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The seasonal dynamics of amino acids and other nutrients in Alaskan Arctic tundra soils

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Abstract.

Past research strongly indicates the importance of amino acids in the N economy of the Arctic tundra, but little is known about the seasonal dynamics of amino acids in tundra soils. We repeatedly sampled soils from tussock, shrub, and wet sedge tundra communities in the summers of 2000 and 2001 and extracted them with water (H2O) and potassium sulfate (K2SO4) to determine the seasonal dynamics of soil amino acids, ammonium (NH4+), nitrate (NO3), dissolved organic nitrogen (DON), dissolved organic carbon (DOC), and phosphate (PO42−). In the H2O extractions mean concentrations of total free amino acids (TFAA) were higher than NH4+ in all soils but shrub. TFAA and NH4+ were highest in wet sedge and tussock soils and lowest in shrub soil. The most predominant amino acids were alanine, arginine, glycine, serine, and threonine. None of the highest amino acids were significantly different than NH4+ in any soil but shrub, in which NH4+ was significantly higher than all of the highest individual amino acids. Mean NO3 concentrations were not significantly different from mean TFAA and NH4+ concentrations in any soil but tussock, where NO3 was significantly higher than NH4+. In all soils amino acid and NH4+ concentrations dropped to barely detectable levels in the middle of July, suggesting intense competition for N at the height of the growing season. In all soils but tussock, amino acid and NH4+ concentrations rebounded in August as the end of the Arctic growing season approached and plant N demand decreased. This pattern suggests that low N concentrations in tundra soils at the height of the growing season are likely the result of an increase in soil N uptake associated with the peak in plant growth, either directly by roots or indirectly by microbes fueled by increased root C inputs in mid-July. As N availability decreased in July, PO42− concentrations in the K2SO4 extractions increased dramatically in all soils but shrub, where there was a comparable increase in PO42− later in the growing season. Previous research suggests that these increases in PO42− concentrations are due to the mineralization of organic phosphorus by phosphatase enzymes associated with soil microbes and plant roots, and that they may have been caused by an increase in organic P availability.

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Abbreviations

TFAA:

Total free amino acids

DOC:

Dissolved organic carbon

DON:

Dissolved organic nitrogen

NH4+:

Ammonium

NO3:

Nitrate

PO42−:

Phosphate

DIN:

Dissolved inorganic nitrogen: ammonium + nitrate

N:

Nitrogen

C:

Carbon

References

  • W.D. Billings K.M. Peterson J.O. Luken D.A. Mortensen (1984) ArticleTitleInteraction of increasing atmospheric carbon dioxide and soil nitrogen on the carbon balance of tundra microcosms Oecologia 65 IssueID1 26–29

    Google Scholar 

  • L.C. Bliss N.V. Matveyeva (1992) Circumpolar Arctic vegetation F.S. Chapin R.L. Jefferies J.F. Reynolds G.R. Shaver J. Svoboda (Eds) Arctic Ecosystems in a Changing Climate: An Ecophysiological Perspective Academic Press Orlando 59–89

    Google Scholar 

  • F.S. Chapin D.A. Johnson J.D. Mckendrick (1980) ArticleTitleSeasonal movement of nutrients in plants of differing growth form in an Alaskan tundra ecosystem: implications for herbivory J. Ecol. 68 189–209 Occurrence Handle1:CAS:528:DyaL3cXkt1GhsrY%3D

    CAS  Google Scholar 

  • F.S. Chapin J.D. McKendrick D.A. Johnson (1986a) ArticleTitleSeasonal changes in carbon fractions in Alaskan tundra plants of differing growth form: implications for herbivory J. Ecol. 74 IssueID3 707–732 Occurrence Handle1:CAS:528:DyaL28XlvV2qsbc%3D

    CAS  Google Scholar 

  • F.S. Chapin L. Moilanen K. Kielland (1993) ArticleTitlePreferential use of organic nitrogen for growth by a nonmycorrhizal Arctic sedge Nature 361 IssueID6408 150–153 Occurrence Handle1:CAS:528:DyaK3sXhtVWisb4%3D

    CAS  Google Scholar 

  • F.S. Chapin G.R. Shaver A.E. Giblin K.J. Nadelhoffer J.A. Laundre (1995) ArticleTitleResponse of Arctic tundra to experimental and observed changes in climate Ecology 76 IssueID3 694–711

    Google Scholar 

  • F.S. Chapin G.R. Shaver R.A. Kedrowski (1986b) ArticleTitleEnvironmental controls over carbon, nitrogen and phosphorus fractions in Eriophorum vaginatum in Alaskan tussock tundra J. Ecol. 74 IssueID1 167–196 Occurrence Handle1:CAS:528:DyaL28Xit1aisr8%3D

    CAS  Google Scholar 

  • A.P. Doyle M.N. Weintraub J.P. Schimel (2004) ArticleTitlePersulfate digestion and simultaneous colorimetric analysis of carbon and nitrogen in soil extracts Soil Sci. Soc. Am. J. 68 669–676 Occurrence Handle1:CAS:528:DC%2BD2cXitV2nurw%3D

