| Literature DB >> 25328537 |
Linn Solli1, Othilde Elise Håvelsrud2, Svein Jarle Horn3, Anne Gunn Rike4.
Abstract
BACKGROUND: Biogas is a renewable energy carrier which is used for heat and power production or, in the form of purifiedEntities:
Keywords: Anaerobic digestion; Biofuel; Biogas; Biorefinery; Metagenomic; Methane; Syntrophic oxidation; Taxonomic structure
Year: 2014 PMID: 25328537 PMCID: PMC4200192 DOI: 10.1186/s13068-014-0146-2
Source DB: PubMed Journal: Biotechnol Biofuels ISSN: 1754-6834 Impact factor: 6.040
Chemical characterization of reactors’ substrate
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| 9.2 | 84.1 | 4.06 | 47.09 | 11.80 | 2.88 | 1.69 | 2.90 | 6.20 |
*Percentage of dry matter.
Figure 1Anaerobic process performance in R1, R2, R3, and R4 during 28 days of continuous operation (day 36 to day 59). A) Methane productions, B) % volatile solid (VS) removal, C) pH values, D) NH4 + concentrations, E) acetic acid concentration, and F) propionic acid concentration.
Characteristics of metagenomic reads before and after quality filtering derived from DNA extracted from the four biogas reactors and their inoculum
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| 245499 | 177017 | 72.10 | 413 | 43.08 |
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| 548434 | 390641 | 71.23 | 417 | 42.86 |
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| 182122 | 130610 | 71.72 | 410 | 43.75 |
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| 286008 | 205035 | 71.72 | 413 | 43.65 |
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| 241804 | 172150 | 71.19 | 409 | 43.10 |
Figure 2Rarefaction curves of taxonomic richness in the samples at the genus and the fully resolved level in MEGAN.
Effective genome size of the metagenomes
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| 2.2 | 0.000452462 | 80.0934268 |
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| 2.5 | 0.000404997 | 71.69129853 |
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| 2.6 | 0.000377457 | 66.81634238 |
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| 2.5 | 0.000394418 | 69.8187181 |
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| 3.2 | 0.000314795 | 55.72407323 |
Figure 3Taxonomic distribution at the domain level in MEGAN. Reads assigned at the domain level given as percentage of total reads in each metagenome. “No hits” are reads without hits in the BLAST search. “Not assigned” are reads with a hit in BLAST, but with no assignment to a taxon due to the settings in MEGAN. “Environmental samples” are reads with hits in other metagenome sequences with unknown biological classification.
Figure 4Percentage of reads assigned to prokaryotic phyla with more than 0.1% of total reads assigned.
Figure 5PCA of phyla with Euclidean distance greater than 0.1 from origo. Reads with no hits in the blast search and reads not assigned by MEGAN are excluded. The metagenomic parameters are represented by red arrows. Labels are shown for parameters with Euclidean distance over 0.1 from origo. All metagenome data were given as percentage of total reads.
Figure 6Percentage of reads assigned to the 44 genera with more than 0.1% reads assigned. Insert shows full scale of the Y-axes.
Figure 7Abundance shift compared to inoculum at the genus level. This figure shows the fold change in abundant genera (>0.1% in one or more metagenomes) in the reactor samples compared to the inoculum. Fold change values less than 1 were replaced by the negative of their inverse.
Figure 8PCA of genera with Euclidean distance from origo greater than 0.1. Reads with no hits in the BLAST search and reads not assigned by MEGAN are excluded. The metagenomic parameters are represented by red arrows. Labels are shown for parameters with Euclidean distance over 0.1 from origo. All metagenome data were given as percentage of total reads.
Percentage of reads assigned to the most abundant methanogenic genera
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| 0.264 | 0.038 | 0.019 | 0.021 |
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| 0.183 | 0.046 | 0.034 | 0.017 |
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| 0.164 | 0.057 | 0.034 | 0.011 |
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| 0.145 | 0.052 | 0.031 | 0.018 |
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| 0.417 | 0.236 | 0.171 | 0.017 |
Figure 9The methanogenesis pathway. Enzymes are shown in blue boxes. Subunits missing in all our datasets (R1, R2, R3, R4, and IN) after search against the KO database at MG-RASTare underlined. Abbreviations used in the figure are Acetyl-Pi: acetyl phosphate; ack: acetate kinase; acs: acetyl-CoA synthetase; cdh: acetyl-CoA decarbonylase/synthase; CO: carbon monoxide; CoA: coenzyme A; CoB: coenzyme B; CoB-S-S-CoM: coenzyme M 7-mercaptoheptanoylthreonine-phosphate heterodisulfide; F420: coenzyme F420; fmd: formylmethanofuran dehydrogenase; Formyl-H4MPT: 5-formyl-5,6,7,8-tetrahydromethanopterin; Formyl-MF: formylmethanofuran; frh: coenzyme F420 hydrogenase; ftr: formylmethanofuran-tetrahydromethanopterin N-formyltransferase; H4MPT: 5,6,7,8-tetrahydromethanopterin; hdr: heterodisulfide reductase; mch: methenyltetrahydromethanopterin cyclohydrolase; mcr: methyl-coenzyme M reductase; mer: 5,10-methylenetetrahydromethanopterin reductase; Methenyl-H4MPT: 5,10-methenyl-5,6,7,8-tetrahydromethanopterin; Methyl-CoM: methylcoenzyme M; Methylene-H4MPT: 5,10-methylenetetrahydromethanopterin; Methyl-H4MPT: 5-methyl-5,6,7,8-tetrahydromethanopterin; mtd: methylenetetrahydromethanopterin dehydrogenase; mtr: tetrahydromethanopterin S-methyltransferase; ppa: inorganic diphosphatase; pta: phosphate acetyltransferase.
Figure 10Reads assigned to level 2 metabolism subsystems at MG-RAST (KO database).