| Literature DB >> 24278144 |
Deborah A Neher1, Thomas R Weicht, Scott T Bates, Jonathan W Leff, Noah Fierer.
Abstract
Compost production is a critical component of organic waste handling, and compost applications to soil are increasingly important to crop production. However, we know surprisingly little about the microbial communities involved in the composting process and the factors shaping compost microbial dynamics. Here, we used high-throughput sequencing approaches to assess the diversity and composition of both bacterial and fungal communities in compost produced at a commercial-scale. Bacterial and fungal communities responded to both compost recipe and composting method. Specifically, bacterial communities in manure and hay recipes contained greater relative abundances of Firmicutes than hardwood recipes with hay recipes containing relatively more Actinobacteria and Gemmatimonadetes. In contrast, hardwood recipes contained a large relative abundance of Acidobacteria and Chloroflexi. Fungal communities of compost from a mixture of dairy manure and silage-based bedding were distinguished by a greater relative abundance of Pezizomycetes and Microascales. Hay recipes uniquely contained abundant Epicoccum, Thermomyces, Eurotium,Entities:
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Year: 2013 PMID: 24278144 PMCID: PMC3836849 DOI: 10.1371/journal.pone.0079512
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1Principal coordinates analysis biplot for a) bacterial and b) fungal communities in three compost recipes (triangle: manure-silage, circle: hay, square: hardwood), n = 7 per treatment.
Permutational multivariate analysis of variance indicated that differences between communities were highly significant (p≤0.001). Contrasting superscripts indicate that treatments are significantly different (p≤0.05).
Mean ± 1 SD (n = 8) of dominant bacterial phyla and sub-phyla, expressed as percentage of sequences in cured manure, hay and hardwood compost recipes.
| Taxon | Manure | Hay | Hardwood |
| Acidobacteria*** | 1.2±0.7 | 0.7±0.1 | 7.4±2.7 |
| Actinobacteria | 4.9±2.0 | 9.9±3.8 | 6.8±2.0 |
| Bacteroidetes | 27.0±4.8 | 27.7±2.7 | 21.0±3.6 |
| Chloroflexi*** | 5.5±3.9 | 2.3±0.6 | 11.8±8.5 |
| Firmicutes | 5.2±2.7 | 6.8±1.6 | 1.5±0.5 |
| Gemmatimonadetes | 1.9±0.8 | 4.4±0.6 | 2.9±0.8 |
| Planctomycetes | 2.6±1.4 | 1.8±0.3 | 3.0±0.7 |
| α-Proteobacteria | 7.8±1.6 | 6.2±2.4 | 6.3±1.7 |
| β-Proteobacteria | 7.0±3.7 | 4.1±0.7 | 4.0±1.9 |
| δ-Proteobacteria | 7.0±1.7 | 7.0±2.3 | 7.2±1.5 |
| γ-Proteobacteria | 12.5±5.9 | 13.5±1.5 | 9.2±2.8 |
| Verrucomicrobia*** | 1.7±1.0 | 1.5±0.3 | 4.6±1.1 |
False Discovery Rate (FDR) p-values from Kruskal-Wallis test,
: p FDR>0.05,
:0.01
: 0.001
Mean ± 1 SD of fungal genera, expressed as percentage of sequences classified to phylum level in cured manure, hay, and hardwood compost recipes.
