@phdthesis{FrankFahle2013, author = {Frank-Fahle, B{\´e}atrice A.}, title = {Methane-cycling microbial communities in permafrost affected soils on Herschel Island and the Yukon Coast, Western Canadian Arctic}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus-65345}, school = {Universit{\"a}t Potsdam}, year = {2013}, abstract = {Permafrost-affected ecosystems including peat wetlands are among the most obvious regions in which current microbial controls on organic matter decomposition are likely to change as a result of global warming. Wet tundra ecosystems in particular are ideal sites for increased methane production because of the waterlogged, anoxic conditions that prevail in seasonally increasing thawed layers. The following doctoral research project focused on investigating the abundance and distribution of the methane-cycling microbial communities in four different polygons on Herschel Island and the Yukon Coast. Despite the relevance of the Canadian Western Arctic in the global methane budget, the permafrost microbial communities there have thus far remained insufficiently characterized. Through the study of methanogenic and methanotrophic microbial communities involved in the decomposition of permafrost organic matter and their potential reaction to rising environmental temperatures, the overarching goal of the ensuing thesis is to fill the current gap in understanding the fate of the organic carbon currently stored in Artic environments and its implications regarding the methane cycle in permafrost environments. To attain this goal, a multiproxy approach including community fingerprinting analysis, cloning, quantitative PCR and next generation sequencing was used to describe the bacterial and archaeal community present in the active layer of four polygons and to scrutinize the diversity and distribution of methane-cycling microorganisms at different depths. These methods were combined with soil properties analyses in order to identify the main physico-chemical variables shaping these communities. In addition a climate warming simulation experiment was carried-out on intact active layer cores retrieved from Herschel Island in order to investigate the changes in the methane-cycling communities associated with an increase in soil temperature and to help better predict future methane-fluxes from polygonal wet tundra environments in the context of climate change. Results showed that the microbial community found in the water-saturated and carbon-rich polygons on Herschel Island and the Yukon Coast was diverse and showed a similar distribution with depth in all four polygons sampled. Specifically, the methanogenic community identified resembled the communities found in other similar Arctic study sites and showed comparable potential methane production rates, whereas the methane oxidizing bacterial community differed from what has been found so far, being dominated by type-II rather than type-I methanotrophs. After being subjected to strong increases in soil temperature, the active-layer microbial community demonstrated the ability to quickly adapt and as a result shifts in community composition could be observed. These results contribute to the understanding of carbon dynamics in Arctic permafrost regions and allow an assessment of the potential impact of climate change on methane-cycling microbial communities. This thesis constitutes the first in-depth study of methane-cycling communities in the Canadian Western Arctic, striving to advance our understanding of these communities in degrading permafrost environments by establishing an important new observatory in the Circum-Arctic.}, language = {en} } @phdthesis{Hoffmann2019, author = {Hoffmann, Mathias}, title = {Improving measurement and modelling approaches of the closed chamber method to better assess dynamics and drivers of carbon based greenhouse gas emissions}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-421302}, school = {Universit{\"a}t Potsdam}, pages = {xx, 204, xxix}, year = {2019}, abstract = {The trace gases CO2 and CH4 pertain to the most relevant greenhouse gases and are important exchange fluxes of the global carbon (C) cycle. Their atmospheric quantity increased significantly as a result of the intensification of anthropogenic activities, such as especially land-use and land-use change, since the mid of the 18th century. To mitigate global climate change and ensure food security, land-use systems need to be developed, which favor reduced trace gas emissions and a sustainable soil carbon management. This requires the accurate and precise quantification of the influence of land-use and land-use change on CO2 