Cropping systems modulate the rate and magnitude of soil microbial autotrophic CO2 fixation in soil

The effect of different cropping systems on CO2 fixation by soil microorganisms was studied by comparing soils from three exemplary cropping systems: continuous cropping of paddy rice (rice-rice), rotation of paddy rice and rapeseed (rice-rapeseed), and rotated cropping of rapeseed and corn (rapesee...

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Main Authors: Xiao Hong Wu, Ti Da Ge, Wei eWang, Hong Zhao Yuan, Carl Eric Wegner, Zhen Ke Zhu, Andrew Steven Whiteley, Jin Shui Wu
Format: Article
Language:English
Published: Frontiers Media S.A. 2015-05-01
Series:Frontiers in Microbiology
Subjects:
Online Access:http://journal.frontiersin.org/Journal/10.3389/fmicb.2015.00379/full
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spelling doaj-d51b5449faf34bc694d39b0672f8aedb2020-11-24T21:29:08ZengFrontiers Media S.A.Frontiers in Microbiology1664-302X2015-05-01610.3389/fmicb.2015.00379112430Cropping systems modulate the rate and magnitude of soil microbial autotrophic CO2 fixation in soilXiao Hong Wu0Ti Da Ge1Wei eWang2Hong Zhao Yuan3Carl Eric Wegner4Zhen Ke Zhu5Andrew Steven Whiteley6Jin Shui Wu7Institute of Subtropical Agriculture, Chinese Academy of SciencesInstitute of Subtropical Agriculture, Chinese Academy of SciencesInstitute of Subtropical Agriculture, Chinese Academy of SciencesInstitute of Subtropical Agriculture, Chinese Academy of SciencesMax Planck Institute for Terrestrial MicrobiologyInstitute of Subtropical Agriculture, Chinese Academy of SciencesThe University of Western AustraliaInstitute of Subtropical Agriculture, Chinese Academy of SciencesThe effect of different cropping systems on CO2 fixation by soil microorganisms was studied by comparing soils from three exemplary cropping systems: continuous cropping of paddy rice (rice-rice), rotation of paddy rice and rapeseed (rice-rapeseed), and rotated cropping of rapeseed and corn (rapeseed-corn). Soils from different cropping systems were continuously labeling with 14C-CO2 for 110 days. The CO2-fixing bacterial communities were investigated by analyzing the cbbL gene encoding ribulose-1,5-bisphosphate carboxylase oxygenase (RubisCO). Abundance, diversity and activity of cbbL-carrying bacteria were analyzed by quantitative PCR, cbbL clone libraries and enzyme assays. After 110 days incubation, substantial amounts of 14C-CO2 were incorporated into soil organic carbon (14C-SOC) and microbial organic carbon (14C-MBC). Rice-rice rotated soil showed stronger incorporation rates when looking at 14C-SOC and 14C-MBC contents. These differences in incorporation rates were also reflected by RubisCO activities. 14C-MBC, cbbL gene abundances and RubisCO activity were found to correlate significantly with 14C-SOC, indicating cbbL-carrying bacteria to be key players for CO2 fixation in these soils. The analysis of clone libraries revealed distinct cbbL-carrying bacterial communities for the individual soils analyzed. Most of the identified operational taxonomic units (OTU) were related to Nitrobacter hamburgensis, Methylibium petroleiphilum, Rhodoblastus acidophilus, Bradyrhizobium, Cupriavidus metallidurans, Rubrivivax, Burkholderia, stappia and Thiobacillus thiophilus. OTUs related to Rubrivivax gelatinosus were specific for rice-rice soil. OTUs linked to Methylibium petroleiphilum were exclusively found in rice-rapeseed soil. Observed differences could be linked to differences in soil parameters such as SOC. We conclude that the long-term application of cropping systems alters underlying soil parameters, which in turn selects for distinct autotrophic communities.http://journal.frontiersin.org/Journal/10.3389/fmicb.2015.00379/fullRubiscosoil depthautotrophic bacteria CO2 fixationcbbL genes14C continuous labeling14C-SOC
