Literature DB >> 25043014

A shift of thermokarst lakes from carbon sources to sinks during the Holocene epoch.

K M Walter Anthony1, S A Zimov2, G Grosse3, M C Jones4, P M Anthony1, F S Chapin5, J C Finlay6, M C Mack7, S Davydov2, P Frenzel8, S Frolking9.   

Abstract

Thermokarst lakes formed across vast regions of Siberia and Alaska during the last deglaciation and are thought to be a net source of atmospheric methane and carbon dioxide during the Holocene epoch. However, the same thermokarst lakes can also sequester carbon, and it remains uncertain whether carbon uptake by thermokarst lakes can offset their greenhouse gas emissions. Here we use field observations of Siberian permafrost exposures, radiocarbon dating and spatial analyses to quantify Holocene carbon stocks and fluxes in lake sediments overlying thawed Pleistocene-aged permafrost. We find that carbon accumulation in deep thermokarst-lake sediments since the last deglaciation is about 1.6 times larger than the mass of Pleistocene-aged permafrost carbon released as greenhouse gases when the lakes first formed. Although methane and carbon dioxide emissions following thaw lead to immediate radiative warming, carbon uptake in peat-rich sediments occurs over millennial timescales. We assess thermokarst-lake carbon feedbacks to climate with an atmospheric perturbation model and find that thermokarst basins switched from a net radiative warming to a net cooling climate effect about 5,000 years ago. High rates of Holocene carbon accumulation in 20 lake sediments (47 ± 10 grams of carbon per square metre per year; mean ± standard error) were driven by thermokarst erosion and deposition of terrestrial organic matter, by nutrient release from thawing permafrost that stimulated lake productivity and by slow decomposition in cold, anoxic lake bottoms. When lakes eventually drained, permafrost formation rapidly sequestered sediment carbon. Our estimate of about 160 petagrams of Holocene organic carbon in deep lake basins of Siberia and Alaska increases the circumpolar peat carbon pool estimate for permafrost regions by over 50 per cent (ref. 6). The carbon in perennially frozen drained lake sediments may become vulnerable to mineralization as permafrost disappears, potentially negating the climate stabilization provided by thermokarst lakes during the late Holocene.

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Year:  2014        PMID: 25043014     DOI: 10.1038/nature13560

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  8 in total

1.  Climate change. Permafrost and the global carbon budget.

Authors:  Sergey A Zimov; Edward A G Schuur; F Stuart Chapin
Journal:  Science       Date:  2006-06-16       Impact factor: 47.728

2.  Speleothems reveal 500,000-year history of Siberian permafrost.

Authors:  A Vaks; O S Gutareva; S F M Breitenbach; E Avirmed; A J Mason; A L Thomas; A V Osinzev; A M Kononov; G M Henderson
Journal:  Science       Date:  2013-02-21       Impact factor: 47.728

3.  Methane bubbling from Siberian thaw lakes as a positive feedback to climate warming.

Authors:  K M Walter; S A Zimov; J P Chanton; D Verbyla; F S Chapin
Journal:  Nature       Date:  2006-09-07       Impact factor: 49.962

4.  Siberian peatlands a net carbon sink and global methane source since the early Holocene.

Authors:  L C Smith; G M MacDonald; A A Velichko; D W Beilman; O K Borisova; K E Frey; K V Kremenetski; Y Sheng
Journal:  Science       Date:  2004-01-16       Impact factor: 47.728

5.  Land-use change, not climate, controls organic carbon burial in lakes.

Authors:  N J Anderson; R D Dietz; D R Engstrom
Journal:  Proc Biol Sci       Date:  2013-08-21       Impact factor: 5.349

6.  14CH4 measurements in Greenland ice: investigating last glacial termination CH4 sources.

Authors:  Vasilii V Petrenko; Andrew M Smith; Edward J Brook; Dave Lowe; Katja Riedel; Gordon Brailsford; Quan Hua; Hinrich Schaefer; Niels Reeh; Ray F Weiss; David Etheridge; Jeffrey P Severinghaus
Journal:  Science       Date:  2009-04-24       Impact factor: 47.728

7.  Thermokarst lakes as a source of atmospheric CH4 during the last deglaciation.

Authors:  K M Walter; M E Edwards; G Grosse; S A Zimov; F S Chapin
Journal:  Science       Date:  2007-10-26       Impact factor: 47.728

8.  The deep permafrost carbon pool of the Yedoma region in Siberia and Alaska.

Authors:  Jens Strauss; Lutz Schirrmeister; Guido Grosse; Sebastian Wetterich; Mathias Ulrich; Ulrike Herzschuh; Hans-Wolfgang Hubberten
Journal:  Geophys Res Lett       Date:  2013-12-11       Impact factor: 4.720

  8 in total
  18 in total

Review 1.  Climate change and the permafrost carbon feedback.