and CH4 emissions. A common method to determine the trace gas dynamics and C sink or source function of a particular ecosystem is the closed chamber method. This method is often used assuming that accuracy and precision are high enough to determine differences in C gas emissions for e.g., treatment comparisons or different ecosystem components. However, the broad range of different chamber designs, related operational procedures and data-processing strategies which are described in the scientific literature contribute to the overall uncertainty of closed chamber-based emission estimates. Hence, the outcomes of meta-analyses are limited, since these methodical differences hamper the comparability between studies. Thus, a standardization of closed chamber data acquisition and processing is much-needed. Within this thesis, a set of case studies were performed to: (I) develop standardized routines for an unbiased data acquisition and processing, with the aim of providing traceable, reproducible and comparable closed chamber based C emission estimates; (II) validate those routines by comparing C emissions derived using closed chambers with independent C emission estimates; and (III) reveal processes driving the spatio-temporal dynamics of C emissions by developing (data processing based) flux separation approaches. The case studies showed: (I) the importance to test chamber designs under field conditions for an appropriate sealing integrity and to ensure an unbiased flux measurement. Compared to the sealing integrity, the use of a pressure vent and fan was of minor importance, affecting mainly measurement precision; (II) that the developed standardized data processing routines proved to be a powerful and flexible tool to estimate C gas emissions and that this tool can be successfully applied on a broad range of flux data sets from very different ecosystem; (III) that automatic chamber measurements display temporal dynamics of CO2 and CH4 fluxes very well and most importantly, that they accurately detect small-scale spatial differences in the development of soil C when validated against repeated soil inventories; and (IV) that a simple algorithm to separate CH4 fluxes into ebullition and diffusion improves the identification of environmental drivers, which allows for an accurate gap-filling of measured CH4 fluxes. Overall, the proposed standardized data acquisition and processing routines strongly improved the detection accuracy and precision of source/sink patterns of gaseous C emissions. Hence, future studies, which consider the recommended improvements, will deliver valuable new data and insights to broaden our understanding of spatio-temporal C gas dynamics, their particular environmental drivers and underlying processes.}, language = {en} } @phdthesis{Holm2020, author = {Holm, Stine}, title = {Methanogenic communities and metaplasmidome-encoded functions in permafrost environments exposed to thaw}, school = {Universit{\"a}t Potsdam}, pages = {VI, 243}, year = {2020}, abstract = {This thesis investigates how the permafrost microbiota responds to global warming. In detail, the constraints behind methane production in thawing permafrost were linked to methanogenic activity, abundance and composition. Furthermore, this thesis offers new insights into microbial adaptions to the changing environmental conditions during global warming. This was assesed by investigating the potential ecological relevant functions encoded by plasmid DNA within the permafrost microbiota. Permafrost of both interglacial and glacial origin spanning the Holocene to the late Pleistocene, including Eemian, were studied during long-term thaw incubations. Furthermore, several permafrost cores of different stratigraphy, soil type and vegetation cover were used to target the main constraints behind methane production during short-term thaw simulations. Short- and long-term incubations simulating thaw with and without the addition of substrate were combined with activity measurements, amplicon and metagenomic sequencing of permanently frozen and seasonally thawed active layer. Combined, it allowed to address the following questions. i) What constraints methane production when permafrost thaws and how is this linked to methanogenic activity, abundance and composition? ii) How does the methanogenic community composition change during long-term thawing conditions? iii) Which potential ecological relevant functions are encoded by plasmid DNA in active layer soils? The major outcomes of this thesis are as follows. i) Methane production from permafrost after long-term thaw simulation was found to be constrained mainly by the