Biotic and abiotic properties mediating plant diversity effects on soil microbial communities in an experimental grassland.

Plant diversity drives changes in the soil microbial community which may result in alterations in ecosystem functions. However, the governing factors between the composition of soil microbial communities and plant diversity are not well understood. We investigated the impact of plant diversity (plan...

Full description

Bibliographic Details
Main Authors: Markus Lange, Maike Habekost, Nico Eisenhauer, Christiane Roscher, Holger Bessler, Christof Engels, Yvonne Oelmann, Stefan Scheu, Wolfgang Wilcke, Ernst-Detlef Schulze, Gerd Gleixner
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4015938?pdf=render
id doaj-9ecdea5d244c4bd1b646aa14a17c7e25
record_format Article
spelling doaj-9ecdea5d244c4bd1b646aa14a17c7e252020-11-25T02:22:52ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0195e9618210.1371/journal.pone.0096182Biotic and abiotic properties mediating plant diversity effects on soil microbial communities in an experimental grassland.Markus LangeMaike HabekostNico EisenhauerChristiane RoscherHolger BesslerChristof EngelsYvonne OelmannStefan ScheuWolfgang WilckeErnst-Detlef SchulzeGerd GleixnerPlant diversity drives changes in the soil microbial community which may result in alterations in ecosystem functions. However, the governing factors between the composition of soil microbial communities and plant diversity are not well understood. We investigated the impact of plant diversity (plant species richness and functional group richness) and plant functional group identity on soil microbial biomass and soil microbial community structure in experimental grassland ecosystems. Total microbial biomass and community structure were determined by phospholipid fatty acid (PLFA) analysis. The diversity gradient covered 1, 2, 4, 8, 16 and 60 plant species and 1, 2, 3 and 4 plant functional groups (grasses, legumes, small herbs and tall herbs). In May 2007, soil samples were taken from experimental plots and from nearby fields and meadows. Beside soil texture, plant species richness was the main driver of soil microbial biomass. Structural equation modeling revealed that the positive plant diversity effect was mainly mediated by higher leaf area index resulting in higher soil moisture in the top soil layer. The fungal-to-bacterial biomass ratio was positively affected by plant functional group richness and negatively by the presence of legumes. Bacteria were more closely related to abiotic differences caused by plant diversity, while fungi were more affected by plant-derived organic matter inputs. We found diverse plant communities promoted faster transition of soil microbial communities typical for arable land towards grassland communities. Although some mechanisms underlying the plant diversity effect on soil microorganisms could be identified, future studies have to determine plant traits shaping soil microbial community structure. We suspect differences in root traits among different plant communities, such as root turnover rates and chemical composition of root exudates, to structure soil microbial communities.http://europepmc.org/articles/PMC4015938?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Markus Lange
Maike Habekost
Nico Eisenhauer
Christiane Roscher
Holger Bessler
Christof Engels
Yvonne Oelmann
Stefan Scheu
Wolfgang Wilcke
Ernst-Detlef Schulze
Gerd Gleixner
spellingShingle Markus Lange
Maike Habekost
Nico Eisenhauer
Christiane Roscher
Holger Bessler
Christof Engels
Yvonne Oelmann
Stefan Scheu
Wolfgang Wilcke
Ernst-Detlef Schulze
Gerd Gleixner
Biotic and abiotic properties mediating plant diversity effects on soil microbial communities in an experimental grassland.
PLoS ONE
author_facet Markus Lange
Maike Habekost
Nico Eisenhauer
Christiane Roscher
Holger Bessler
Christof Engels
Yvonne Oelmann
Stefan Scheu
Wolfgang Wilcke
Ernst-Detlef Schulze
Gerd Gleixner
author_sort Markus Lange
title Biotic and abiotic properties mediating plant diversity effects on soil microbial communities in an experimental grassland.
title_short Biotic and abiotic properties mediating plant diversity effects on soil microbial communities in an experimental grassland.
title_full Biotic and abiotic properties mediating plant diversity effects on soil microbial communities in an experimental grassland.
title_fullStr Biotic and abiotic properties mediating plant diversity effects on soil microbial communities in an experimental grassland.
title_full_unstemmed Biotic and abiotic properties mediating plant diversity effects on soil microbial communities in an experimental grassland.
title_sort biotic and abiotic properties mediating plant diversity effects on soil microbial communities in an experimental grassland.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description Plant diversity drives changes in the soil microbial community which may result in alterations in ecosystem functions. However, the governing factors between the composition of soil microbial communities and plant diversity are not well understood. We investigated the impact of plant diversity (plant species richness and functional group richness) and plant functional group identity on soil microbial biomass and soil microbial community structure in experimental grassland ecosystems. Total microbial biomass and community structure were determined by phospholipid fatty acid (PLFA) analysis. The diversity gradient covered 1, 2, 4, 8, 16 and 60 plant species and 1, 2, 3 and 4 plant functional groups (grasses, legumes, small herbs and tall herbs). In May 2007, soil samples were taken from experimental plots and from nearby fields and meadows. Beside soil texture, plant species richness was the main driver of soil microbial biomass. Structural equation modeling revealed that the positive plant diversity effect was mainly mediated by higher leaf area index resulting in higher soil moisture in the top soil layer. The fungal-to-bacterial biomass ratio was positively affected by plant functional group richness and negatively by the presence of legumes. Bacteria were more closely related to abiotic differences caused by plant diversity, while fungi were more affected by plant-derived organic matter inputs. We found diverse plant communities promoted faster transition of soil microbial communities typical for arable land towards grassland communities. Although some mechanisms underlying the plant diversity effect on soil microorganisms could be identified, future studies have to determine plant traits shaping soil microbial community structure. We suspect differences in root traits among different plant communities, such as root turnover rates and chemical composition of root exudates, to structure soil microbial communities.
url http://europepmc.org/articles/PMC4015938?pdf=render
work_keys_str_mv AT markuslange bioticandabioticpropertiesmediatingplantdiversityeffectsonsoilmicrobialcommunitiesinanexperimentalgrassland
AT maikehabekost bioticandabioticpropertiesmediatingplantdiversityeffectsonsoilmicrobialcommunitiesinanexperimentalgrassland
AT nicoeisenhauer bioticandabioticpropertiesmediatingplantdiversityeffectsonsoilmicrobialcommunitiesinanexperimentalgrassland
AT christianeroscher bioticandabioticpropertiesmediatingplantdiversityeffectsonsoilmicrobialcommunitiesinanexperimentalgrassland
AT holgerbessler bioticandabioticpropertiesmediatingplantdiversityeffectsonsoilmicrobialcommunitiesinanexperimentalgrassland
AT christofengels bioticandabioticpropertiesmediatingplantdiversityeffectsonsoilmicrobialcommunitiesinanexperimentalgrassland
AT yvonneoelmann bioticandabioticpropertiesmediatingplantdiversityeffectsonsoilmicrobialcommunitiesinanexperimentalgrassland
AT stefanscheu bioticandabioticpropertiesmediatingplantdiversityeffectsonsoilmicrobialcommunitiesinanexperimentalgrassland
AT wolfgangwilcke bioticandabioticpropertiesmediatingplantdiversityeffectsonsoilmicrobialcommunitiesinanexperimentalgrassland
AT ernstdetlefschulze bioticandabioticpropertiesmediatingplantdiversityeffectsonsoilmicrobialcommunitiesinanexperimentalgrassland
AT gerdgleixner bioticandabioticpropertiesmediatingplantdiversityeffectsonsoilmicrobialcommunitiesinanexperimentalgrassland
_version_ 1724861360729227264