient supply did not yield the aimed goal of restored habitats for submerged macrophytes in systems worldwide. The question arises, why submerged macrophytes do not re-colonize, and if they are actually competitive. Therefore, primary production assays were conducted in ex-situ bentho-pelagic mesocosms and compared to the actual ecosystem, a turbid brackish lagoon of the southern Baltic Sea. Mesocosm were either manipulated to be colonized by macrophytes, or stayed phytoplankton dominated. Oxygen evolution was monitored over a period of five months in 5 min (mesocosms) to 10 min (ecosystem) intervals. Surface and depth-integrated production was calculated to analyse seasonal and areal resolved production patterns. It was found that macrophyte mesocosms were more stable, when considering only surfaceEntities:
Year: 2021 PMID: 33956797 PMCID: PMC8101763 DOI: 10.1371/journal.pone.0247696
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Fig 1Time series of photosynthetic active radiation (PAR), temperature, chlorophyll a (Chl a) and oxygen concentration.
PAR and Chl a concentration, temperature and oxygen concentration are shown as daily average. Solid lines represent weekly running means fitted to oxygen concentration in mesocosm with (blue line) and without (orange line) macrophytes and the Zingster Strom (magenta line). The green line represents the oxygen saturation concentration.
Photosynthetic production vs. irradiance curve parameters (± standard error) based on the Walsby [23] equation fitted to the data and averaged for four different temperature ranges.
| Photosynthetic parameters | Temperature | |||
|---|---|---|---|---|
| <17°C | >17°C <20°C | >20°C <23°C | >23°C | |
| Macrophyte mesocosm | ||||
| 3.3±0.05 | 3.4±0.03 | 3.5±0.03 | 3.6±0.04 | |
| 300.2±10.0 | 342.7±8.5 | 431.1±7.8 | 461.9±17.9 | |
| 59.4 | 68.3 | 95.5 | 91.3 | |
| 92.3 | 101.9 | 123.2 | 128.8 | |
| Phytoplankton mesocosm | ||||
| 3.1±0.1 | 3.1±0.1 | 3.0±0.1 | 3.1±0.1 | |
| 271.5±9.4 | 370.0±5.1 | 466.5±8.3 | 524.8±8.0 | |
| 58.2 | 73.3 | 114.8 | 83.2 | |
| 89.4 | 126.8 | 159.4 | 181.4 | |
| Zingster Strom | ||||
| 3.7±0.01 | 3.6±0.01 | 3.8±0.02 | 3.9±0.01 | |
| 284.4±2.6 | 331.0±3.7 | 382.1±3.5 | 422.5±2.0 | |
| 31.4 | 41.6 | 54.6 | 65.6 | |
| 83.6 | 92.7 | 101.7 | 108.6 | |
α: initial slope of the light saturation curve μmol O2 mg Chl a-1 h-1 (μmol photons m-2 s-1)-1; P: the maximum production rate μmol O2 mg Chl a-1 h-1; I: light compensation point (μmol photons m-2 s-1); I: point where the linear initial slope intersects with the light intensity of P [29] (μmol photons m-2 s-1), to denote the onset of light saturation.
Fig 2Chl-normalized (μmol O2 μg-1 Chl a h-1) based on phytoplankton biomass (Chlorophyll a μg l-1) and volumetric (μmol O2 l-1 h-1) hourly oxygen production in phytoplankton mesocosms.
Production values represent averaged hourly values calculated from daily production values divided by hours of daylight. Confidence intervals are based on standard deviations of pooled, averaged Chl-concentrations (interval steps at 3 μg l-1).
Fig 3A–Surface net community production (mmol O2 l-1 d-1), the sum of daytime production and night time respiration, in macrophyte mesocosms (blue), phytoplankton mesocosms (orange), and the Zingster Strom (magenta). Dates of cleaning and sampling including the following day were removed prior the analysis. Weekly running mean of daily values are shown. B–Surface daytime gross primary production, in macrophyte mesocosms (blue), phytoplankton mesocosms (orange) and the Zingster Strom (magenta), calculated as the integrated sum of net daytime production and a daytime respiration demand. Daytime respiration was calculated from the average night time respiration rate of the respective system and multiplied by the hours of daylight. Values represent only the production around the sensor at the respective depths.
Fig 4A–Depth-integrated daily net community production (mmol O2 m-2 d-1), the sum of daytime production and night time respiration, and daytime gross community production (mmol O2 m-2 d-1), calculated as the integrated sum of net daytime production and a daytime respiration demand, in macrophyte mesocosms (blue), and phytoplankton mesocosms (orange). The heterotroph region (mmol O2 m-2 d-1 < 0) is shaded orange. Daytime respiration was calculated from the average night time respiration rate of the respective system and multiplied by the hours of daylight. Dates of cleaning and sampling including the following day were removed prior the analysis. Weekly running mean of daily values are shown. B Depth-integrated daily net community production and daytime gross community production in the Zingster Strom (magenta) calculated as stated above. Please note the different scaling.