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      Bacterial Dispersers along Preferential Flow Paths of a Clay Till Depth Profile

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          Abstract

          The ability to disperse is considered essential for soil bacteria colonization and survival, yet very little is known about the dispersal ability of communities from different heterogeneous soil compartments. Important factors for dispersal are the thickness and connectivity of the liquid film between soil particles. The present results from a fractured clay till depth profile suggest that dispersal ability is common in various soil compartments and that most are dominated by a few dispersing taxa. Importantly, an increase in shared dispersers among the preferential flow paths of the clay till suggests that active dispersal plays a role in the successful colonization of these habitats.

          ABSTRACT

          This study assessed the dispersal of five bacterial communities from contrasting compartments along a fractured clay till depth profile comprising plow layer soil, preferential flow paths (biopores and the tectonic fractures below), and matrix sediments, down to 350 cm below the surface. A recently developed expansion of the porous surface model (PSM) was used to capture bacterial communities dispersing under controlled hydration conditions on a soil-like surface. All five communities contained bacteria capable of active dispersal under relatively low hydration conditions (−3.1 kPa). Further testing of the plow layer community revealed active dispersal even at matric potentials of −6.3 to −8.4 kPa, previously thought to be too dry for dispersal on the PSM. Using 16S rRNA gene amplicon sequencing, the dispersing communities were found to be less diverse than their corresponding total communities. The dominant dispersers in most compartments belonged to the genus Pseudomonas and, in the plow layer soil, to Rahnella as well. An exception to this was the dispersing community in the matrix at 350 cm below the surface, which was dominated by Pantoea. Hydrologically connected compartments shared proportionally more dispersing than nondispersing amplicon sequence variants (ASVs), suggesting that active dispersal is important for colonizing these compartments. These results highlight the importance of including soil profile heterogeneity when assessing the role of active dispersal and contribute to discerning the importance of active dispersal in the soil environment.

          IMPORTANCE The ability to disperse is considered essential for soil bacteria colonization and survival, yet very little is known about the dispersal ability of communities from different heterogeneous soil compartments. Important factors for dispersal are the thickness and connectivity of the liquid film between soil particles. The present results from a fractured clay till depth profile suggest that dispersal ability is common in various soil compartments and that most are dominated by a few dispersing taxa. Importantly, an increase in shared dispersers among the preferential flow paths of the clay till suggests that active dispersal plays a role in the successful colonization of these habitats.

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          Microbiology of the Phyllosphere

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            Bacterial–fungal interactions: ecology, mechanisms and challenges

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              Back to Basics – The Influence of DNA Extraction and Primer Choice on Phylogenetic Analysis of Activated Sludge Communities

              DNA extraction and primer choice have a large effect on the observed community structure in all microbial amplicon sequencing analyses. Although the biases are well known, no comprehensive analysis has been conducted in activated sludge communities. In this study we systematically explored the impact of a number of parameters on the observed microbial community: bead beating intensity, primer choice, extracellular DNA removal, and various PCR settings. In total, 176 samples were subjected to 16S rRNA amplicon sequencing, and selected samples were investigated through metagenomics and metatranscriptomics. Quantitative fluorescence in situ hybridization was used as a DNA extraction-independent method for qualitative comparison. In general, an effect on the observed community was found on all parameters tested, although bead beating and primer choice had the largest effect. The effect of bead beating intensity correlated with cell-wall strength as seen by a large increase in DNA from Gram-positive bacteria (up to 400%). However, significant differences were present at lower phylogenetic levels within the same phylum, suggesting that additional factors are at play. The best primer set based on in silico analysis was found to underestimate a number of important bacterial groups. For 16S rRNA gene analysis in activated sludge we recommend using the FastDNA SPIN Kit for Soil with four times the normal bead beating and V1-3 primers.
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                Author and article information

                Contributors
                Role: Editor
                Journal
                Appl Environ Microbiol
                Appl. Environ. Microbiol
                aem
                aem
                AEM
                Applied and Environmental Microbiology
                American Society for Microbiology (1752 N St., N.W., Washington, DC )
                0099-2240
                1098-5336
                18 January 2019
                6 March 2019
                15 March 2019
                6 March 2019
                : 85
                : 6
                : e02658-18
                Affiliations
                [a ]Geological Survey of Denmark and Greenland, Copenhagen, Denmark
                [b ]University of Copenhagen, Department of Plant and Environmental Sciences, Copenhagen, Denmark
                [c ]Technical University of Denmark, Department of Environmental Engineering, Lyngby, Denmark
                University of Illinois at Urbana-Champaign
                Author notes
                Address correspondence to U. S. Krüger, usk@ 123456geus.dk , or J. Aamand, jeaa@ 123456geus.dk .

                Citation Krüger US, Dechesne A, Bak F, Badawi N, Nybroe O, Aamand J. 2019. Bacterial dispersers along preferential flow paths of a clay till depth profile. Appl Environ Microbiol 85:e02658-18. https://doi.org/10.1128/AEM.02658-18.

                Author information
                https://orcid.org/0000-0002-0403-0771
                Article
                02658-18
                10.1128/AEM.02658-18
                6414393
                30658975
                922c9d60-5455-4086-b894-4942254e3d3e
                Copyright © 2019 Krüger et al.

                This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license.

                History
                : 2 November 2018
                : 21 December 2018
                Page count
                supplementary-material: 1, Figures: 7, Tables: 1, Equations: 0, References: 74, Pages: 16, Words: 9076
                Funding
                Funded by: The independent Research Fund Denmark;
                Award ID: DFF-5054-00054
                Award Recipient :
                Funded by: Villum Fonden (Villum Foundation), https://doi.org/10.13039/100008398;
                Award ID: 7521
                Award Recipient :
                Categories
                Microbial Ecology
                Custom metadata
                March 2019

                Microbiology & Virology
                community motility,liquid film,preferential flow paths,soil,succession
                Microbiology & Virology
                community motility, liquid film, preferential flow paths, soil, succession

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