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  • 1
    Publikationsdatum: 2024-02-10
    Schlagwort(e): anoxygenic phototrophy; brackish coastal ecosystem; CRISPR-Cas; Green sulfur bacteria; microbial bloom; Microbial succession; Microviridae; Prosthecochloris; resilience; RIVER; Sampling river; Trunk_River_Woods_Hole; Virus; Woods Hole, USA
    Materialart: Dataset
    Format: application/zip, 289 kBytes
    Standort Signatur Erwartet Verfügbarkeit
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  • 2
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    In:  Supplement to: Bhatnagar, Srijak; Cowley, Elise S; Kopf, Sebastian; Pérez Castro, Sherlynette; Kearney, Sean; Dawson, Scott C; Hanselmann, Kurt; Ruff, S Emil (2020): Microbial community dynamics and coexistence in a sulfide-driven phototrophic bloom. Environmental Microbiome, 15(1), https://doi.org/10.1186/s40793-019-0348-0
    Publikationsdatum: 2024-02-10
    Beschreibung: Organic-rich, brackish water bodies are common along coastlines and important for the biogeochemical cycling of carbon, nitrogen, sulfur, and phosphorus. These ecosystems are dynamic and frequently disturbed by weather, tides, erosion, and human activities. Here, we investigated a shallow, brackish lagoon (Trunk River, Woods Hole, MA) that contains layers of decaying organic matter, which releases hydrogen sulfide upon physical disturbance. To study the microbial habitat and community response to perturbations, we carried out replicated in situ experiments, analyzing the physicochemistry and microbial community succession. At each site, yellow blooms of microorganisms formed within three days after disturbance. The water column changed substantially, establishing steep gradients of temperature, oxygen, sulfide, and salinity. The diverse microbial community at early timepoints was replaced by a community largely dominated by a clonal population of green sulfur bacteria (GSB) Prosthecochloris vibrioformis. Despite its dominance, this population coexisted with less abundant GSBs affiliating with Chlorobaculum. This population represents a new Chlorobaculum species, as indicated by phylogenetic and phylogenomic placement, ANI values, and CRISPR-Cas genes. Interestingly, despite their dominance the GSB coexisted with purple sulfur bacteria (Halochromatium sp. and Allochromatium sp.), anoxygenic phototrophic Chloroflexi (Chloroploca sp.) and other phototrophs. A high relative sequence abundance of Microviridae viruses was found in the metagenome, indicating their activity in the bloom. After two weeks the bloom subsided and the ecosystem slowly returned towards a diverse state and ecosystem functions, indicating its resilience after disturbance. This work provides insights into the assembly, succession, and coexistence of oxygenic and anoxygenic phototrophs in a common coastal ecosystem. The transient bloom was spatially structured analogous to a phototrophic microbial mat with distinct ecological niches for multiple clades of Cyanobacteria, purple and green sulfur bacteria. We suggest that a cryptic sulfur cycle in the water column between sulfur-oxidizing phototrophs, sulfate reducers, and sulfur oxidizers enhanced the development of the bloom. The bloom was likely driven by new species in the order Chlorobiales and possibly impacted by viruses of the family Microviridae.
    Schlagwort(e): Acetate; Ammonium; anoxygenic phototrophy; Biomass; brackish coastal ecosystem; Bromide; Calcium; Chloride; Comment; CRISPR-Cas; DATE/TIME; Density; DEPTH, water; Fluoride; Formate; Green sulfur bacteria; High Performance Liquid Chromatography (HPLC); Iron; Iron 2+; Iron 3+; Lactate; Lithium; Magnesium; microbial bloom; Microbial succession; Microviridae; Nitrate; Nitrite; Normalized; Oxygen; pH; Phosphate; Potassium; Present weather; Prosthecochloris; Refractometer; resilience; RIVER; Salinity; Sample ID; Sampling river; Sodium; Succinate; Sulfate; Sulfide, total; Temperature, water; Trunk_River_Woods_Hole; Virus; Water bodies; Woods Hole, USA
    Materialart: Dataset
    Format: text/tab-separated-values, 3766 data points
    Standort Signatur Erwartet Verfügbarkeit
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  • 3
    Publikationsdatum: 2022-05-26
    Beschreibung: © The Author(s), 2020. This article is distributed under the terms of the Creative Commons Attribution License. The definitive version was published in Bhatnagar, S., Cowley, E. S., Kopf, S. H., Pérez Castro, S., Kearney, S., Dawson, S. C., Hanselmann, K., & Ruff, S. E. Microbial community dynamics and coexistence in a sulfide-driven phototrophic bloom. Environmental Microbiome, 15(1),(2020): 3, doi:10.1186/s40793-019-0348-0.
