Abstract
Abstract
Background
Benthic invertebrate communities are an integral and longstanding component of stream biomonitoring. However, multiple stressors driven by global change threaten benthic invertebrate communities. In particular, climate warming is expected to disrupt freshwater ecosystems. While an increasing number of studies have shown changes in benthic invertebrate community composition in response to climate warming, the effect on stream assessments has rarely been investigated. As several community composition metrics are also used in stream assessments, we predicted that climate warming would worsen stream assessment results. Therefore, we used a comprehensive data set of 2865 benthic invertebrate samples taken between 2000 and 2014 from small central European low mountain streams. We examined the effects of changes in temperature on common community and stream assessment metrics. We used 31 metrics covering composition, richness, tolerance and function of communities, of which many are used in various stream assessment schemes.
Results
Against our expectations, we identified a decreasing air temperature trend of − 0.18 °C over 15 years. This trend was accompanied by significant changes in community composition, for example, increases in species richness and decreases in the community temperature index (CTI). Further, we identified slight concomitant improvements of various globally used stream quality assessment metrics, such as a decreasing saprobic index and an increasing BMWP.
Conclusions
While temperature increased by + 0.9 °C during the past 30 years (1985–2014), our 15-year study period (2000–2014) showed a decrease by − 0.18 °C. Therefore, we regard the concomitant improvement in several assessment metrics as a recovery from prior increasing temperatures. In turn, we assume that increases in water temperature will lead to opposite effects and therefore cause declining assessment results. Water managers should be aware of this linkage that in turn could provide a chance to mitigate the effects of global warming by, for example, planting trees along the rivers and the removal of artificial barriers to increase current velocity to minimize a warming effect.
Publisher
Springer Science and Business Media LLC
Reference75 articles.
1. Altieri AH, Gedan KB (2015) Climate change and dead zones. Glob Change Biol 21:1395–1406
2. Armitage PD, Moss D, Wright JT, Furse MT (1983) The performance of the new biological water quality score system based on macroinvertebrates over a wide range of unpolluted running watersites. Water Res 17:333–347
3. Arora R, Tockner K, Venohr M (2016) Changing river temperatures in northern Germany: trends and drivers of change. Hydrol Process 30:3084–3096
4. Bálint M, Domisch S, Engelhardt CHM, Haase P, Lehrian S, Sauer J, Nowak C (2011) Cryptic biodiversity loss linked to global climate change. Nat Clim Change 1:313
5. Barbour MT, Gerritsen J, Snyder BD, Stribling JB (1997) Revision to rapid bioassessment protocols for use in streams and rivers. Periphyton, benthic macroinvertebrates and fish
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