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Microbial community composition explains soil respiration responses to changing carbon inputs along an Andes-to-Amazon elevation gradient
1. The Andes are predicted to warm by 3–5 °C this century with the potential to alter the processes regulating carbon (C) cycling in these tropical forest soils. This rapid warming is expected to stimulate soil microbial respiration and change plant species distributions, thereby affecting the quant...
Autores principales: | , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
BlackWell Publishing Ltd
2014
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4263258/ https://www.ncbi.nlm.nih.gov/pubmed/25520527 http://dx.doi.org/10.1111/1365-2745.12247 |
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author | Whitaker, Jeanette Ostle, Nicholas Nottingham, Andrew T Ccahuana, Adan Salinas, Norma Bardgett, Richard D Meir, Patrick McNamara, Niall P Austin, Amy |
author_facet | Whitaker, Jeanette Ostle, Nicholas Nottingham, Andrew T Ccahuana, Adan Salinas, Norma Bardgett, Richard D Meir, Patrick McNamara, Niall P Austin, Amy |
author_sort | Whitaker, Jeanette |
collection | PubMed |
description | 1. The Andes are predicted to warm by 3–5 °C this century with the potential to alter the processes regulating carbon (C) cycling in these tropical forest soils. This rapid warming is expected to stimulate soil microbial respiration and change plant species distributions, thereby affecting the quantity and quality of C inputs to the soil and influencing the quantity of soil-derived CO(2) released to the atmosphere. 2. We studied tropical lowland, premontane and montane forest soils taken from along a 3200-m elevation gradient located in south-east Andean Peru. We determined how soil microbial communities and abiotic soil properties differed with elevation. We then examined how these differences in microbial composition and soil abiotic properties affected soil C-cycling processes, by amending soils with C substrates varying in complexity and measuring soil heterotrophic respiration (R(H)). 3. Our results show that there were consistent patterns of change in soil biotic and abiotic properties with elevation. Microbial biomass and the abundance of fungi relative to bacteria increased significantly with elevation, and these differences in microbial community composition were strongly correlated with greater soil C content and C:N (nitrogen) ratios. We also found that R(H) increased with added C substrate quality and quantity and was positively related to microbial biomass and fungal abundance. 4. Statistical modelling revealed that R(H) responses to changing C inputs were best predicted by soil pH and microbial community composition, with the abundance of fungi relative to bacteria, and abundance of gram-positive relative to gram-negative bacteria explaining much of the model variance. 5. Synthesis. Our results show that the relative abundance of microbial functional groups is an important determinant of R(H) responses to changing C inputs along an extensive tropical elevation gradient in Andean Peru. Although we do not make an experimental test of the effects of climate change on soil, these results challenge the assumption that different soil microbial communities will be ‘functionally equivalent’ as climate change progresses, and they emphasize the need for better ecological metrics of soil microbial communities to help predict C cycle responses to climate change in tropical biomes. |
format | Online Article Text |
id | pubmed-4263258 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2014 |
publisher | BlackWell Publishing Ltd |
record_format | MEDLINE/PubMed |
spelling | pubmed-42632582014-12-15 Microbial community composition explains soil respiration responses to changing carbon inputs along an Andes-to-Amazon elevation gradient Whitaker, Jeanette Ostle, Nicholas Nottingham, Andrew T Ccahuana, Adan Salinas, Norma Bardgett, Richard D Meir, Patrick McNamara, Niall P Austin, Amy J Ecol Plant–Soil (Below-Ground) Interactions 1. The Andes are predicted to warm by 3–5 °C this century with the potential to alter the processes regulating carbon (C) cycling in these tropical forest soils. This rapid warming is expected to stimulate soil microbial respiration and change plant species distributions, thereby affecting the quantity and quality of C inputs to the soil and influencing the quantity of soil-derived CO(2) released to the atmosphere. 2. We studied tropical lowland, premontane and montane forest soils taken from along a 3200-m elevation gradient located in south-east Andean Peru. We determined how soil microbial communities and abiotic soil properties differed with elevation. We then examined how these differences in microbial composition and soil abiotic properties affected soil C-cycling processes, by amending soils with C substrates varying in complexity and measuring soil heterotrophic respiration (R(H)). 3. Our results show that there were consistent patterns of change in soil biotic and abiotic properties with elevation. Microbial biomass and the abundance of fungi relative to bacteria increased significantly with elevation, and these differences in microbial community composition were strongly correlated with greater soil C content and C:N (nitrogen) ratios. We also found that R(H) increased with added C substrate quality and quantity and was positively related to microbial biomass and fungal abundance. 4. Statistical modelling revealed that R(H) responses to changing C inputs were best predicted by soil pH and microbial community composition, with the abundance of fungi relative to bacteria, and abundance of gram-positive relative to gram-negative bacteria explaining much of the model variance. 5. Synthesis. Our results show that the relative abundance of microbial functional groups is an important determinant of R(H) responses to changing C inputs along an extensive tropical elevation gradient in Andean Peru. Although we do not make an experimental test of the effects of climate change on soil, these results challenge the assumption that different soil microbial communities will be ‘functionally equivalent’ as climate change progresses, and they emphasize the need for better ecological metrics of soil microbial communities to help predict C cycle responses to climate change in tropical biomes. BlackWell Publishing Ltd 2014-07 2014-05-19 /pmc/articles/PMC4263258/ /pubmed/25520527 http://dx.doi.org/10.1111/1365-2745.12247 Text en © 2014 NERC Centre for Ecology and Hydrology. Journal of Ecology published by John Wiley & Sons Ltd on behalf of British Ecological Society. http://creativecommons.org/licenses/by/3.0/ This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited. |
spellingShingle | Plant–Soil (Below-Ground) Interactions Whitaker, Jeanette Ostle, Nicholas Nottingham, Andrew T Ccahuana, Adan Salinas, Norma Bardgett, Richard D Meir, Patrick McNamara, Niall P Austin, Amy Microbial community composition explains soil respiration responses to changing carbon inputs along an Andes-to-Amazon elevation gradient |
title | Microbial community composition explains soil respiration responses to changing carbon inputs along an Andes-to-Amazon elevation gradient |
title_full | Microbial community composition explains soil respiration responses to changing carbon inputs along an Andes-to-Amazon elevation gradient |
title_fullStr | Microbial community composition explains soil respiration responses to changing carbon inputs along an Andes-to-Amazon elevation gradient |
title_full_unstemmed | Microbial community composition explains soil respiration responses to changing carbon inputs along an Andes-to-Amazon elevation gradient |
title_short | Microbial community composition explains soil respiration responses to changing carbon inputs along an Andes-to-Amazon elevation gradient |
title_sort | microbial community composition explains soil respiration responses to changing carbon inputs along an andes-to-amazon elevation gradient |
topic | Plant–Soil (Below-Ground) Interactions |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4263258/ https://www.ncbi.nlm.nih.gov/pubmed/25520527 http://dx.doi.org/10.1111/1365-2745.12247 |
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