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Earlier winter/spring runoff and snowmelt during warmer winters lead to lower summer chlorophyll-a in north temperate lakes

  • Allison R. Hrycik
  • , Peter D. F. Isles
  • , Rita Adrian
  • , Matthew Albright
  • , Linda C. Bacon
  • , Stella A. Berger
  • , Ruchi Bhattacharya
  • , Hans-Peter Grossart
  • , Josef Hejzlar
  • , Amy Lee Hetherington
  • , Lesley B. Knoll
  • , Alo Laas
  • , Cory P. McDonald
  • , Kellie Merrell
  • , Jens C. Nejstgaard
  • , Kirsten Nelson
  • , Peeter Nõges
  • , Andrew M. Paterson
  • , Rachel M. Pilla
  • , Dale M. Robertson
  • Lars G. Rudstam, James A. Rusak, Steven Sadro, Eugene A. Silow, Jason D. Stockwell, Huaxia Yao, Kiyoko Yokota, Donald C. Pierson
  • University of Vermont
  • Eawag - Swiss Federal Institute of Aquatic Science and Technology
  • Leibniz Institute of Freshwater Ecology and Inland Fisheries
  • State University of New York at Oneonta
  • Maine Department of Environmental Protection
  • University of Waterloo
  • Potsdam University
  • Institute of Hydrobiology, Biology Centre of the Academy of Sciences of the Czech Republic
  • Virginia Tech
  • University of Minnesota Twin Cities
  • Estonian University of Life Sciences
  • Michigan Technological University
  • Vermont Department of Environmental Conservation
  • ENVIRONMENTAL SERVICES, NEW HAMPSHIRE DEPARTMENT OF
  • Ontario Ministry of the Environment
  • Miami University
  • USGS Wisconsin Water Science Center
  • Cornell University
  • University of California Davis
  • Irkutsk State University
  • Uppsala University

Research output: Contribution to journalArticlepeer-review

42 Scopus citations

Abstract

Winter conditions, such as ice cover and snow accumulation, are changing rapidly at northern latitudes and can have important implications for lake processes. For example, snowmelt in the watershed—a defining feature of lake hydrology because it delivers a large portion of annual nutrient inputs—is becoming earlier. Consequently, earlier and a shorter duration of snowmelt are expected to affect annual phytoplankton biomass. To test this hypothesis, we developed an index of runoff timing based on the date when 50% of cumulative runoff between January 1 and May 31 had occurred. The runoff index was computed using stream discharge for inflows, outflows, or for flows from nearby streams for 41 lakes in Europe and North America. The runoff index was then compared with summer chlorophyll-a (Chl-a) concentration (a proxy for phytoplankton biomass) across 5–53 years for each lake. Earlier runoff generally corresponded to lower summer Chl-a. Furthermore, years with earlier runoff also had lower winter/spring runoff magnitude, more protracted runoff, and earlier ice-out. We examined several lake characteristics that may regulate the strength of the relationship between runoff timing and summer Chl-a concentrations; however, our tested covariates had little effect on the relationship. Date of ice-out was not clearly related to summer Chl-a concentrations. Our results indicate that ongoing changes in winter conditions may have important consequences for summer phytoplankton biomass and production.
Original languageEnglish
Pages (from-to)4615-4629
Number of pages15
JournalGlobal Change Biology
Volume27
Issue number19
DOIs
StatePublished - Oct 1 2021

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 13 - Climate Action
    SDG 13 Climate Action

Keywords

  • chlorophyll-a
  • climate change
  • long-term data
  • phytoplankton biomass
  • snowmelt
  • stream discharge

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