Variability in Ice Cover Does Not Affect Annual Metabolism Estimates in a Small Eutrophic Reservoir

IF 3.7 3区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES Journal of Geophysical Research: Biogeosciences Pub Date : 2024-07-17 DOI:10.1029/2024JG008057
Dexter W. Howard, Jennifer A. Brentrup, David C. Richardson, Abigail S. L. Lewis, Freya E. Olsson, Cayelan C. Carey
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Abstract

Temperate reservoirs and lakes worldwide are experiencing decreases in ice cover, which will likely alter the net balance of gross primary production (GPP) and respiration (R) in these ecosystems. However, most metabolism studies to date have focused on summer dynamics, thereby excluding winter dynamics from annual metabolism budgets. To address this gap, we analyzed 6 years of year-round high-frequency dissolved oxygen data to estimate daily rates of net ecosystem production (NEP), GPP, and R in a eutrophic, dimictic reservoir that has intermittent ice cover. Over 6 years, the reservoir exhibited slight heterotrophy during both summer and winter. We found winter and summer metabolism rates to be similar: summer NEP had a median rate of −0.06 mg O2 L−1 day−1 (range: −15.86 to 3.20 mg O2 L−1 day−1), while median winter NEP was −0.02 mg O2 L−1 day−1 (range: −8.19 to 0.53 mg O2 L−1 day−1). Despite large differences in the duration of ice cover among years, there were minimal differences in NEP among winters. Overall, the inclusion of winter data had a limited effect on annual metabolism estimates in a eutrophic reservoir, likely due to short winter periods in this reservoir (ice durations 0–35 days), relative to higher-latitude lakes. Our work reveals a smaller difference between winter and summer NEP than in lakes with continuous ice cover. Ultimately, our work underscores the importance of studying full-year metabolism dynamics in a range of aquatic ecosystems to help anticipate the effects of declining ice cover across lakes worldwide.

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冰盖变化不会影响一个小型富营养化水库的年新陈代谢估计值
全球温带水库和湖泊的冰盖正在减少,这可能会改变这些生态系统的初级生产总量(GPP)和呼吸作用(R)的净平衡。然而,迄今为止,大多数新陈代谢研究都侧重于夏季动态,从而将冬季动态排除在年度新陈代谢预算之外。为了弥补这一不足,我们分析了 6 年的全年高频溶解氧数据,以估算一个间歇性冰盖的富营养化二洼地水库的生态系统净生产(NEP)、GPP 和 R 的日速率。在 6 年时间里,该水库在夏季和冬季都表现出轻微的异营养现象。我们发现冬季和夏季的新陈代谢率相似:夏季 NEP 的中位数为 -0.06 mg O2 L-1 天-1(范围:-15.86 至 3.20 mg O2 L-1 天-1),而冬季 NEP 的中位数为 -0.02 mg O2 L-1 天-1(范围:-8.19 至 0.53 mg O2 L-1 天-1)。尽管不同年份的冰盖持续时间有很大差异,但不同冬季的 NEP 差异很小。总体而言,纳入冬季数据对富营养化水库的年新陈代谢估计值影响有限,这可能是由于该水库的冬季较短(结冰期为 0-35 天),与高纬度湖泊相比。我们的研究结果表明,冬季和夏季 NEP 之间的差异要小于有连续冰盖的湖泊。最终,我们的研究强调了在一系列水生生态系统中研究全年新陈代谢动态的重要性,以帮助预测冰盖减少对全球湖泊的影响。
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来源期刊
Journal of Geophysical Research: Biogeosciences
Journal of Geophysical Research: Biogeosciences Earth and Planetary Sciences-Paleontology
CiteScore
6.60
自引率
5.40%
发文量
242
期刊介绍: JGR-Biogeosciences focuses on biogeosciences of the Earth system in the past, present, and future and the extension of this research to planetary studies. The emerging field of biogeosciences spans the intellectual interface between biology and the geosciences and attempts to understand the functions of the Earth system across multiple spatial and temporal scales. Studies in biogeosciences may use multiple lines of evidence drawn from diverse fields to gain a holistic understanding of terrestrial, freshwater, and marine ecosystems and extreme environments. Specific topics within the scope of the section include process-based theoretical, experimental, and field studies of biogeochemistry, biogeophysics, atmosphere-, land-, and ocean-ecosystem interactions, biomineralization, life in extreme environments, astrobiology, microbial processes, geomicrobiology, and evolutionary geobiology
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