abundance of methanogens and the archaeal community composition. Deposits formed during periods of warmer temperatures and increased precipitation, (here represented by deposits from the Late Pleistocene of both interstadial and interglacial periods) were found to respond strongest to thawing conditions and to contain an archaeal community dominated by methanogenic archaea (40\% and 100\% of all detected archaea). Methanogenic population size and carbon density were identified as main predictors for potential methane production in thawing permafrost in short-term incubations when substrate was sufficiently available. ii) Besides determining the methanogenic activity after long-term thaw, the paleoenvironmental conditions were also found to influence the response of the methanogenic community composition. Substantial shifts within methanogenic community structure and a drop in diversity were observed in deposits formed during warmer periods, but not in deposits from stadials, when colder and drier conditions occurred. Overall, a shift towards a dominance of hydrogenotrophic methanogens was observed in all samples, except for the oldest interglacial deposits from the Eemian, which displayed a potential dominance of acetoclastic methanogens. The Eemian, which is discussed to serve as an analogue to current climate conditions, contained highly active methanogenic communities. However, all potential limitation of methane production after permafrost thaw, it means methanogenic community structure, methanogenic population size, and substrate pool might be overcome after permafrost had thawed on the long-term. iii) Enrichments with soil from the seasonally thawed active layer revealed that its plasmid DNA ('metaplasmidome') carries stress-response genes. In particular it encoded antibiotic resistance genes, heavy metal resistance genes, cold shock proteins and genes encoding UV-protection. Those are functions that are directly involved in the adaptation of microbial communities to stresses in polar environments. It was further found that metaplasmidomes from the Siberian active layer originate mainly from Gammaproteobacteria. By applying enrichment cultures followed by plasmid DNA extraction it was possible to obtain a higher average contigs length and significantly higher recovery of plasmid sequences than from extracting plasmid sequences from metagenomes. The approach of analyzing 'metaplasmidomes' established in this thesis is therefore suitable for studying the ecological role of plasmids in polar environments in general. This thesis emphasizes that including microbial community dynamics have the potential to improve permafrost-carbon projections. Microbially mediated methane release from permafrost environments may significantly impact future climate change. This thesis identified drivers of methanogenic composition, abundance and activity in thawing permafrost landscapes. Finally, this thesis underlines the importance to study how the current warming Arctic affects microbial communities in order to gain more insight into microbial response and adaptation strategies.}, language = {en} } @phdthesis{Kobabe2005, author = {Kobabe, Svenja}, title = {Charakterisierung der mikrobiellen Lebensgemeinschaft eines sibirischen Permafrostbodens}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus-5467}, school = {Universit{\"a}t Potsdam}, year = {2005}, abstract = {Die vorliegende Arbeit wurde im Rahmen des multidisziplin{\"a}ren Deutsch-Russischen Verbundprojektes "Laptev See 2000" erstellt. Die dargestellten bodenkundlichen und mikro-biologischen Untersuchungen verfolgten das Ziel die mikrobielle Lebensgemeinschaft eines Permafrostbodens im sibirischen Lena Delta zu charakterisieren, wobei den methanogenen Archaea besondere Beachtung zukam. Die Probennahme wurde im August 2001 im zentralen Lenadelta, auf der Insel Samoylov durchgef{\"u}hrt. Das Delta liegt im Bereich des kontinuierlichen Permafrostes, was bedeutet, dass nur eine flache saisonale Auftauschicht w{\"a}hrend der Sommermonate auftaut. Das untersuchte Bodenprofil lag im Zentrum eines f{\"u}r die Landschaft repr{\"a}sentativen Low Center Polygons. Zum Zeitpunkt der Beprobung betrug die Auftautiefe des untersuchten Bodens 45 cm.. Der Wasserstand lag zum Untersuchungszeitpunkt 18 cm unter der Gel{\"a}ndeoberfl{\"a}che, so dass alle tiefer liegenden Horizonte durch anaerobe Verh{\"a}ltnisse charakterisiert waren. Die Untersuchung der bodenkundlichen Parameter ergab unter anderem eine mit zunehmender Tiefe abnehmende Konzentration von Kohlenstoff und Stickstoff, sowie eine Abnahme von Temperatur und Wurzeldichte. Um die Auswirkungen der sich