Pansch, Christian; Hiebenthal, Claas (2019): Kiel Indoor Benthocosms [dataset publication series]. PANGAEA, https://doi.org/10.1594/PANGAEA.897938, Supplement to: Pansch, C; Hiebenthal, C (2019): A new mesocosm system to study the effects of environmental variability on marine species and communities. Limnology and Oceanography-Methods, 17(2), 145-162, https://doi.org/10.1002/lom3.10306
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Abstract:
Climate change will shift mean environmental conditions and also increase the frequency and intensity of extreme events, exerting additional stress on ecosystems. While field observations on extremes are emerging, experimental evidence of their biological consequences is rare. Here, we introduce a mesocosm system that was developed to study the effects of environmental variability of multiple drivers (temperature, salinity, pH, light) on single species and communities at various temporal scales (diurnal - seasonal): the Kiel Indoor Benthocosms (KIBs). Both, real- time offsets from field measurements or various dynamic regimes of environmental scenarios, can be implemented, including sinusoidal curve functions at any chosen amplitude or frequency, stochastic regimes matching in situ dynamics of previous years and modelled extreme events. With temperature as the driver in focus, we highlight the strengths and discuss limitations of the system. In addition, we examined the effects of different sinusoidal temperature fluctuation frequencies on mytilid mussel performance. High-frequency fluctuations around a warming mean (+2°C warming, ±2°C fluctuations, wavelength=1.5 days) increased mussel growth as did a constant warming of 2°C. Fluctuations at a lower frequency (+2 and ±2°C, wavelength=4.5 days), however, reduced the mussels' growth. This shows that environmental fluctuations, and importantly their associated characteristics (such as frequency), can mediate the strength of global change impacts on a key marine species. The here presented mesocosm system can help to overcome a major short-coming of marine experimental ecology and will provide more robust data for the prediction of shifts in ecosystem structure and services in a changing and fluctuating world.
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Coverage:
Median Latitude: 54.329919 * Median Longitude: 10.148466 * South-bound Latitude: 54.329903 * West-bound Longitude: 10.148381 * North-bound Latitude: 54.330192 * East-bound Longitude: 10.149911
Date/Time Start: 2016-02-16T10:00:00 * Date/Time End: 2017-04-21T14:00:00
Event(s):
License:
Creative Commons Attribution 4.0 International (CC-BY-4.0)
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9 datasets
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Datasets listed in this publication series
- Pansch, C; Hiebenthal, C (2019): Kiel Indoor Benthocosms: light intensities (Figure 2A). https://doi.org/10.1594/PANGAEA.897942
- Pansch, C; Hiebenthal, C (2019): Kiel Indoor Benthocosms: day light profile (Figure 2B). https://doi.org/10.1594/PANGAEA.897943
- Pansch, C; Hiebenthal, C (2019): Kiel Indoor Benthocosms: applied temperature profiles (Figure 3). https://doi.org/10.1594/PANGAEA.897936
- Pansch, C; Hiebenthal, C (2019): Kiel Indoor Benthocosms: salinity manipulations (Figure 5A). https://doi.org/10.1594/PANGAEA.897937
- Pansch, C; Hiebenthal, C (2019): Kiel Indoor Benthocosms: pH manipulations (Figure 5B). https://doi.org/10.1594/PANGAEA.897945
- Pansch, C; Hiebenthal, C (2019): Kiel Indoor Benthocosms: applied temperature profiles during Experiment 1 (2016) and Experiment 2 (2017) over 50 days (Figure 6 & FS6). https://doi.org/10.1594/PANGAEA.897946
- Pansch, C; Hiebenthal, C (2019): Kiel Indoor Benthocosms: temperature offsets during Experiment 2 and Experiment 1 (Figure 7A & 7B). https://doi.org/10.1594/PANGAEA.904296
- Pansch, C; Hiebenthal, C (2019): Kiel Indoor Benthocosms: temperature effects on Mytilus edulis growth parameters (Figure 8A). https://doi.org/10.1594/PANGAEA.897974
- Pansch, C; Hiebenthal, C (2019): Kiel Indoor Benthocosms: temperature effects on Mytilus edulis condition index (Figure 8B). https://doi.org/10.1594/PANGAEA.897975