Authors:  E A G Schuur; A D McGuire; C Schädel; G Grosse; J W Harden; D J Hayes; G Hugelius; C D Koven; P Kuhry; D M Lawrence; S M Natali; D Olefeldt; V E Romanovsky; K Schaefer; M R Turetsky; C C Treat; J E Vonk
Journal:  Nature       Date:  2015-04-09       Impact factor: 49.962

2.  The uncertain climate footprint of wetlands under human pressure.

Authors:  Ana Maria Roxana Petrescu; Annalea Lohila; Juha-Pekka Tuovinen; Dennis D Baldocchi; Ankur R Desai; Nigel T Roulet; Timo Vesala; Albertus Johannes Dolman; Walter C Oechel; Barbara Marcolla; Thomas Friborg; Janne Rinne; Jaclyn Hatala Matthes; Lutz Merbold; Ana Meijide; Gerard Kiely; Matteo Sottocornola; Torsten Sachs; Donatella Zona; Andrej Varlagin; Derrick Y F Lai; Elmar Veenendaal; Frans-Jan W Parmentier; Ute Skiba; Magnus Lund; Arjan Hensen; Jacobus van Huissteden; Lawrence B Flanagan; Narasinha J Shurpali; Thomas Grünwald; Elyn R Humphreys; Marcin Jackowicz-Korczyński; Mika A Aurela; Tuomas Laurila; Carsten Grüning; Chiara A R Corradi; Arina P Schrier-Uijl; Torben R Christensen; Mikkel P Tamstorf; Mikhail Mastepanov; Pertti J Martikainen; Shashi B Verma; Christian Bernhofer; Alessandro Cescatti
Journal:  Proc Natl Acad Sci U S A       Date:  2015-03-23       Impact factor: 11.205

3.  Climate science: cold carbon storage.

Authors:  Sebastian Sobek
Journal:  Nature       Date:  2014-07-16       Impact factor: 49.962

4.  Shifts of methanogenic communities in response to permafrost thaw results in rising methane emissions and soil property changes.

Authors:  Shiping Wei; Hongpeng Cui; Youhai Zhu; Zhenquan Lu; Shouji Pang; Shuai Zhang; Hailiang Dong; Xin Su
Journal:  Extremophiles       Date:  2018-02-10       Impact factor: 2.395

5.  WIDESPREAD CAPACITY FOR DENITRIFICATION ACROSS A BOREAL FOREST LANDSCAPE.

Authors:  Melanie S Burnett; Ursel M E Schütte; Tamara K Harms
Journal:  Biogeochemistry       Date:  2022-02-21       Impact factor: 4.812

6.  Vegetation grows more luxuriantly in Arctic permafrost drained lake basins.

Authors:  Yating Chen; Aobo Liu; Xiao Cheng
Journal:  Glob Chang Biol       Date:  2021-09-01       Impact factor: 13.211

7.  Bacterial community structure across environmental gradients in permafrost thaw ponds: methanotroph-rich ecosystems.

Authors:  Sophie Crevecoeur; Warwick F Vincent; Jérôme Comte; Connie Lovejoy
Journal:  Front Microbiol       Date:  2015-03-18       Impact factor: 5.640

8.  A simplified, data-constrained approach to estimate the permafrost carbon-climate feedback.

Authors:  C D Koven; E A G Schuur; C Schädel; T J Bohn; E J Burke; G Chen; X Chen; P Ciais; G Grosse; J W Harden; D J Hayes; G Hugelius; E E Jafarov; G Krinner; P Kuhry; D M Lawrence; A H MacDougall; S S Marchenko; A D McGuire; S M Natali; D J Nicolsky; D Olefeldt; S Peng; V E Romanovsky; K M Schaefer; J Strauss; C C Treat; M Turetsky
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2015-11-13       Impact factor: 4.226

9.  Circumpolar distribution and carbon storage of thermokarst landscapes.

Authors:  D Olefeldt; S Goswami; G Grosse; D Hayes; G Hugelius; P Kuhry; A D McGuire; V E Romanovsky; A B K Sannel; E A G Schuur; M R Turetsky
Journal:  Nat Commun       Date:  2016-10-11       Impact factor: 14.919

10.  Large increases in carbon burial in northern lakes during the Anthropocene.

Authors:  Adam J Heathcote; N John Anderson; Yves T Prairie; Daniel R Engstrom; Paul A del Giorgio
Journal:  Nat Commun       Date:  2015-11-26       Impact factor: 14.919

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