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Soil- and enantiomer-specific metabolism of amino acids and their peptides by Antarctic soil microorganisms. / Hill, Paul W.; Farrell, Mark; Roberts, Paula et al.
In: Soil Biology and Biochemistry, Vol. 43, No. 12, 01.12.2011, p. 2410-2416.

Research output: Contribution to journalArticlepeer-review

HarvardHarvard

Hill, PW, Farrell, M, Roberts, P, Farrar, J, Grant, H, Newsham, KK, Hopkins, DW, Bardgett, RD & Jones, DL 2011, 'Soil- and enantiomer-specific metabolism of amino acids and their peptides by Antarctic soil microorganisms', Soil Biology and Biochemistry, vol. 43, no. 12, pp. 2410-2416. https://doi.org/10.1016/j.soilbio.2011.08.006

APA

Hill, P. W., Farrell, M., Roberts, P., Farrar, J., Grant, H., Newsham, K. K., Hopkins, D. W., Bardgett, R. D., & Jones, D. L. (2011). Soil- and enantiomer-specific metabolism of amino acids and their peptides by Antarctic soil microorganisms. Soil Biology and Biochemistry, 43(12), 2410-2416. https://doi.org/10.1016/j.soilbio.2011.08.006

CBE

Hill PW, Farrell M, Roberts P, Farrar J, Grant H, Newsham KK, Hopkins DW, Bardgett RD, Jones DL. 2011. Soil- and enantiomer-specific metabolism of amino acids and their peptides by Antarctic soil microorganisms. Soil Biology and Biochemistry. 43(12):2410-2416. https://doi.org/10.1016/j.soilbio.2011.08.006

MLA

VancouverVancouver

Hill PW, Farrell M, Roberts P, Farrar J, Grant H, Newsham KK et al. Soil- and enantiomer-specific metabolism of amino acids and their peptides by Antarctic soil microorganisms. Soil Biology and Biochemistry. 2011 Dec 1;43(12):2410-2416. Epub 2011 Aug 30. doi: 10.1016/j.soilbio.2011.08.006

Author

Hill, Paul W. ; Farrell, Mark ; Roberts, Paula et al. / Soil- and enantiomer-specific metabolism of amino acids and their peptides by Antarctic soil microorganisms. In: Soil Biology and Biochemistry. 2011 ; Vol. 43, No. 12. pp. 2410-2416.

RIS

TY - JOUR

T1 - Soil- and enantiomer-specific metabolism of amino acids and their peptides by Antarctic soil microorganisms

AU - Hill, Paul W.

AU - Farrell, Mark

AU - Roberts, Paula

AU - Farrar, John

AU - Grant, Helen

AU - Newsham, Kevin K.

AU - Hopkins, David W.

AU - Bardgett, Richard D.

AU - Jones, Davey L.

PY - 2011/12/1

Y1 - 2011/12/1

N2 - Most nitrogen (N) enters many Arctic and Antarctic soil ecosystems as protein. Soils in these polar environments frequently contain large stocks of proteinaceous organic matter, which has decomposed slowly due to low temperatures. In addition to proteins, considerable quantities of d-amino acids and their peptides enter soil from bacteria and lengthy residence times can lead to racemisation of l-amino acids in stored proteins. It has been predicted that climate warming in polar environments will lead to increased rates of soil organic N turnover (i.e. amino acids and peptides of both enantiomers). However, our understanding of organic N breakdown in these soils is very limited. To address this, we tested the influence of chain length and enantiomeric composition on the rate of breakdown of amino acids and peptides in three contrasting tundra soils formed under the grass, moss or lichen-dominated primary producer communities of Signy Island in the South Orkney Islands. Both d- and l-enantiomers of the amino acid monomer were rapidly mineralized to CO2 at rates in line with those found for l-amino acids in many other terrestrial ecosystems. In all three soils, l-peptides were decomposed faster than their amino acid monomer, suggesting a different route of microbial assimilation and catabolism. d-peptides followed the same mineralization pattern as l-peptides in the two contrasting soils under grass and lichens, but underwent relatively slow decomposition in the soil underneath moss, which was similar to the soil under the grass. We conclude that the decomposition of peptides of l-amino acids may be widely conserved amongst soil microorganisms, whereas the decomposition of peptides of d-amino acids may be altered by subtle differences between soils. We further conclude that intense competition exists in soil microbial communities for the capture of both peptides and amino acids produced from protein breakdown.

AB - Most nitrogen (N) enters many Arctic and Antarctic soil ecosystems as protein. Soils in these polar environments frequently contain large stocks of proteinaceous organic matter, which has decomposed slowly due to low temperatures. In addition to proteins, considerable quantities of d-amino acids and their peptides enter soil from bacteria and lengthy residence times can lead to racemisation of l-amino acids in stored proteins. It has been predicted that climate warming in polar environments will lead to increased rates of soil organic N turnover (i.e. amino acids and peptides of both enantiomers). However, our understanding of organic N breakdown in these soils is very limited. To address this, we tested the influence of chain length and enantiomeric composition on the rate of breakdown of amino acids and peptides in three contrasting tundra soils formed under the grass, moss or lichen-dominated primary producer communities of Signy Island in the South Orkney Islands. Both d- and l-enantiomers of the amino acid monomer were rapidly mineralized to CO2 at rates in line with those found for l-amino acids in many other terrestrial ecosystems. In all three soils, l-peptides were decomposed faster than their amino acid monomer, suggesting a different route of microbial assimilation and catabolism. d-peptides followed the same mineralization pattern as l-peptides in the two contrasting soils under grass and lichens, but underwent relatively slow decomposition in the soil underneath moss, which was similar to the soil under the grass. We conclude that the decomposition of peptides of l-amino acids may be widely conserved amongst soil microorganisms, whereas the decomposition of peptides of d-amino acids may be altered by subtle differences between soils. We further conclude that intense competition exists in soil microbial communities for the capture of both peptides and amino acids produced from protein breakdown.

KW - Oligopeptide

KW - Isomer

KW - Dissolved organic nitrogen

KW - DON

KW - Carbon cycling

KW - Mineralization

KW - C-14

KW - Permafrost

U2 - 10.1016/j.soilbio.2011.08.006

DO - 10.1016/j.soilbio.2011.08.006

M3 - Article

VL - 43

SP - 2410

EP - 2416

JO - Soil Biology and Biochemistry

JF - Soil Biology and Biochemistry

SN - 0038-0717

IS - 12

ER -