Microbial growth and carbon use efficiency in the rhizosphere and root-free soil.

Plant-microbial interactions alter C and N balance in the rhizosphere and affect the microbial carbon use efficiency (CUE)-the fundamental characteristic of microbial metabolism. Estimation of CUE in microbial hotspots with high dynamics of activity and changes of microbial physiological state from...

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Main Authors: Evgenia Blagodatskaya, Sergey Blagodatsky, Traute-Heidi Anderson, Yakov Kuzyakov
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/24722409/pdf/?tool=EBI
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spelling doaj-4b2f09121db444a4a434d2faf4e93d762021-03-04T09:35:09ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0194e9328210.1371/journal.pone.0093282Microbial growth and carbon use efficiency in the rhizosphere and root-free soil.Evgenia BlagodatskayaSergey BlagodatskyTraute-Heidi AndersonYakov KuzyakovPlant-microbial interactions alter C and N balance in the rhizosphere and affect the microbial carbon use efficiency (CUE)-the fundamental characteristic of microbial metabolism. Estimation of CUE in microbial hotspots with high dynamics of activity and changes of microbial physiological state from dormancy to activity is a challenge in soil microbiology. We analyzed respiratory activity, microbial DNA content and CUE by manipulation the C and nutrients availability in the soil under Beta vulgaris. All measurements were done in root-free and rhizosphere soil under steady-state conditions and during microbial growth induced by addition of glucose. Microorganisms in the rhizosphere and root-free soil differed in their CUE dynamics due to varying time delays between respiration burst and DNA increase. Constant CUE in an exponentially-growing microbial community in rhizosphere demonstrated the balanced growth. In contrast, the CUE in the root-free soil increased more than three times at the end of exponential growth and was 1.5 times higher than in the rhizosphere. Plants alter the dynamics of microbial CUE by balancing the catabolic and anabolic processes, which were decoupled in the root-free soil. The effects of N and C availability on CUE in rhizosphere and root-free soil are discussed.https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/24722409/pdf/?tool=EBI
collection DOAJ
language English
format Article
sources DOAJ
author Evgenia Blagodatskaya
Sergey Blagodatsky
Traute-Heidi Anderson
Yakov Kuzyakov
spellingShingle Evgenia Blagodatskaya
Sergey Blagodatsky
Traute-Heidi Anderson
Yakov Kuzyakov
Microbial growth and carbon use efficiency in the rhizosphere and root-free soil.
PLoS ONE
author_facet Evgenia Blagodatskaya
Sergey Blagodatsky
Traute-Heidi Anderson
Yakov Kuzyakov
author_sort Evgenia Blagodatskaya
title Microbial growth and carbon use efficiency in the rhizosphere and root-free soil.
title_short Microbial growth and carbon use efficiency in the rhizosphere and root-free soil.
title_full Microbial growth and carbon use efficiency in the rhizosphere and root-free soil.
title_fullStr Microbial growth and carbon use efficiency in the rhizosphere and root-free soil.
title_full_unstemmed Microbial growth and carbon use efficiency in the rhizosphere and root-free soil.
title_sort microbial growth and carbon use efficiency in the rhizosphere and root-free soil.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description Plant-microbial interactions alter C and N balance in the rhizosphere and affect the microbial carbon use efficiency (CUE)-the fundamental characteristic of microbial metabolism. Estimation of CUE in microbial hotspots with high dynamics of activity and changes of microbial physiological state from dormancy to activity is a challenge in soil microbiology. We analyzed respiratory activity, microbial DNA content and CUE by manipulation the C and nutrients availability in the soil under Beta vulgaris. All measurements were done in root-free and rhizosphere soil under steady-state conditions and during microbial growth induced by addition of glucose. Microorganisms in the rhizosphere and root-free soil differed in their CUE dynamics due to varying time delays between respiration burst and DNA increase. Constant CUE in an exponentially-growing microbial community in rhizosphere demonstrated the balanced growth. In contrast, the CUE in the root-free soil increased more than three times at the end of exponential growth and was 1.5 times higher than in the rhizosphere. Plants alter the dynamics of microbial CUE by balancing the catabolic and anabolic processes, which were decoupled in the root-free soil. The effects of N and C availability on CUE in rhizosphere and root-free soil are discussed.
url https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/24722409/pdf/?tool=EBI
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