collection DOAJ
language English
format Article
sources DOAJ
author Xiao Hong Wu
Ti Da Ge
Wei eWang
Hong Zhao Yuan
Carl Eric Wegner
Zhen Ke Zhu
Andrew Steven Whiteley
Jin Shui Wu
spellingShingle Xiao Hong Wu
Ti Da Ge
Wei eWang
Hong Zhao Yuan
Carl Eric Wegner
Zhen Ke Zhu
Andrew Steven Whiteley
Jin Shui Wu
Cropping systems modulate the rate and magnitude of soil microbial autotrophic CO2 fixation in soil
Frontiers in Microbiology
Rubisco
soil depth
autotrophic bacteria CO2 fixation
cbbL genes
14C continuous labeling
14C-SOC
author_facet Xiao Hong Wu
Ti Da Ge
Wei eWang
Hong Zhao Yuan
Carl Eric Wegner
Zhen Ke Zhu
Andrew Steven Whiteley
Jin Shui Wu
author_sort Xiao Hong Wu
title Cropping systems modulate the rate and magnitude of soil microbial autotrophic CO2 fixation in soil
title_short Cropping systems modulate the rate and magnitude of soil microbial autotrophic CO2 fixation in soil
title_full Cropping systems modulate the rate and magnitude of soil microbial autotrophic CO2 fixation in soil
title_fullStr Cropping systems modulate the rate and magnitude of soil microbial autotrophic CO2 fixation in soil
title_full_unstemmed Cropping systems modulate the rate and magnitude of soil microbial autotrophic CO2 fixation in soil
title_sort cropping systems modulate the rate and magnitude of soil microbial autotrophic co2 fixation in soil
publisher Frontiers Media S.A.
series Frontiers in Microbiology
issn 1664-302X
publishDate 2015-05-01
description The effect of different cropping systems on CO2 fixation by soil microorganisms was studied by comparing soils from three exemplary cropping systems: continuous cropping of paddy rice (rice-rice), rotation of paddy rice and rapeseed (rice-rapeseed), and rotated cropping of rapeseed and corn (rapeseed-corn). Soils from different cropping systems were continuously labeling with 14C-CO2 for 110 days. The CO2-fixing bacterial communities were investigated by analyzing the cbbL gene encoding ribulose-1,5-bisphosphate carboxylase oxygenase (RubisCO). Abundance, diversity and activity of cbbL-carrying bacteria were analyzed by quantitative PCR, cbbL clone libraries and enzyme assays. After 110 days incubation, substantial amounts of 14C-CO2 were incorporated into soil organic carbon (14C-SOC) and microbial organic carbon (14C-MBC). Rice-rice rotated soil showed stronger incorporation rates when looking at 14C-SOC and 14C-MBC contents. These differences in incorporation rates were also reflected by RubisCO activities. 14C-MBC, cbbL gene abundances and RubisCO activity were found to correlate significantly with 14C-SOC, indicating cbbL-carrying bacteria to be key players for CO2 fixation in these soils. The analysis of clone libraries revealed distinct cbbL-carrying bacterial communities for the individual soils analyzed. Most of the identified operational taxonomic units (OTU) were related to Nitrobacter hamburgensis, Methylibium petroleiphilum, Rhodoblastus acidophilus, Bradyrhizobium, Cupriavidus metallidurans, Rubrivivax, Burkholderia, stappia and Thiobacillus thiophilus. OTUs related to Rubrivivax gelatinosus were specific for rice-rice soil. OTUs linked to Methylibium petroleiphilum were exclusively found in rice-rapeseed soil. Observed differences could be linked to differences in soil parameters such as SOC. We conclude that the long-term application of cropping systems alters underlying soil parameters, which in turn selects for distinct autotrophic communities.
topic Rubisco
soil depth
autotrophic bacteria CO2 fixation
cbbL genes
14C continuous labeling
14C-SOC
url http://journal.frontiersin.org/Journal/10.3389/fmicb.2015.00379/full
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