    CAS  Google Scholar 

  • A.E. Giblin K.J. Nadelhoffer G.R. Shaver J.A. Laundre A.J. McKerrow (1991) ArticleTitleBiogeochemical diversity along a riverside toposequence in Arctic Alaska Ecol. Monogr. 61 IssueID4 415–436

    Google Scholar 

  • S.E. Hobbie (1996) ArticleTitleTemperature and plant species control over litter decomposition in Alaskan tundra Ecol. Monogr. 66 IssueID4 503–522

    Google Scholar 

  • S.E. Hobbie F.S. Chapin (1998) ArticleTitleThe response of tundra plant biomass, aboveground production, nitrogen, and CO2 flux to experimental warming Ecology 79 IssueID5 1526–1544

    Google Scholar 

  • S.E. Hobbie A. Shevtsova F.S. Chapin (1999) ArticleTitlePlant responses to species removal and experimental warming in Alaskan tussock tundra Oikos 84 IssueID3 417–434

    Google Scholar 

  • D.L. Jones K. Kielland (2002) ArticleTitleSoil amino acid turnover dominates the nitrogen flux in permafrost-dominated taiga forest soils Soil Biol. Biochem. 34 IssueID2 209–219 Occurrence Handle1:CAS:528:DC%2BD38XhtlOq

    CAS  Google Scholar 

  • K. Kielland (1994) ArticleTitleAmino acid absorption by Arctic plants: implications for plant nutrition and nitrogen cycling Ecology 75 IssueID8 2373–2383

    Google Scholar 

  • K. Kielland (1995) ArticleTitleLandscape patterns of free amino acids in Arctic tundra soils Biogeochemistry 31 IssueID2 85–98 Occurrence Handle1:CAS:528:DyaK28XisV2gsbk%3D

    CAS  Google Scholar 

  • K. Kielland (1997) ArticleTitleRole of free amino acids in the nitrogen economy of Arctic cryptogams Ecoscience 4 IssueID1 75–79

    Google Scholar 

  • J. Kummerow M. Russell (1980) ArticleTitleSeasonal root growth in the Arctic tussock tundra Oecologia 47 196–199

    Google Scholar 

  • C. Legrand P. Carlsson (1998) ArticleTitleUptake of high molecular weight dextran by the Dinoflagellate Alexandrium Catenella Aquat. Microb. Ecol. 16 IssueID1 81–86

    Google Scholar 

  • D.A. Lipson T. Nasholm (2001) ArticleTitleThe unexpected versatility of plants: organic nitrogen use and availability in terrestrial ecosystems [Review] Oecologia 128 IssueID3 305–316

    Google Scholar 

  • D.A. Lipson T.K. Raab S.K. Schmidt R.K. Monson (2001) ArticleTitleAn empirical model of amino acid transformations in an alpine soil Soil Biol. Biochem. 33 IssueID2 189–198 Occurrence Handle1:CAS:528:DC%2BD3MXht1Kmtr4%3D

    CAS  Google Scholar 

  • J.D. Mckendrick V. Ott G. Mitchell (1978) Effects of nitrogen and phosphorus fertilization on carbohydrate and nutrient levels in Dupontia fischeriArctagrostis latifolia L.L. Tieszen (Eds) Vegetation and Production Ecology of an Alaskan Arctic Tundra Springer-Verlag Berlin 509–537

    Google Scholar 

  • D.L. Moorhead C. Kroehler A. Linkins J. Reynolds (1993) ArticleTitleExtracellular acid phosphatase activities in Eriophorum vaginatum tussocks: a modeling synthesis Arctic Alpine Res. 25 IssueID1 50–55

    Google Scholar 

  • D.L. Moorhead A.E. Linkins (1997) ArticleTitleElevated CO2 alters belowground exoenzyme activities in tussock tundra Plant Soil 189 IssueID2 321–329 Occurrence Handle1:CAS:528:DyaK2sXksVyrs7k%3D

    CAS  Google Scholar 

  • K.J. Nadelhoffer A.E. Giblin G.R. Shaver J.A. Laundre (1991) ArticleTitleEffects of temperature and substrate quality on element mineralization in six Arctic soils Ecology 72 IssueID1 242–253

    Google Scholar 

  • A. Nordin I.K. Schmidt G.R. Shaver (2003) ArticleTitleNitrogen uptake by Arctic soil microbes and plants in relation to soil nitrogen supply Ecology 85 IssueID4 955–962

    Google Scholar 

  • E.W. Pop S.F. Oberbauer G. Starr (2000) ArticleTitlePredicting vegetative bud break in two Arctic deciduous shrub species, Salix pulchra and Betula nana Oecologia 124 IssueID2 176–184

    Google Scholar 

  • T.K. Raab D.A. Lipson R.K. Monson (1999) ArticleTitleSoil amino acid utilization among species of the Cyperaceae: plant and soil processes Ecology 80 IssueID7 2408–2419

    Google Scholar 

  • J.P. Schimel (1995) Ecosystem consequences of microbial diversity and community structure F.S. Chapin C. Korner (Eds) Arctic and Alpine Biodiversity: Patterns, Causes, and Ecosystem Consequences Springer-Verlag Berlin 239–254

    Google Scholar 

  • Schimel J.P. and Bennet J. 2003. Nitrogen mineralization: challenges of a changing paradigm. Ecology 85(3): 591–602.

