bioRxiv Science⌕ Search

Biology subjects

Northup, D. E.

Publications and source records attributed to Northup, D. E..

2 recordsLinked to original sources

Metagenomic insights into an enigmatic gammaproteobacterium that is important for carbon cycling in cave ecosystems worldwide

Caves are windows into the subsurface through which we can directly evaluate the microbiological processes responsible for rock weathering and biogeochemical cycling in more expansive areas of Earths subsurface. However, many cave microbial communities are dominated by microorganisms from uncultivated groups with unknown genomic capabilities that cannot be resolved from marker gene surveys alone. An example of this is a genus of Gammaproteobacteria known as "wb1-P19", which are ubiquitous and abundant in rRNA gene surveys from limestone and volcanic caves around the world. We recovered a nearly complete metagenome-assembled genome (MAG) representing a population of wb1-P19 from Lehman Caves in Great Basin National Park, Nevada, USA, and used it to identify additional MAGs representing this group from the Frasassi Caves in Italy and in publicly available databases. Although members of the wb1-P19 group have often been thought to be autotrophs that oxidize inorganic nitrogen compounds, we show that wb1-P19 are actually obligate or facultative methanotrophs capable of aerobic and anaerobic growth. Based on genomic classification, wb1-P19 are members of upland soil cluster {gamma} (USC{gamma}; part of the newly proposed order "Candidatus Methyloligotrophales"), and are likely important for methane consumption and carbon cycling in caves and other subterranean ecosystems globally.

microbiology↗

Convergent community assembly among globally separated acidic cave biofilms

Acidophilic bacteria and archaea inhabit extreme geochemical islands that can tell us when and how geographic barriers affect the biogeography of microorganisms. Here we describe microbial communities from extremely acidic (pH 0-1) biofilms known as "snottites" from hydrogen sulfide-rich caves around the world. Given the extreme acidity and subsurface location of these biofilms, and in light of earlier work showing strong geographic patterns among snottite Acidithiobacillus populations, we investigated their structure and diversity in order to understand how geography might impact community assembly. We used 16S rRNA gene cloning and fluorescence in situ hybridization (FISH) to investigate 26 snottite samples from four sulfidic caves in Italy and Mexico. All samples had very low biodiversity and were dominated by sulfur-oxidizing bacteria in the genus Acidithiobacillus. Ferroplasma and other archaea in the Thermoplasmatales ranged from 0 to 50% of total cells, and relatives of the bacterial genera Acidimicrobium and Ferrimicrobium were up to 15% of total cells. Rare phylotypes included Sulfobacillus spp. and members of the Dependentiae and Saccharibacteria (formerly TM6 and TM7). Although the same genera of acidophiles occurred in snottites on separate continents, most members of those genera represent substantially divergent populations with 16S rRNA genes that are only 95-98% similar. Our findings are consistent with a model of community assembly where sulfidic caves are stochastically colonized by microorganisms from local sources, which are strongly filtered through selection for extreme acid tolerance, and these different colonization histories are maintained by dispersal restrictions within and among caves. ImportanceMicroorganisms that are adapted to extremely acidic conditions, known as extreme acidophiles, are catalysts for rock weathering, metal cycling, and mineral formation in naturally acidic environments. They are also important drivers of large-scale industrial processes such as biomining and contaminant remediation. Understanding the factors that govern their ecology and distribution can help us better predict and utilize their activities in natural and engineered systems. However, extremely acidic habitats are unusual in that they are almost always isolated within circumneutral landscapes. So where did their acid-adapted inhabitants come from, and how do new colonists arrive and become established? In this study, we took advantage of a unique natural experiment in Earths subsurface to show how isolation may have played a role in the colonization history, community assembly, and diversity of highly acidic microbial biofilms.

microbiology↗