    Beschreibung: Background: Lagoons are common along coastlines worldwide and are important for biogeochemical element cycling, coastal biodiversity, coastal erosion protection and blue carbon sequestration. These ecosystems are frequently disturbed by weather, tides, and human activities. Here, we investigated a shallow lagoon in New England. The brackish ecosystem releases hydrogen sulfide particularly upon physical disturbance, causing blooms of anoxygenic sulfur-oxidizing phototrophs. To study the habitat, microbial community structure, assembly and function we carried out in situ experiments investigating the bloom dynamics over time. Results: Phototrophic microbial mats and permanently or seasonally stratified water columns commonly contain multiple phototrophic lineages that coexist based on their light, oxygen and nutrient preferences. We describe similar coexistence patterns and ecological niches in estuarine planktonic blooms of phototrophs. The water column showed steep gradients of oxygen, pH, sulfate, sulfide, and salinity. The upper part of the bloom was dominated by aerobic phototrophic Cyanobacteria, the middle and lower parts by anoxygenic purple sulfur bacteria (Chromatiales) and green sulfur bacteria (Chlorobiales), respectively. We show stable coexistence of phototrophic lineages from five bacterial phyla and present metagenome-assembled genomes (MAGs) of two uncultured Chlorobaculum and Prosthecochloris species. In addition to genes involved in sulfur oxidation and photopigment biosynthesis the MAGs contained complete operons encoding for terminal oxidases. The metagenomes also contained numerous contigs affiliating with Microviridae viruses, potentially affecting Chlorobi. Our data suggest a short sulfur cycle within the bloom in which elemental sulfur produced by sulfide-oxidizing phototrophs is most likely reduced back to sulfide by Desulfuromonas sp. Conclusions: The release of sulfide creates a habitat selecting for anoxygenic sulfur-oxidizing phototrophs, which in turn create a niche for sulfur reducers. Strong syntrophism between these guilds apparently drives a short sulfur cycle that may explain the rapid development of the bloom. The fast growth and high biomass yield of Chlorobi-affiliated organisms implies that the studied lineages of green sulfur bacteria can thrive in hypoxic habitats. This oxygen tolerance is corroborated by oxidases found in MAGs of uncultured Chlorobi. The findings improve our understanding of the ecology and ecophysiology of anoxygenic phototrophs and their impact on the coupled biogeochemical cycles of sulfur and carbon.
    Beschreibung: This work was carried out at the Microbial Diversity summer course at the Marine Biological Laboratory in Woods Hole, MA. The course was supported by grants from National Aeronautics and Space Administration, the US Department of Energy, the Simons Foundation, the Beckman Foundation, and the Agouron Institute. Additional funding for SER was provided by the Marine Biological Laboratory.
    Schlagwort(e): Microbial succession ; Green sulfur bacteria ; Prosthecochloris ; Syntrophy ; Brackish coastal ecosystem ; Anoxygenic phototrophy ; Microviridae ; Sulfur cycling ; CRISPR-Cas ; Resilience
    Repository-Name: Woods Hole Open Access Server
    Materialart: Article
    Standort Signatur Erwartet Verfügbarkeit
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  • 4
    Publikationsdatum: 2015-12-29
    Beschreibung: Effective treatment for chronic infections is undermined by a significant gap in understanding of the physiological state of pathogens at the site of infection. Chronic pulmonary infections are responsible for the morbidity and mortality of millions of immunocompromised individuals worldwide, yet drugs that are successful in laboratory culture are far less effective against pathogen populations persisting in vivo. Laboratory models, upon which preclinical development of new drugs is based, can only replicate host conditions when we understand the metabolic state of the pathogens and the degree of heterogeneity within the population. In this study, we measured the anabolic activity of the pathogenStaphylococcus aureusdirectly in the sputum of pediatric patients with cystic fibrosis (CF), by combining the high sensitivity of isotope ratio mass spectrometry with a heavy water labeling approach to capture the full range of in situ growth rates. Our results revealS. aureusgeneration times with a median of 2.1 d, with extensive growth rate heterogeneity at the single-cell level. These growth rates are far below the detection limit of previous estimates of CF pathogen growth rates, and the rates are slowest in acutely sick patients undergoing pulmonary exacerbations; nevertheless, they are accessible to experimental replication within laboratory models. Treatment regimens that include specific antibiotics (vancomycin, piperacillin/tazobactam, tobramycin) further appear to correlate with slow growth ofS. aureuson average, but follow-up longitudinal studies must be performed to determine whether this effect holds for individual patients.
    Print ISSN: 0027-8424
    Digitale ISSN: 1091-6490
    Thema: Biologie , Medizin , Allgemeine Naturwissenschaft
    Standort Signatur Erwartet Verfügbarkeit
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  • 5
    Publikationsdatum: 2015-03-24
    Digitale ISSN: 1932-6203
    Thema: Medizin , Allgemeine Naturwissenschaft
    Publiziert von Public Library of Science
    Standort Signatur Erwartet Verfügbarkeit
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  • 6
    Publikationsdatum: 2014-10-01
    Print ISSN: 0960-9822
    Digitale ISSN: 1879-0445
    Thema: Biologie
    Publiziert von Cell Press
    Standort Signatur Erwartet Verfügbarkeit
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  • 7
    Publikationsdatum: 2013-09-09
    Print ISSN: 0163-3864
    Digitale ISSN: 1520-6025
    Thema: Chemie und Pharmazie
    Publiziert von American Chemical Society
    Standort Signatur Erwartet Verfügbarkeit
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