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| Phylum | Class | Order | Family | Genus | manure | hay | hardwood |
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| Dothideomycetes | Pleosporales | Pleosporaceae |
| 0±0 | 2.1±1.5 | 0.3±0.8 | |
| Eurotiomycetes | Eurotiales | Unknown |
| 0±0 | 2.7±3.7 | 0±0 | |
| Eurotiales | Trichocomaceae |
| 0±0 | 2.0±2.0 | 0±0 | ||
| Orbiliomycetes | Orbiliales | Orbiliaceae |
| 0.4±0.9 | 6.1±7.0 | 0±0 | |
| Pezizomycetes | Pezizales | Ascobolaceae |
| 9.3±12.3 | 2.4±3.7 | 0±0 | |
| Unknown | Unknown | Unknown | 3.2±3.1 | 1.1±1.3 | 0±0 | ||
| Sordariomycetes | Hypocreales | Unknown |
| 0±0 | 1.4±1.1 | 0±0 | |
| Microascales | Microascaceae |
| 2.7±3.7 | 0.2±0.4 | 0±0 | ||
| Microascales | Microascaceae |
| 0.2±0.5 | 7.7±16.1 | 0±0 | ||
| Microascales | Microascaceae | Unknown | 14.1±12.9 | 1.8±2.5 | 0±0 | ||
| Microascales | Unknown | Unknown | 7.7±7.4 | 0.5±1.2 | 0±0 | ||
| Unknown | Unknown | Unknown | 14.9±10.6 | 7.0±4.5 | 54.2±16.7 | ||
| Sordariales | Lasiosphaeriaceae |
| 0.3±0.9 | 1.5±2.8 | 3.4±5.4 | ||
| Sordariales | Lasiosphaeriaceae | Unknown | 0±0 | 0±0 | 2.3±1.8 | ||
| Sordariales | Unknown | Unknown | 0±0 | 0.2±0.4 | 2.8±2.6 | ||
| Unknown | Unknown | Unknown | Unknown | 4.9±3.4 | 5.3±2.6 | 5.4±4.4 | |
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| Agaricomycetes | Agaricales | Psathyrellaceae |
| 0.3±0.9 | 0±0 | 6.6±9.6 | |
| Agaricales | Psathyrellaceae |
| 3.2±6.9 | 0±0 | 1.0±2.1 | ||
| Agaricales | Psathyrellaceae | Unknown | 3.4±3.9 | 1.5±2.1 | 0±0 | ||
| Corticiales | Corticiaceae | Unknown | 0±0 | 1.3±1.4 | 2.5±3.7 | ||
| Unknown | Unknown |
| 0±0 | 9.8±9.7 | 0±0 | ||
| Unknown | Unknown | Unknown | 0.7±1.0 | 18.0±15.5 | 18.4±24.6 | ||
| Unknown | Unknown | Unknown | Unknown | 16.8±11.0 | 0±0 | 0±0 | |
| Unknown | Unknown | Unknown | Unknown | 3.2±1.6 | 2.8±2.8 | 0.8±1.3 | |
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| Chytridiomycetes | Spizellomycetales | Spizellomycetaceae |
| 0.3±0.8 | 1.6±4.2 | 0±0 | |
| Unknown | Unknown | Unknown | 4.8±6.6 | 3.4±3.3 | 0±0 | ||
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| Incertae_sedis | Harpellales | Legeriomycetaceae |
| 1.3±1.5 | 0.3±0.6 | 0±0 | |
| Mortierellales | Mortierellaceae |
| 1.1±1.6 | 1.1±2.9 | 0±0 | ||
| Mucorales | Mucoraceae |
| 0±0 | 2.1±2.9 | 0±0 | ||
False Discovery Rate (FDR) p-values from Kruskal-Wallis test,
: p FDR>0.05,
:0.01
: 0.001
: rank order of Epicoccum species abundance: E. sp_CHTAM7, E. sp_TMS_2011.
represents a) a sequence from an undescribed taxon, b) from an environmental sequence were the organism was not identified, or c) a sequence matches a described species that is not represented in the reference database.
: rank order of Arthrobotrys species abundance: A. amerospora>A. flagrans>A. oligospora.
: rank order of Scedosporium species abundance: S. prolificans>S. aurantiacum>S. apiospermum.
: dominant species: Myriococcum thermophilum.
: rank order of Smittium species abundance: Smittium sp.>S. orthocladii.
Figure 2Principal coordinates analysis biplot for a) bacterial and b) fungal communities in the end product of three compost processes (circle: windrow, square: aerated static pile, inverted triangle: vermicompost), n = 4 per process.