mit der Tiefe ver{\"a}ndernden Bodeneigenschaften auf die Mikroorganismen zu ermitteln, wurden die Mikroorganismenpopulationen der verschiedenen Bodentiefen mit Hilfe der Fluoreszenz in situ Hybridisierung hinsichtlich ihrer Anzahl, Aktivit{\"a}t und Zusammensetzung beschrieben. F{\"u}r die Charakterisierung des physiologischen Profils dieser Gemeinschaften, bez{\"u}glich der von ihr umsetzbaren Kohlenstoffverbindungen, wurden BIOLOG Mikrotiterplatten unter den in situ Bedingungen angepassten Bedingungen eingesetzt. Die sich im Profil ver{\"a}ndernden Bodenparameter, vor allem die abnehmende Substratversorgung, die geringe Temperatur und die anaeroben Verh{\"a}ltnisse in den unteren Bodenschichten f{\"u}hrten zu einer Ver{\"a}nderung der Mikroorganismenpopulation im Bodenprofil. So nahm von oben nach unten die Gesamtanzahl der ermittelten Mikroorganismen von 23,0 × 108 auf 1,2 × 108 Zellen g-1 ab. Gleichzeitig sank der Anteil der aktiven Zellen von 59\% auf 33\%. Das bedeutet, dass im Bereich von 0-5 cm 35mal mehr aktive Zellen g-1 als im Bereich von 40-45 cm gefunden wurden. Durch den Einsatz spezieller rRNS-Sonden konn-te zus{\"a}tzlich eine Abnahme der Diversit{\"a}t mit zunehmender Bodentiefe nachgewiesen werden. Die geringere Aktivit{\"a}t der Population in den unteren Horizonten sowie die Unterschiede in der Zusammensetzung wirkten sich auf den Abbau der organischen Substanz aus. So wur-den die mit Hilfe der BIOLOG Mikrotiterplatten angebotenen Substanzen in gr{\"o}ßerer Tiefe langsamer und unvollst{\"a}ndiger abgebaut. Insbesondere in den oberen 5 cm konnten einige der angebotenen Polymere und Kohlehydrate deutlich besser als im restlichen Profil umge-setzt werden. Das außerdem unter anaeroben Versuchsbedingungen diese Substrate deutlich schlechter umgesetzt wurden, kann so interpretiert werden, dass die konstant anaeroben Bedingungen in den unteren Horizonten ein Auftreten der Arten, die diese Substrate umset-zen, erschweren. Die in den oberen, aeroben Bodenabschnitten wesentlich h{\"o}heren Zellzahlen und Aktivit{\"a}ten und die dadurch schnellere C-Umsetzung f{\"u}hren auch zu einer besseren Substratversorgung der methanogenen Archaea in den makroskopisch aeroben Horizonten. Die erh{\"o}hte Substratverf{\"u}gbarkeit erkl{\"a}rt die Tatsache, dass im Bereich von 0-5 cm die meisten methanogenen Archaea gefunden wurden, obwohl sich dieser Bereich zum Zeitpunkt der Probennahme oberhalb des wasserges{\"a}ttigten Bodenbereichs befand. Trotz der aeroben Bedingungen in, liegt im Bereich von 5 10 cm die f{\"u}r die methanogenen Archaea am besten geeignete Kombination aus Substratangebot und anaeroben Nischen vor. Hinzu kommt, dass in diesen Tiefen die Sommertemperaturen etwas h{\"o}her liegen als in den tieferen Horizonten, was wiederum die Aktivit{\"a}t positiv beeinflusst. Bei zusammenfassender Betrachtung der Untersuchungsergebnisse von Anzahl, Aktivit{\"a}t, Zusammensetzung und Leistung der gesamten, aber im besonderen auch der methanogenen Mikroorganismenpopulation wird deutlich, dass in dem untersuchten Bodenprofil unter {\"o}kologischen Gesichtspunkten die oberen 15-20 cm den f{\"u}r den C-Umsatz relevantesten Bereich darstellen. Das Zusammenspiel wichtiger Bodenparameter wie Bodentemperatur, Wasserstand, N{\"a}hrstoffversorgung und Durchwurzelung f{\"u}hrt dazu, dass in dem untersuchten Tundraboden in den oberen 15-20 cm eine wesentlich gr{\"o}ßere und diversere Anzahl an Mikroorganismen existiert, die f{\"u}r einen schnelleren und umfassenderen Kohlenstoffumsatz in diesem Bereich des active layers sorgt.}, subject = {Mikrobiologie}, language = {de} } @misc{KuehnLiNakatenetal.2017, author = {K{\"u}hn, Michael and Li, Qi and Nakaten, Natalie Christine and Kempka, Thomas}, title = {Integrated subsurface gas storage of CO2 and CH4 offers capacity and state-of-the-art technology for energy storage in China}, series = {Energy procedia}, volume = {125}, journal = {Energy procedia}, publisher = {Elsevier}, address = {Amsterdam}, issn = {1876-6102}, doi = {10.1016/j.egypro.2017.08.039}, pages = {14 -- 18}, year = {2017}, abstract = {Integration and development of the energy supply in China and worldwide is a challenge for the years to come. The innovative idea presented here is based on an extension of the "power-to-gas-to-power" technology by establishing a closed carbon cycle. It is an implementation of a low-carbon energy system based on carbon dioxide capture and storage (CCS) to store and reuse wind and solar energy. The Chenjiacun storage project in China compares well with the German case study for the towns Potsdam and Brandenburg/Havel in the Federal State of Brandenburg based on the Ketzin pilot site for CCS.}, language = {en} } @article{LiSpangenbergSchicksetal.2022, author = {Li, Zhen and Spangenberg, Erik and Schicks, Judith Maria and Kempka, Thomas}, title = {Numerical Simulation of Coastal Sub-Permafrost Gas Hydrate Formation in the Mackenzie Delta, Canadian Arctic}, series = {Energies}, volume = {15}, journal = {Energies}, number = {14}, publisher = {MDPI}, address = {Basel}, issn = {1996-1073}, doi = {10.3390/en15144986}, pages = {25}, year = {2022}, abstract = {The Mackenzie Delta (MD) is a permafrost-bearing region along the coasts of the Canadian Arctic which exhibits high sub-permafrost gas hydrate (GH) reserves. The GH occurring at the Mallik site in the MD is dominated by thermogenic methane (CH4), which migrated from deep conventional hydrocarbon reservoirs, very likely through the present fault systems. Therefore, it is assumed that fluid flow transports dissolved CH4 upward and out of the deeper overpressurized reservoirs via the existing polygonal fault system and then forms the GH accumulations in the Kugmallit-Mackenzie Bay Sequences. We investigate the feasibility of this mechanism with a thermo-hydraulic-chemical numerical model, representing a cross section of the Mallik site. We present the first simulations that consider permafrost formation and thawing, as well as the formation of GH accumulations sourced from the upward migrating CH4-rich formation fluid. The simulation results show that temperature distribution, as well as the thickness and base of the ice-bearing permafrost are consistent with corresponding field observations. The primary driver for the spatial GH distribution is the permeability of the host sediments. Thus, the hypothesis on GH formation by dissolved CH4 originating from deeper geological reservoirs is successfully validated. Furthermore, our results demonstrate that the permafrost has been substantially heated to 0.8-1.3 degrees C, triggered by the global temperature increase of about 0.44 degrees C and further enhanced by the Arctic Amplification effect at the Mallik site from the early 1970s to the mid-2000s.}, language = {en} } @article{TreatKleinenBroothaertsetal.2019, author = {Treat, Claire C. and Kleinen, Thomas and Broothaerts, Nils and Dalton, April S. and Dommain, Rene and Douglas, Thomas A. and Drexler, Judith Z. and Finkelstein, Sarah A. and Grosse, Guido and Hope, Geoffrey and Hutchings, Jack and Jones, Miriam C. and Kuhry, Peter and Lacourse, Terri and Lahteenoja, Outi and Loisel, Julie and Notebaert, Bastiaan and Payne, Richard J. and Peteet, Dorothy M. and Sannel, A. Britta K. and Stelling, Jonathan M. and Strauss, Jens and Swindles, Graeme T. and Talbot, Julie and Tarnocai, Charles and Verstraeten, Gert and Williams, Christopher J. and Xia, Zhengyu and Yu, Zicheng and Valiranta, Minna and Hattestrand, Martina and Alexanderson, Helena and Brovkin, Victor}, title = {Widespread global peatland establishment and persistence over the last 130,000 y}, series = {Proceedings of the National Academy of Sciences of the United States of America}, volume = {116}, journal = {Proceedings of the National Academy of Sciences of the United States of America}, number = {11}, publisher = {National Acad. of Sciences}, address = {Washington}, issn = {0027-8424}, doi = {10.1073/pnas.1813305116}, pages = {4822 -- 4827}, year = {2019}, abstract = {Glacial-interglacial variations in CO2 and methane in polar ice cores have been attributed, in part, to changes in global wetland extent, but the wetland distribution before the Last Glacial Maximum (LGM, 21 ka to 18 ka) remains virtually unknown. We present a study of global peatland extent and carbon (C) stocks through the last glacial cycle (130 ka to present) using a newly compiled database of 1,063 detailed stratigraphic records of peat deposits buried by mineral sediments, as well as a global peatland model. Quantitative agreement between modeling and observations shows extensive peat accumulation before the LGM in northern latitudes (> 40 degrees N), particularly during warmer periods including the last interglacial (130 ka to 116 ka, MIS 5e) and the interstadial (57 ka to 29 ka, MIS 3). During cooling periods of glacial advance and permafrost formation, the burial of northern peatlands by glaciers and mineral sediments decreased active peatland extent, thickness, and modeled C stocks by 70 to 90\% from warmer times. Tropical peatland extent and C stocks show little temporal variation throughout the study period. While the increased burial of northern peats was correlated with cooling periods, the burial of tropical peat was predominately driven by changes in sea level and regional hydrology. Peat burial by mineral sediments represents a mechanism for long-term terrestrial C storage in the Earth system. These results show that northern peatlands accumulate significant C stocks during warmer times, indicating their potential for C sequestration during the warming Anthropocene.}, language = {en} } @phdthesis{Wen2020, author = {Wen, Xi}, title = {Distribution patterns and environmental drivers of methane-cycling microorganisms in natural environments and restored wetlands}, doi = {10.25932/publishup-47177}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-471770}, school = {Universit{\"a}t Potsdam}, pages = {VIII, iii, 152}, year = {2020}, abstract = {Methane is an important greenhouse gas contributing to global climate change. Natural environments and restored wetlands contribute a large proportion to the global methane budget. Methanogenic archaea (methanogens) and methane oxidizing bacteria (methanotrophs), the biogenic producers and consumers of methane, play key roles in the methane cycle in those environments. A large number of studies revealed the distribution, diversity and composition of these microorganisms in individual habitats. However, uncertainties exist in predicting the response and feedback of methane-cycling microorganisms to future climate changes and related environmental changes due to the limited spatial scales considered so far, and due to a poor recognition of the biogeography of these important microorganisms combining global and local scales. With the aim of improving our understanding about whether and how methane-cycling microbial communities will be affected by a series of dynamic environmental factors in response to climate change, this PhD thesis investigates the biogeographic patterns of methane-cycling communities, and the driving factors which define these patterns at different spatial scales. At the global scale, a meta-analysis was performed by implementing 94 globally distributed public datasets together with environmental data from various natural environments including soils, lake sediments, estuaries, marine sediments, hydrothermal sediments and mud volcanos. In combination with a global biogeographic map of methanogenic archaea from multiple natural environments, this thesis revealed that biogeographic patterns of methanogens exist. The terrestrial habitats showed higher alpha diversities than marine environments. Methanoculleus and Methanosaeta (Methanothrix) are the most frequently detected taxa in marine habitats, while Methanoregula prevails in terrestrial habitats. Estuary ecosystems, the transition zones between marine and terrestrial/limnic ecosystems, have the highest methanogenic richness but comparably low methane emission rates. At the local scale, this study compared two rewetted fens with known high methane emissions in northeastern Germany, a coastal brackish fen (H{\"u}telmoor) and a freshwater riparian fen (Polder Zarnekow). Consistent with different geochemical conditions and land-use history, the two rewetted fens exhibit dissimilar methanogenic and, especially, methanotrophic community compositions. The methanotrophic community was generally under-represented among the prokaryotic communities and both fens show similarly low ratios of methanotrophic to methanogenic abundances. Since few studies have characterized methane-cycling microorganisms in rewetted fens, this study provides first evidence that the rapid and well re-established methanogenic community in combination with the low and incomplete re-establishment of the methanotrophic community after rewetting contributes to elevated sustained methane fluxes following rewetting. Finally, this thesis demonstrates that dispersal limitation only slightly regulates the biogeographic distribution patterns of methanogenic microorganisms in natural environments and restored wetlands. Instead, their existence, adaption and establishment are more associated with the selective pressures under different environmental conditions. Salinity, pH and temperature are identified as the most important factors in shaping microbial community structure at different spatial scales (global versus terrestrial environments). Predicted changes in climate, such as increasing temperature, changes in precipitation patterns and increasing frequency of flooding events, are likely to induce a series of environmental alterations, which will either directly or indirectly affect the driving environmental forces of methanogenic communities, leading to changes in their community composition and thus potentially also in methane emission patterns in the future.}, language = {en} }