Ruminal Microbe Consortia for Biogas Production from Lignocellulosic Substrate
Abstract
1. Introduction
2. Materials and Methods
2.1. Enrichment of AF-Associated Rumen Consortia-Decomposing Straw
2.1.1. Sample Collection
2.1.2. Double-Bag Enrichment System and Cultivation Conditions
2.2. Pretreatment of Wheat Straw Using Synthetic Consortia
2.2.1. Inoculum Standardization and Cell Enumeration
2.2.2. Pretreatment Experiments
| N. lanati (Nl) | M. gottschalkii (Mg) | M. ruminantium (Mr) | B. hungatei (Bh) | S. ruminis (Sr) | |
|---|---|---|---|---|---|
| Nl | X | - | - | - | - |
| Nl + Mg | X | X | - | - | - |
| Nl + Mr | X | - | X | - | - |
| Nl + Mg + Bh | X | X | - | X | - |
| Nl + Mr + Bh | X | - | X | X | - |
| Nl + Bh | X | - | - | X | - |
| Bh | - | - | - | X | - |
| Nl + Mg + Sr | X | X | - | - | X |
| Nl + Mr + Sr | X | - | X | - | X |
| Nl + Sr | X | - | - | - | X |
| Sr | - | - | - | - | X |
2.3. Biogas Production from Wheat Straw Pretreated with Synthetic Consortia
2.3.1. Experimental Set-Up
2.3.2. Inoculum Sludge
2.4. Scanning Electron Microscopy (SEM)
2.5. Gas Chromatography
2.6. Determination of Organic Acids by HPLC
2.7. pH Determination
2.8. DNA Extraction and Next-Generation Sequencing
2.9. Metagenomic Data Processing
2.10. Enrichment and Identification of Anaerobic Fungi and Methanogenic Partners
2.10.1. Sample Collection
2.10.2. Genomic DNA Extraction and PCR
2.10.3. Identification of AF and M Isolated from Chamois
2.11. Data Presentation/Statistical Analysis
3. Results and Discussion
3.1. Selection of Syntrophic Microbial Associations
3.1.1. Methane Production Monitored the Race Toward the Straw
3.1.2. Organic Acid Production
Acetate
Propionate
3.1.3. Scanning Electron Microscopy (SEM)
3.1.4. Metagenomic Community Composition Changes During the Race
Higher-Resolution Metagenomic Community Alterations
Microbe Selection for Pretreatment Experiments
3.2. Wheat Straw Pretreatment via Synthetic Anaerobic Consortia
Methane Production During the Pretreatment Phase
3.3. Biogas Production from the Pretreated Wheat Straw
3.3.1. Biomethane Production
3.3.2. Acetate Production
3.3.3. Propionate Production
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Species | Kingdom | Cell/mL |
|---|---|---|
| Butyrivibrio hungatei DSM 14810 | B | 7.2 × 107 |
| Succiniclasticum ruminis DSM 9236 | B | 3.5 × 107 |
| Methanobrevibacter ruminantium DSM 1093 | M | 4.2 × 106 |
| Methanobrevibacter gottschalkii to be published | M | 3.5 × 106 |
| Neocallimastix lanate # to be published | AF | 4 × 106 |
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Juhász-Erdélyi, A.; Huszár, M.; Farkas, A.; Maróti, G.; Wirth, R.; Szuhaj, M.; Bagi, Z.; Kovács, K.L.; Kovács, E. Ruminal Microbe Consortia for Biogas Production from Lignocellulosic Substrate. Fermentation 2026, 12, 247. https://doi.org/10.3390/fermentation12050247
Juhász-Erdélyi A, Huszár M, Farkas A, Maróti G, Wirth R, Szuhaj M, Bagi Z, Kovács KL, Kovács E. Ruminal Microbe Consortia for Biogas Production from Lignocellulosic Substrate. Fermentation. 2026; 12(5):247. https://doi.org/10.3390/fermentation12050247
Chicago/Turabian StyleJuhász-Erdélyi, Annabella, Márta Huszár, Attila Farkas, Gergely Maróti, Roland Wirth, Márk Szuhaj, Zoltán Bagi, Kornél L. Kovács, and Etelka Kovács. 2026. "Ruminal Microbe Consortia for Biogas Production from Lignocellulosic Substrate" Fermentation 12, no. 5: 247. https://doi.org/10.3390/fermentation12050247
APA StyleJuhász-Erdélyi, A., Huszár, M., Farkas, A., Maróti, G., Wirth, R., Szuhaj, M., Bagi, Z., Kovács, K. L., & Kovács, E. (2026). Ruminal Microbe Consortia for Biogas Production from Lignocellulosic Substrate. Fermentation, 12(5), 247. https://doi.org/10.3390/fermentation12050247

