Drought increases the frequencies of fungal functional genes related to carbon and nitrogen acquisition.
Although water is a critical resource for organisms, microbially-mediated processes such as decomposition and nitrogen (N) transformations can endure within ecosystems even when water is scarce. To identify underlying mechanisms, we examined the genetic potential for fungi to contribute to specific...
Main Authors: | , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Public Library of Science (PLoS)
2018-01-01
|
Series: | PLoS ONE |
Online Access: | http://europepmc.org/articles/PMC6248904?pdf=render |
id |
doaj-986d92d0de774012a2a23f0b65fe3209 |
---|---|
record_format |
Article |
spelling |
doaj-986d92d0de774012a2a23f0b65fe32092020-11-25T00:08:49ZengPublic Library of Science (PLoS)PLoS ONE1932-62032018-01-011311e020644110.1371/journal.pone.0206441Drought increases the frequencies of fungal functional genes related to carbon and nitrogen acquisition.Kathleen K TresederRenaud BerlemontSteven D AllisonAdam C MartinyAlthough water is a critical resource for organisms, microbially-mediated processes such as decomposition and nitrogen (N) transformations can endure within ecosystems even when water is scarce. To identify underlying mechanisms, we examined the genetic potential for fungi to contribute to specific aspects of carbon (C) and N cycling in a drought manipulation in Southern California grassland. In particular, we measured the frequency of fungal functional genes encoding enzymes that break down cellulose and chitin, and take up ammonium and amino acids, in decomposing litter. Furthermore, we used "microbial cages" to reciprocally transplant litter and microbes between control and drought plots. This approach allowed us to distinguish direct effects of drought in the plot environment versus indirect effects via shifts in the microbial community or changes in litter chemistry. For every fungal functional gene we examined, the frequency of that gene within the microbial community increased significantly in drought plots compared to control plots. In contrast, when plot environment was held constant, frequencies of these fungal functional genes did not differ significantly between control-derived microbes versus drought-derived microbes, or between control-derived litter versus drought-derived litter. It appears that drought directly selects for fungi with the genetic capacity to acquire these specific C- and N-containing compounds. This genetic trait may allow fungi to take advantage of ephemeral water supplies. Altogether, proliferation of fungi with the genetic capacity for C and N acquisition may contribute to the maintenance of biogeochemical cycling under drought.http://europepmc.org/articles/PMC6248904?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Kathleen K Treseder Renaud Berlemont Steven D Allison Adam C Martiny |
spellingShingle |
Kathleen K Treseder Renaud Berlemont Steven D Allison Adam C Martiny Drought increases the frequencies of fungal functional genes related to carbon and nitrogen acquisition. PLoS ONE |
author_facet |
Kathleen K Treseder Renaud Berlemont Steven D Allison Adam C Martiny |
author_sort |
Kathleen K Treseder |
title |
Drought increases the frequencies of fungal functional genes related to carbon and nitrogen acquisition. |
title_short |
Drought increases the frequencies of fungal functional genes related to carbon and nitrogen acquisition. |
title_full |
Drought increases the frequencies of fungal functional genes related to carbon and nitrogen acquisition. |
title_fullStr |
Drought increases the frequencies of fungal functional genes related to carbon and nitrogen acquisition. |
title_full_unstemmed |
Drought increases the frequencies of fungal functional genes related to carbon and nitrogen acquisition. |
title_sort |
drought increases the frequencies of fungal functional genes related to carbon and nitrogen acquisition. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2018-01-01 |
description |
Although water is a critical resource for organisms, microbially-mediated processes such as decomposition and nitrogen (N) transformations can endure within ecosystems even when water is scarce. To identify underlying mechanisms, we examined the genetic potential for fungi to contribute to specific aspects of carbon (C) and N cycling in a drought manipulation in Southern California grassland. In particular, we measured the frequency of fungal functional genes encoding enzymes that break down cellulose and chitin, and take up ammonium and amino acids, in decomposing litter. Furthermore, we used "microbial cages" to reciprocally transplant litter and microbes between control and drought plots. This approach allowed us to distinguish direct effects of drought in the plot environment versus indirect effects via shifts in the microbial community or changes in litter chemistry. For every fungal functional gene we examined, the frequency of that gene within the microbial community increased significantly in drought plots compared to control plots. In contrast, when plot environment was held constant, frequencies of these fungal functional genes did not differ significantly between control-derived microbes versus drought-derived microbes, or between control-derived litter versus drought-derived litter. It appears that drought directly selects for fungi with the genetic capacity to acquire these specific C- and N-containing compounds. This genetic trait may allow fungi to take advantage of ephemeral water supplies. Altogether, proliferation of fungi with the genetic capacity for C and N acquisition may contribute to the maintenance of biogeochemical cycling under drought. |
url |
http://europepmc.org/articles/PMC6248904?pdf=render |
work_keys_str_mv |
AT kathleenktreseder droughtincreasesthefrequenciesoffungalfunctionalgenesrelatedtocarbonandnitrogenacquisition AT renaudberlemont droughtincreasesthefrequenciesoffungalfunctionalgenesrelatedtocarbonandnitrogenacquisition AT stevendallison droughtincreasesthefrequenciesoffungalfunctionalgenesrelatedtocarbonandnitrogenacquisition AT adamcmartiny droughtincreasesthefrequenciesoffungalfunctionalgenesrelatedtocarbonandnitrogenacquisition |
_version_ |
1725414405593628672 |