Permutational multivariate analysis of variance indicated that differences between communities were highly significant (p≤0.001). Contrasting superscripts indicate that treatments are significantly different (p≤0.05).
Mean ± 1 SD (n = 4) of total sequences classified as bacteria in a common recipe processed by windrow, aerated static pile or vermicompost.
| Windrow | Aerated Static Pile | Vermicompost | |
| Bacteroidetes | 21.5±4.6 | 16.3±0.7 | 29.4±10.5 |
| Chlorobi | 2.9±1.1 | 1.0±0.2 | 0.2±1.1 |
| Chloroflexi | 19.8±3.8 | 8.0±1.2 | 2.4±7.3 |
| γ-Proteobacteria | 10.3±1.3 | 14.6±1.2 | 16.5±9.7 |
| Verrucomicrobia | 2.0±0.8 | 1.5±1.3 | 4.2±1.2 |
Values are expressed as percentages.
: p≤0.05 false discovery rate (adjusted) from KW and unadjusted P-values.
: p≤0.05 for unadjusted P-value, but ≤0.1 for false discovery rate (adjusted).
Mean ± 1 SD of fungal ITS sequences classified to phylum level in a common recipe processed by windrow, aerated static pile or vermicompost.
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| Phylum | Class | Order | Family | Genus | Windrow | Aerated Static Pile | Vermicompost |
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| Orbiliomycetes | Orbiliales | Orbiliaceae |
| 6.4±10.1 | 9.7±9.4 | 15.4±12.5 | |
| Pezizomycetes | Pezizales | Pezizaceae | Unknown | 0±0 | 2.6±4.5 | 8.2±14.1 | |
| Pezizales | unidentified | Unknown | 0±0 | 36.2±31.9 | 0.9±1.7 | ||
| Sordariomycetes | Hypocreales | Unknown |
| 10.4±18.0 | 0±0 | 0±0 | |
| Microascales | Microascaceae | Unknown | 0±0 | 1.3±1.3 | 15.9±6.1 | ||
| Sordariales | Lasiosphaeriaceae |
| 0±0 | 0±0 | 4.1±5.1 | ||
| Sordariales | Unknown | Unknown | 0.8±1.5 | 2.1±3.6 | 1.2±1.4 | ||
| Unknown | Unknown | Unknown | 44.9±27.7 | 18.9±27.0 | 5.1±4.4 | ||
| Unknown | Unknown | Unknown | Unknown | 11.7±10.1 | 10.8±5.7 | 5.3±2.5 | |
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| Agaricomycetes | Agaricales | Unknown | Unknown | 0.4±0.7 | 0±0 | 9.8±16.4 | |
| Unknown | Unknown | Unknown | Unknown | 4.4±6.1 | 1.7±2.0 | 1.2±1.5 | |
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| Insertae_sedis | Mortierellales | Mortierellaceae |
| 3.9±3.4 | 3.0±3.1 | 6.1±6.6 | |
Values are expressed as percentages.
False Discovery Rate (FDR) p-values from Kruskal-Wallis test,
: p FDR>0.05.
Unknown can represent other or unidentified.
Figure 3Heat map illustrating changes in A) bacterial and B) fungal composition through time for the same recipe composted by three processes: windrow, aerated static pile or vermicompost.
All fungi illustrated are ascomycota. Time is expressed as days of decomposition. The thermophillic phase occurred prior to sampling in windrow, days 22–56 for aerated static pile, and day 53 for vermicompost. Units illustrated as mean percentages of total sequences (bacteria) and percentage of taxa classified to phylum (fungi). Dots represent missing samples. Each column is colored so that taxa with high relative abundance are red, intermediate abundances are white and low abundances are blue.
Figure 4Shannon diversity of a) bacteria and b) fungal communities within a standardized recipe finished by windrow, aerated static pile (ASP) or vermicompost.
Shannon diversity is computed as H′ = −Σ(pi ln pi) where p represents the proportion of taxon i in the community. Box-whisker plots are illustrated.