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Barbato, R. A.

Publications and source records attributed to Barbato, R. A..

3 recordsLinked to original sources

Growth Optimization Predicts Microbial Success in a Permafrost Thaw Experiment

Ongoing climate warming is thawing global permafrost, making vast pools of organic carbon available as microbial growth substrates. Uncertainty surrounding microbial successional dynamics limits our ability to parameterize the global-scale biogeochemical consequences of this thawing permafrost. We developed a genomic index of growth optimization to predict whether individual taxa increase or decrease in abundance during early thaw and validate our approach using incubation experiments from permafrost collected in Interior Alaska.

microbiology↗

Consistent microorganisms respond during aerobic thaw of Alaskan permafrost soils

Arctic systems are experiencing warming at four times the rate of the global average, causing permafrost--permanently frozen soil, ice, organic matter, and bedrock--to thaw. Permafrost thaw exposes previously unavailable soil carbon and nutrients to decomposition--a process mediated by microbes--which releases greenhouse gases such as carbon dioxide and methane into the atmosphere. While it is well-established that thaw alters the composition and function of the permafrost microbiome, patterns revealing common responses to thaw across different permafrost soil types have not yet emerged. Here, we address how permafrost thaw impacts microbiome diversity, alters species abundance, and contributes to carbon flux in the Arctic. We sampled peat-like, mineral, and organic-mineral permafrost from three locations in central and northern Alaska and assessed their abiotic soil properties and microbiome characteristics during a 3-month laboratory microcosm incubation. In all sites, prokaryotic biomass increased following thaw, measured as 16S rRNA gene copy number and absolute abundance. This change in biomass was positively correlated with cumulative respiration, indicating an increase in microbial activity post-thaw. We assessed the thaw response of microbial taxa across three sites, identifying taxa that significantly increased in abundance post-thaw. Common responders shared across all sites belonged to the families Beijerinckiaceae, Burkholderiaceae, Clostridiaceae, Oxalobacteraceae, Pseudomonadaceae, and Sporichthyaceae, indicating a common set of taxa that consistently respond to thaw regardless of site-specific conditions. Alpha diversity decreased with thaw across all sites, which likely reflects the increased dominance of specific thaw-responsive taxa, which may be driving post-thaw biogeochemistry and increased respiration. Taken together, we deepen the understanding of different permafrost microbiomes and their response to thaw, which has implications for the permafrost-climate feedback and allows for better predictions of how Arctic ecosystem structure and function respond to change.

microbiology↗

Microbial Resuscitation and Growth Rates in Deep Permafrost: Lipid Stable Isotope Probing Results from the Permafrost Research Tunnel in Fox, Alaska

Permafrost is at increasing risk of thaw as cold regions in the Northern Hemisphere continue to warm. Of particular concern is ice-rich, organic-rich, syngenetic "yedoma" type permafrost. The lability of organic carbon in permafrost post-thaw largely depends on the rate at which microorganisms resuscitate and proliferate after thousands of years in below-freezing, dark, anaerobic conditions. However, the resuscitation and growth rates of microorganisms in deep permafrost are unknown. To quantify these rates, we conducted lipid stable isotope probing (lipid-SIP) on permafrost cores collected from four locations within the Permafrost Tunnel near Fairbanks, Alaska. We compare rates of microbial growth, marker gene sequences, and greenhouse gas (CO2, CH4) emissions across cores held anaerobically at ambient and elevated temperatures. In deep, ancient permafrost, microbial biomass turnover is exceedingly slow, often undetectable, within the first month following thaw. Our results indicate microbial growth in response to anaerobic thaw has a notable lag period, where only 0.001 - 0.01% of cells turn over per day. This suggests a slow reawakening that could provide some buffer between anomalous warmth and C degradation if permafrost refreezes seasonally. However, within six months, microbial communities undergo dramatic restructuring and succession, producing communities that are distinct from both the emplaced ancient and overlying surface communities. These results have critical implications for predictions of microbial biogeochemical contributions in a warming arctic, especially as thaw proceeds into deeper and more ancient permafrost horizons. Plain Language SummaryPermafrost, earth material like soil, rock, or ice continually frozen for more than two years, contains more organic carbon than is currently in the atmosphere as CO2. As the Arctic warms and permafrost thaws, ancient microbes can reactivate, allowing the degradation of organic carbon that has accumulated in permafrost over millenia, resulting in the release of greenhouse gases. In this work, we measured the rates at which permafrost microorganisms resuscitate during thaw and related these growth rates to changes in microbial community composition and greenhouse gas emissions. Key PointsO_LIMicrobial growth is extremely slow within the first 30 days of thaw. Temperature may drive which taxa are active, but not growth rates. C_LIO_LISubsurface microbes show a preference for glycolipids over phospholipids, suggesting a possible cryotolerance adaptation. C_LIO_LIAncient, entrapped gases may be the primary source of emissions in early thaw stages. C_LI

microbiology↗