    Google Scholar 

  • J.P. Schimel F.S. Chapin (1996) ArticleTitleTundra plant uptake of amino acid and NH4+ nitrogen in situ: plants compete well for amino acids Ecology 77 IssueID7 2142–2147

    Google Scholar 

  • J.P. Schimel K. Kielland F.S. Chapin (1996) Nutrient availability and uptake by tundra plants J.F. Reynolds J.D. Tenhunen (Eds) In Landscape Function and Disturbance in Arctic Tundra Springer-Verlag Berlin 203–221

    Google Scholar 

  • H.R. Schulten M. Schnitzer (1998) ArticleTitleThe chemistry of soil organic nitrogen: a review Biol. Fert. Soil 26 IssueID1 1–15 Occurrence Handle1:CAS:528:DyaK2sXnsVOrur0%3D

    CAS  Google Scholar 

  • M.C. Serreze J.E. Walsh F.S. Chapin T. Osterkamp M. Dyurgerov V. Romanovsky W.C. Oechel J. Morison T. Zhang R.G. Barry (2000) ArticleTitleObservational evidence of recent change in the northern high-latitude environment [Review] Climatic Change 46 IssueID1–2 159–207

    Google Scholar 

  • G.R. Shaver F.S. Chapin (1980) ArticleTitleResponse to fertilization by various plant growth forms in an Alaskan tundra: nutrient accumulation and growth Ecology 61 IssueID3 662–675 Occurrence Handle1:CAS:528:DyaL3cXls1Krtrk%3D

    CAS  Google Scholar 

  • G.R. Shaver F.S. Chapin (1986) ArticleTitleEffect of fertilizer on production and biomass of tussock tundraAlaskaUSA Arctic Alpine Res. 18 IssueID3 261–268

    Google Scholar 

  • G.R. Shaver F.S. Chapin (1991) ArticleTitleProduction: biomass relationships and element cycling in contrasting Arctic vegetation types Ecol. Monogr. 61 IssueID1 1–32

    Google Scholar 

  • G.R. Shaver F.S. Chapin B.L. Gartner (1986) ArticleTitleFactors limiting seasonal growth and peak biomass accumulation in Eriophorum vaginatum in Alaskan tussock tundra J. Ecol. 74 IssueID1 257–278

    Google Scholar 

  • G.R. Shaver J. Kummerow (1992) Phenology Resource Allocation and Growth of Arctic Vascular Plants F.S. Chapin R. Jefferies J. Reynolds G.R. Shaver J. Svoboda (Eds) Arctic Ecosystems in a Changing Climate: An Ecophysiological Perspective Academic Press New York 193–212

    Google Scholar 

  • A. Smolander V. Kitunen (2002) ArticleTitleSoil microbial activities and characteristics of dissolved organic C and N in relation to tree species Soil Biol. Biochem. 34 IssueID5 651–660 Occurrence Handle1:CAS:528:DC%2BD38XivVahs7Y%3D

    CAS  Google Scholar 

  • F.J. Stevenson (1994) Humus Chemistry: Genesis, Composition, Reactions Wiley New York

    Google Scholar 

  • P.M. Vitousek J.R. Gosz C.C. Grier J.M. Melillo W.A. Reiners R.L. Todd (1979) ArticleTitleNitrate losses from disturbed ecosystems Science 204 469–474 Occurrence Handle1:CAS:528:DyaE1MXktVCmsrc%3D

    CAS  Google Scholar 

  • M.N. Weintraub J.P. Schimel (2003) ArticleTitleInteractions between carbon and nitrogen mineralization and soil organic matter chemistry in arctic tundra soils Ecosystems 6 IssueID2 129–143 Occurrence Handle1:CAS:528:DC%2BD3sXisFagsbo%3D

    CAS  Google Scholar 

  • Z. Yu Q. Zhang T.E.C. Kraus R.A. Dahlgren C. Anastasio R.J. Zasoski (2002) ArticleTitleContribution of amino compounds to dissolved organic nitrogen in forest soils Biogeochemistry 61 IssueID2 173–198 Occurrence Handle1:CAS:528:DC%2BD38XntFSgtLY%3D

    CAS  Google Scholar 

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Weintraub, M.N., Schimel, J.P. The seasonal dynamics of amino acids and other nutrients in Alaskan Arctic tundra soils. Biogeochemistry 73, 359–380 (2005). https://doi.org/10.1007/s10533-004-0363-z

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