Ecological and genomic attributes of novel bacterial taxa that thrive in subsurface soil horizons

Author:

Brewer Tess E.,Aronson Emma L.,Arogyaswamy Keshav,Billings Sharon A.,Botthoff Jon K.,Campbell Ashley N.,Dove Nicholas C.,Fairbanks Dawson,Gallery Rachel E.,Hart Stephen C.,Kaye Jason,King Gary,Logan Geoffrey,Lohse Kathleen A.,Maltz Mia R.ORCID,Mayorga Emilio,O’Neill Caitlin,Owens Sarah M.,Packman Aaron,Pett-Ridge Jennifer,Plante Alain F.,Richter Daniel D.,Silver Whendee L.,Yang Wendy H.,Fierer NoahORCID

Abstract

AbstractWhile most bacterial and archaeal taxa living in surface soils remain undescribed, this problem is exacerbated in deeper soils owing to the unique oligotrophic conditions found in the subsurface. Additionally, previous studies of soil microbiomes have focused almost exclusively on surface soils, even though the microbes living in deeper soils also play critical roles in a wide range of biogeochemical processes. We examined soils collected from 20 distinct profiles across the U.S. to characterize the bacterial and archaeal communities that live in subsurface soils and to determine whether there are consistent changes in soil microbial communities with depth across a wide range of soil and environmental conditions. We found that bacterial and archaeal diversity generally decreased with depth, as did the degree of similarity of microbial communities to those found in surface horizons. We observed five phyla that consistently increased in relative abundance with depth across our soil profiles: Chloroflexi, Nitrospirae, Euryarchaeota, and candidate phyla GAL15 and Dormibacteraeota (formerly AD3). Leveraging the unusually high abundance of Dormibacteraeota at depth, we assembled genomes representative of this candidate phylum and identified traits that are likely to be beneficial in low nutrient environments, including the synthesis and storage of carbohydrates, the potential to use carbon monoxide (CO) as a supplemental energy source, and the ability to form spores. Together these attributes likely allow members of the candidate phylum Dormibacteraeota to flourish in deeper soils and provide insight into the survival and growth strategies employed by the microbes that thrive in oligotrophic soil environments.ImportanceSoil profiles are rarely homogeneous. Resource availability and microbial abundances typically decrease with soil depth, but microbes found in deeper horizons are still important components of terrestrial ecosystems. By studying 20 soil profiles across the U.S., we documented consistent changes in soil bacterial and archaeal communities with depth. Deeper soils harbored distinct communities compared to the more commonly studied surface horizons. Most notably, we found that the candidate phylum Dormibacteraeota (formerly AD3) was often dominant in subsurface soils, and we used genomes from uncultivated members of this group to identify why these taxa are able to thrive in such resource-limited environments. Simply digging deeper into soil can reveal a surprising amount of novel microbes with unique adaptations to oligotrophic subsurface conditions.

Publisher

Cold Spring Harbor Laboratory

Reference66 articles.

1. Atmosphere–soil carbon transfer as a function of soil depth;Nature,2018

2. Functional microbial community response to nutrient pulses by artificial groundwater recharge practice in surface soils and subsoils

3. Digging deeper to find unique microbial communities: The strong effect of depth on the structure of bacterial and archaeal communities in soil;Soil Biology and Biochemistry,2012

4. Variations in microbial community composition through two soil depth profiles;Soil Biology and Biochemistry,2003

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