Impact of plants on the diversity and activity of methylotrophs in soil
Влияние растений на разнообразие и активность метилотрофов в почве
2020-03-10
SCID: 54.1/9ttcs2ab
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13C-labelled methanolMethylophilaceaemethanol dehydrogenase genesmethanol-consuming bacteriastable isotope probing
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Abstract (AI)
Abstract Background Methanol is the second most abundant volatile organic compound in the atmosphere, with the majority produced as a metabolic by-product during plant growth. There is a large disparity between the estimated amount of methanol produced by plants and the amount which escapes to the atmosphere. This may be due to utilisation of methanol by plant-associated methanol-consuming bacteria (methylotrophs). The use of molecular probes has previously been effective in characterising the diversity of methylotrophs within the environment. Here, we developed and applied molecular probes in combination with stable isotope probing to identify the diversity, abundance and activity of methylotrophs in bulk and in plant-associated soils. Results Application of probes for methanol dehydrogenase genes ( mxaF , xoxF , mdh2 ) in bulk and plant-associated soils revealed high levels of diversity of methylotrophic bacteria within the bulk soil, including Hyphomicrobium , Methylobacterium and members of the Comamonadaceae . The community of methylotrophic bacteria captured by this sequencing approach changed following plant growth. This shift in methylotrophic diversity was corroborated by identification of the active methylotrophs present in the soils by DNA stable isotope probing using 13 C-labelled methanol. Sequencing of the 16S rRNA genes and construction of metagenomes from the 13 C-labelled DNA revealed members of the Methylophilaceae as highly abundant and active in all soils examined. There was greater diversity of active members of the Methylophilaceae and Comamonadaceae and of the genus Methylobacterium in plant-associated soils compared to the bulk soil. Incubating growing pea plants in a 13 CO 2 atmosphere revealed that several genera of methylotrophs, as well as heterotrophic genera within the Actinomycetales , assimilated plant exudates in the pea rhizosphere. Conclusion In this study, we show that plant growth has a major impact on both the diversity and the activity of methanol-utilising methylotrophs in the soil environment, and thus, the study contributes significantly to efforts to balance the terrestrial methanol and carbon cycle.
Key Findings
1
DNA stable isotope probing with 13C-methanol identified members of Methylophilaceae as highly abundant and active methylotrophs across all soils examined.
2
Incubation of growing pea plants in 13CO2 demonstrated that several methylotrophic genera and heterotrophic Actinomycetales assimilated plant-derived exudates in the rhizosphere.
3
Molecular probes for methanol dehydrogenase genes (mxaF, xoxF, mdh2) revealed high diversity of methylotrophic bacteria in bulk soil, including Hyphomicrobium, Methylobacterium and Comamonadaceae.
4
Overall, plant growth has a major impact on both diversity and activity of soil methanol-utilising methylotrophs, affecting terrestrial methanol and carbon cycling.
5
Plant growth changes the composition of the methylotrophic community captured by sequencing of methanol dehydrogenase genes.
6
Plant-associated soils showed greater diversity of active Methylophilaceae, Comamonadaceae and Methylobacterium compared to bulk soil.
Research Object
Methylotrophic bacterial communities in bulk and plant-associated soils
Research Subject
Impact of plant growth on the diversity, abundance and activity (carbon assimilation from methanol/plant exudates) of soil methylotrophs, including taxonomic shifts among Methylophilaceae, Comamonadaceae, Methylobacterium and others
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2020-03-10
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