Impact of nutrients and water level changes on submerged macrophytes along a temperature gradient: A pan‐European mesocosm experiment

水生植物 中观 富营养化 环境科学 营养物 优势(遗传学) 水位 水文学(农业) 生态学 生物 地质学 地理 生物化学 地图学 基因 岩土工程
作者
Zeynep Ersoy,Ulrike Scharfenberger,Didier L. Baho,Tuba Bucak,Tõnu Feldmann,Josef Hejzlar,Eti Ester Levi,Aldoushy Mahdy,Tiina Nõges,Eva Papastergiadou,Konstantinos Stefanidis,Michal Šorf,Martin Søndergaard,Cristina Trigal,Erik Jeppesen,Meryem Beklioğlu
出处
期刊:Global Change Biology [Wiley]
卷期号:26 (12): 6831-6851 被引量:62
标识
DOI:10.1111/gcb.15338
摘要

Abstract Submerged macrophytes are of key importance for the structure and functioning of shallow lakes and can be decisive for maintaining them in a clear water state. The ongoing climate change affects the macrophytes through changes in temperature and precipitation, causing variations in nutrient load, water level and light availability. To investigate how these factors jointly determine macrophyte dominance and growth, we conducted a highly standardized pan‐European experiment involving the installation of mesocosms in lakes. The experimental design consisted of mesotrophic and eutrophic nutrient conditions at 1 m (shallow) and 2 m (deep) depth along a latitudinal temperature gradient with average water temperatures ranging from 14.9 to 23.9°C (Sweden to Greece) and a natural drop in water levels in the warmest countries (Greece and Turkey). We determined percent plant volume inhabited (PVI) of submerged macrophytes on a monthly basis for 5 months and dry weight at the end of the experiment. Over the temperature gradient, PVI was highest in the shallow mesotrophic mesocosms followed by intermediate levels in the shallow eutrophic and deep mesotrophic mesocosms, and lowest levels in the deep eutrophic mesocosms. We identified three pathways along which water temperature likely affected PVI, exhibiting (a) a direct positive effect if light was not limiting; (b) an indirect positive effect due to an evaporation‐driven water level reduction, causing a nonlinear increase in mean available light; and (c) an indirect negative effect through algal growth and, thus, high light attenuation under eutrophic conditions. We conclude that high temperatures combined with a temperature‐mediated water level decrease can counterbalance the negative effects of eutrophic conditions on macrophytes by enhancing the light availability. While a water level reduction can promote macrophyte dominance, an extreme reduction will likely decrease macrophyte biomass and, consequently, their capacity to function as a carbon store and food source.
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