Bioconversion of Organosolv Lignin by Rumen Bacterium: Isolation, Characterization and Metabolic Profiling
Abstract
1. Introduction
2. Results and Discussion
2.1. Bacterial Strain Isolation and Identification
2.2. Growth Curve and Lignin Degradation Analysis
2.3. Characterization of Degradation Products by FTIR and GC-MS
3. Materials and Methods
3.1. Lignin Preparation
3.2. Bacterium Isolation
3.3. Bacterial Growth in the Presence of Organosolv Lingin
3.4. Fourier Transform Infrared Spectroscopy Analysis
3.5. Gas Chromatography-Mass Spectrometry
3.6. Molecular Identification of Isolate IL2_9 (IL2-9)
3.7. Statistical Analysis
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| GC–MS | Gas chromatography–mass spectrometry GC–MS |
| FTIR | Fourier-transform infrared spectroscopy |
| BLAST | Basic Local Alignment Search Tool |
| LiP | Lignin peroxidase |
| MnP | Manganese peroxidase |
| PCR | Polymerase chain reaction |
| OD | Optical density |
| BCAAs | Biosynthesis of branched-chain amino acids |
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| No | RT (min) | Identified Compounds | Molecular Form | Control | Klebsiella sp. IL2_9 |
|---|---|---|---|---|---|
| 1 | 6.367 | 2,3-Butanediol, 2TMS/Propane-1,2-diol, 2TMS * | C10H26O2 | - | + |
| 2 | 6.691 | 1,3-Propanediol, 2TMS | C9H24O2 | - | + |
| 3 | 6.837 | D-(-)-Lactic acid, 2TMS | C3H6O3 | + | + |
| 4 | 7.167 | Glycolic acid, 2TMS | C2H4O3 | + | + |
| 5 | 9.100 | