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Methane in maritime Antarctic freshwater lakes

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Summary

Methane was found to occur in all freshwater lakes, irrespective of trophic status, sampled during this preliminary investigation at Signy Island, South Orkney Islands, Antarctica. Methane accumulated in the water column of these lakes during the winter period when ice cover prevented wind-induced mixing. Maritime Antarctic lakes are usually subject to wind-induced complete mixing during the summer open-water period but two major exceptions to the rule were found during this study. Methanogenesis occurred in both littoral and profundal regions of oligotrophic Sombre Lake. The presence of a substantial algal mat stabilized the Eh status of underlying sediments at the littoral site. Methane production was confined to the sediments in both littoral and profundal sediments during the study period (December–March) but in winter probably migrated to the sediment surface at the profundal site. All Signy Island lakes sampled were sulphate-poor and addition of sulphate markedly inhibited methanogenesis. Radio-isotope studies indicated that the H2/CO2 pathway was probably the predominant route for methanogenesis in these sediments through the acetate pathway appeared equally important at the sediment surface. In the absence of sulphate, sulphate reducers probably acted as net hydrogen donors to the methanogens. The process rate was permanently limited by the consistent low temperature (annual range 1–3°C). Rates increased with increasing temperature over the range 4–32°C, but no evidence was found to suggest cold sensitivity or psychrophily. The optimum temperature for methanogenesis was in excess of 30°C, temperatures never experienced at Signy Island. Rates of methanogenesis during the study period (Dec–Mar) ranged from 0.29 to 0.45 mg of carbon m-2 and on an annual basis methanogenesis was calculated equivalent to 13% of the organic carbon deposition rate.

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References

  • Bryant MP, Campbell LL, Reddy CA, Crabill MR (1977) Growth of Desulfovibrio in lactate or ethanol media low in sulphate in association with H2-utilising methanogenic bacteria. Appl Environ Microbiol 33:1162–1169

    Google Scholar 

  • Burton HR (1980) Methane in a saline Antarctic lake. In: Trudinger PA, Walker MR (eds) Biogeochemistry of ancient and modern environments. Proc 4th Int Symp Environ Biogeochemistry (ISEB). Australian Academy of Science, Canberra, pp 243–251

    Google Scholar 

  • Cappenberg TE, Prins RA (1974) Interrelations between sulfate-reducing and methane-producing bacteria in bottom deposits of a freshwater lake. 2. Experiments with 14C-labelled substrates. Antonic van Leeuwenhoek; J Microbiol Serol 40:297–306

    Google Scholar 

  • Ellis-Evans JC (1981 a) Freshwater microbiology in the Antarctic. 1. Microbial numbers and activity in oligotrophic Moss Lake. Bull Br Antarct Surv 54:85–104

    Google Scholar 

  • Ellis-Evans JC (1981 b) Freshwater microbiology in the Antarctic. 2. Microbial numbers and activity in nutrient enriched Heywood Lake. Bull Br Antarct Surv 54:105–121

    Google Scholar 

  • Ellis-Evans JC (1981 c) Freshwater microbiology at Signy Island, South Orkney Islands, Antarctica. PhD Thesis (CNAA), 283 pp

  • Ellis-Evans JC (1982) Seasonal microbial activity in Antarctic freshwater lake sediments. Polar Biol 1:129–140

    Google Scholar 

  • Ellis-Evans JC (1983) A full list of officially recognised names for the lakes of Signy Island, South Orkney Islands. Bull Br Antarct Surv 59:79–80

    Google Scholar 

  • Fallon RD, Harrits S, Hanson RS, Brock TD (1980) The role of methane in internal carbon cycling in Lake Mendota during summer stratification. Limnol Oceanogr 25:357–360

    Google Scholar 

  • Focht DD, Verstraete W (1977) Biochemical ecology of nitrification and dentrification. Adv Microbiol Ecol 1:135–214

    Google Scholar 

  • Herbert RA, Bell CR (1973) Nutrient cycling in freshwater lakes on Signy Island, South Orkney Islands. Bull Br Antarct Surv 37:15–20

    Google Scholar 

  • Hesslein RH (1976) An in situ sampler for close interval pore water studies. Limnol Oceanogr 21:913–915

    Google Scholar 

  • Heywood RB (1977) Antarctic freshwater ecosystems — a review and synthesis. In: Llano GA (ed) Adaptions within Antarctic ecosystems. 3rd SCAR Symp Antact Biol. Gulf Publishing, pp 801–828

  • Heywood RB, Dartnall HJD, Priddle J (1979) The freshwater lakes of Signy Island, South Orkney Islands, Antarctica: data sheets. Br Antarct Surv. Data 3:1–46

    Google Scholar 

  • Heywood RB, Dartnall HJD, Priddle J (1980) Characteristics and classification of the lakes of Signy Island, South Orkney Islands, Antarctica. Freshwater Biol 10:47–59

    Google Scholar 

  • Howard DL, Frea JI, Pfeister RM (1971) The potential for methanecarbon cycling in Lake Erie. Proc Conf Great Lakes Res 14:463–473

    Google Scholar 

  • Jones JG (1979) Microbial activity in lake sediments with particular reference to electrode potential gradients. J Gen Microbiol 115:19–26

    Google Scholar 

  • Jones JG (1982) Activities of aerobic and anaerobic bacteria in lake sediments and their effect on the water column. In: Nedwell DA, Brown CA (eds) Sediment microbiology. Academic Press, London New York, pp 107–145

    Google Scholar 

  • Jones JG, Simon BM (1980) Decomposition processes in the profundal region of Blelham Tarn and the Lund Tubes. J Ecol 68:493–512

    Google Scholar 

  • Jones JG, Simon BM (1981) Differences in microbial decomposition processes in profundal and littoral lake sediments with particular reference to the nitrogen cycle. J Gen Microbiol 123:297–312

    Google Scholar 

  • Jones JG, Simon BM, Gardener S (1982) Factors affecting methanogenesis and associated anaerobic processes in the sediments of a stratified eutrophic lake. J Gen Microbiol 128:1–11

    Google Scholar 

  • Jøgensen BB (1977) A comparison of methods for the quantification of bacterial sulfate reduction in coastal marine sediments. 1. Measurement with radio-tracer techniques. Geomicrobiol J 1:11–27

    Google Scholar 

  • Light JJ, Ellis-Evans JC, Priddle J (1981) Phytoplankton ecology in an Antarctic lake. Freshwater Biol 11:11–26

    Google Scholar 

  • Lindeboom HJ (1979) Chemical and microbiological aspects of the nitrogen cycle on marion Island (Sub-Antartic). PhD Thesis (Groningen Univ), 138 pp

  • McInerney MJ, Bryant MP (1981) Anaerobic degradation of lactate by syntrophic association of Methanosarcina barkeri and Desulfovibrio species and effect of H2 on acetate degradation. Appl Environ Microbiol 41:346–354

    Google Scholar 

  • Molongoski JJ, Klug MJ (1980) Anaerobic metabolism of particulate organic matter in the sediments of a hypereutrophic lake. Freshwater Biol 10:507–518

    Google Scholar 

  • Priddle J (1980) The production ecology of benthic plants in some Antarctic lakes. 1. In situ production studies. J Ecol 68:141–153

    Google Scholar 

  • Priddle J, Heywood RB (1980) Evolution of Antarctic lake ecosystems. Biol J Linn Soc 14:51–66

    Google Scholar 

  • Rees TD, Gyllenspetz AB, Docherty AC (1971) The determination of trace amounts of sulphite in condensed steam with N, N-diethyl-p-phenylenediamine. Analyst 96:201–208

    Google Scholar 

  • Robertson CK (1979) Quantitative comparison of the significance of methane in the carbon cycles of two small lakes. Ergebn Limnol 12:123–135

    Google Scholar 

  • Rudd JWM, Hamilton RD, Campbell NER (1974) Measurement of microbial oxidation of methane in lake water. Limnol Oceanogr 19:519–524

    Google Scholar 

  • Rudd JWM, Hamilton RD (1978) Methane cycling in a cutrophic shield lake and its effect on whole lake metabolism. Limnol Oceanogr 23:337–348

    Google Scholar 

  • Rudd JWM, Hamilton RD (1979) Methane cycling in Lake 227 in perspective with some components of carbon and oxygen cycles. Ergebn Limnol 12:115–122

    Google Scholar 

  • Strayer RF, Tiedje JM (1978) In situ methane production in a small, hypereutrophic, hard-water lake: loss of methane from sediments by diffusion and ebullition. Limnol Oceanogr 23:1201–1206

    Google Scholar 

  • Tabatabai MA (1974) Determination of sulfate in water samples. Sulphur Inst J 10:11–12

    Google Scholar 

  • Thauer RK (1982) Dissimilatory sulphate reduction with acetate as electron donor. Philos Trans R Soc London, Ser B 298:467–471

    Google Scholar 

  • Welch HE, Rudd JWM, Schindler DW (1980) Methane addition to an arctic lake in winter. Limnol Oceanogr 25:100–113

    Google Scholar 

  • Winfrey MR, Zeikus JG (1977) Effects of sulphate on carbon and electron flow during microbial methanogenesis in freshwater sediments. Appl Environ Microbiol 33:215–221

    Google Scholar 

  • Winfrey MR, Zeikus JG (1979) Anaerobic metabolism of immediate methane precursors in Lake Mendota. Appl Environ Microbiol 37:244–253

    Google Scholar 

  • Zaiss U (1981) Seasonal studies of methanogenesis and desulfurication in sediments of the River Saar. Zentralbl Bakteriol, Parasitenkd, Infektionskr Hyg, Abt 1: Orig, Reihe C2:76–89

    Google Scholar 

  • Zeikus JG, Winfrey MR (1976) Temperature limitation of methanogenesis in aquatic sediments. Appl Environ Microbiol 31:99–107

    Google Scholar 

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Ellis-Evans, J.C. Methane in maritime Antarctic freshwater lakes. Polar Biol 3, 63–71 (1984). https://doi.org/10.1007/BF00258149

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