Abrupt transformation of West Greenland lakes following compound climate extremes associated with atmospheric rivers

J Jasmine E. Saros (Climate Change Institute, University of Maine) V Václava Hazuková (Climate Change Institute, University of Maine) R Robert M. Northington (Department of Biology, Elizabethtown College) G Grayson P. Huston (Climate Change Institute, University of Maine) A Avery Lamb (Climate Change Institute, University of Maine) S Sean Birkel (Climate Change Institute, University of Maine) R Ryan Pereira (The Lyell Centre, Heriot-Watt University) G Guillaume Bourdin B Binbin Jiang (School of Mechanical and Energy Engineering, Zhejiang University of Science and Technology) S Suzanne McGowan (Department of Aquatic Ecology, Netherlands Institute of Ecology)

Abstract

Arctic ecosystems are affected by accelerated warming as well as the intensification of the hydrologic cycle, yet understanding of the impacts of compound climate extremes (e.g., simultaneous extreme heat and rainfall) remains limited, despite their high potential to alter ecosystems. Here, we show that the aquatic ecosystems in historically arid West Greenland have undergone an ecological transformation after a series of atmospheric rivers that simultaneously produced record heat and rainfall hit the region in autumn 2022. We analyzed a unique, long-term lake dataset and found that compound climate extremes pushed Arctic lakes across a tipping point. As terrestrial–aquatic linkages were strengthened, lakes synchronously transformed from “blue” lakes with high transparency and low pelagic primary production to “brown” in less than a year, owing to a large influx of dissolved organic material and metals, with iron concentrations increasing by more than two orders of magnitude. The browning of lake waters reduced light penetration by 50% across lakes. The resulting light limitation altered plankton distributions and community structure, including a major reduction in prokaryotic diversity and an increase in algal groups capable of metabolizing organic carbon sources. As a result, lakes shifted from being summer carbon sinks to sources, with a >350% increase in carbon dioxide flux from lakes to the atmosphere. The remarkably rapid, coherent transformation of these Arctic ecosystems underscores the synergistic and unpredictable impacts of compound extreme events and the importance of their seasonal timing, especially in regions with negative moisture balance.

Article Details

Volume / Issue Vol. 122, Issue 4
Published January 28, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

J

Jasmine E. Saros

Climate Change Institute, University of Maine

V

Václava Hazuková

Climate Change Institute, University of Maine

R

Robert M. Northington

Department of Biology, Elizabethtown College

G

Grayson P. Huston

Climate Change Institute, University of Maine

A

Avery Lamb

Climate Change Institute, University of Maine

S

Sean Birkel

Climate Change Institute, University of Maine

R

Ryan Pereira

The Lyell Centre, Heriot-Watt University

G

Guillaume Bourdin

B

Binbin Jiang

School of Mechanical and Energy Engineering, Zhejiang University of Science and Technology

S

Suzanne McGowan

Department of Aquatic Ecology, Netherlands Institute of Ecology