Literature DB >> 31427515

Proglacial freshwaters are significant and previously unrecognized sinks of atmospheric CO2.

Kyra A St Pierre1, Vincent L St Louis2, Sherry L Schiff3, Igor Lehnherr4, Paul G Dainard3, Alex S Gardner5, Pieter J K Aukes3, Martin J Sharp6.   

Abstract

Carbon dioxide (CO2) emissions from freshwater ecosystems are almost universally predicted to increase with climate warming. Glacier-fed rivers and lakes, however, differ critically from those in nonglacierized catchments in that they receive little terrestrial input of organic matter for decomposition and CO2 production, and transport large quantities of easily mobilized comminuted sediments available for carbonate and silicate weathering reactions that can consume atmospheric CO2 We used a whole-watershed approach, integrating concepts from glaciology and limnology, to conclusively show that certain glacier-fed freshwater ecosystems are important and previously overlooked annual CO2 sinks due to the overwhelming influence of these weathering reactions. Using the glacierized Lake Hazen watershed (Nunavut, Canada, 82°N) as a model system, we found that weathering reactions in the glacial rivers actively consumed CO2 up to 42 km downstream of glaciers, and cumulatively transformed the High Arctic's most voluminous lake into an important CO2 sink. In conjunction with data collected at other proglacial freshwater sites in Greenland and the Canadian Rockies, we suggest that CO2 consumption in proglacial freshwaters due to glacial melt-enhanced weathering is likely a globally relevant phenomenon, with potentially important implications for regional annual carbon budgets in glacierized watersheds.

Entities:  

Keywords:  biogeochemistry; carbon; freshwater; glacial meltwaters

Year:  2019        PMID: 31427515      PMCID: PMC6731667          DOI: 10.1073/pnas.1904241116

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  8 in total

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Authors:  Craig A Emmerton; Vincent L St Louis; Elyn R Humphreys; John A Gamon; Joel D Barker; Gilberto Z Pastorello
Journal:  Glob Chang Biol       Date:  2015-12-26       Impact factor: 10.863

2.  Gas exchange-wind speed relation measured with sulfur hexafluoride on a lake.

Authors:  R Wanninkhof; J R Ledwell; W S Broecker
Journal:  Science       Date:  1985-03-08       Impact factor: 47.728

3.  Long-term decline of the Amazon carbon sink.

Authors:  R J W Brienen; O L Phillips; T R Feldpausch; E Gloor; T R Baker; J Lloyd; G Lopez-Gonzalez; A Monteagudo-Mendoza; Y Malhi; S L Lewis; R Vásquez Martinez; M Alexiades; E Álvarez Dávila; P Alvarez-Loayza; A Andrade; L E O C Aragão; A Araujo-Murakami; E J M M Arets; L Arroyo; G A Aymard C; O S Bánki; C Baraloto; J Barroso; D Bonal; R G A Boot; J L C Camargo; C V Castilho; V Chama; K J Chao; J Chave; J A Comiskey; F Cornejo Valverde; L da Costa; E A de Oliveira; A Di Fiore; T L Erwin; S Fauset; M Forsthofer; D R Galbraith; E S Grahame; N Groot; B Hérault; N Higuchi; E N Honorio Coronado; H Keeling; T J Killeen; W F Laurance; S Laurance; J Licona; W E Magnussen; B S Marimon; B H Marimon-Junior; C Mendoza; D A Neill; E M Nogueira; P Núñez; N C Pallqui Camacho; A Parada; G Pardo-Molina; J Peacock; M Peña-Claros; G C Pickavance; N C A Pitman; L Poorter; A Prieto; C A Quesada; F Ramírez; H Ramírez-Angulo; Z Restrepo; A Roopsind; A Rudas; R P Salomão; M Schwarz; N Silva; J E Silva-Espejo; M Silveira; J Stropp; J Talbot; H ter Steege; J Teran-Aguilar; J Terborgh; R Thomas-Caesar; M Toledo; M Torello-Raventos; R K Umetsu; G M F van der Heijden; P van der Hout; I C Guimarães Vieira; S A Vieira; E Vilanova; V A Vos; R J Zagt
Journal:  Nature       Date:  2015-03-19       Impact factor: 49.962

4.  Carbon cycle. Sunlight controls water column processing of carbon in arctic fresh waters.

Authors:  Rose M Cory; Collin P Ward; Byron C Crump; George W Kling
Journal:  Science       Date:  2014-08-22       Impact factor: 47.728

5.  Global carbon dioxide emissions from inland waters.

Authors:  Peter A Raymond; Jens Hartmann; Ronny Lauerwald; Sebastian Sobek; Cory McDonald; Mark Hoover; David Butman; Robert Striegl; Emilio Mayorga; Christoph Humborg; Pirkko Kortelainen; Hans Dürr; Michel Meybeck; Philippe Ciais; Peter Guth
Journal:  Nature       Date:  2013-11-21       Impact factor: 49.962

6.  The world's largest High Arctic lake responds rapidly to climate warming.

Authors:  Igor Lehnherr; Vincent L St Louis; Martin Sharp; Alex S Gardner; John P Smol; Sherry L Schiff; Derek C G Muir; Colleen A Mortimer; Neil Michelutti; Charles Tarnocai; Kyra A St Pierre; Craig A Emmerton; Johan A Wiklund; Günter Köck; Scott F Lamoureux; Charles H Talbot
Journal:  Nat Commun       Date:  2018-03-29       Impact factor: 14.919

7.  Contemporary limnology of the rapidly changing glacierized watershed of the world's largest High Arctic lake.

Authors:  K A St Pierre; V L St Louis; I Lehnherr; S L Schiff; D C G Muir; A J Poulain; J P Smol; C Talbot; M Ma; D L Findlay; W J Findlay; S E Arnott; Alex S Gardner
Journal:  Sci Rep       Date:  2019-03-14       Impact factor: 4.379

8.  Size and frequency of natural forest disturbances and the Amazon forest carbon balance.

Authors:  Fernando D B Espírito-Santo; Manuel Gloor; Michael Keller; Yadvinder Malhi; Sassan Saatchi; Bruce Nelson; Raimundo C Oliveira Junior; Cleuton Pereira; Jon Lloyd; Steve Frolking; Michael Palace; Yosio E Shimabukuro; Valdete Duarte; Abel Monteagudo Mendoza; Gabriela López-González; Tim R Baker; Ted R Feldpausch; Roel J W Brienen; Gregory P Asner; Doreen S Boyd; Oliver L Phillips
Journal:  Nat Commun       Date:  2014-03-18       Impact factor: 14.919

  8 in total
  3 in total

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Journal:  Nat Commun       Date:  2022-04-20       Impact factor: 17.694

2.  Integrating carbon emission, accumulation and transport in inland waters to understand their role in the global carbon cycle.

Authors:  Dominic Vachon; Ryan A Sponseller; Jan Karlsson
Journal:  Glob Chang Biol       Date:  2020-12-09       Impact factor: 10.863

3.  The biogeochemical variability of Arctic thermokarst ponds is reflected by stochastic and niche-driven microbial community assembly processes.

Authors:  Alizée Le Moigne; Maciej Bartosiewicz; Gabriela Schaepman-Strub; Samuel Abiven; Jakob Pernthaler
Journal:  Environ Microbiol       Date:  2020-10-13       Impact factor: 5.491

  3 in total

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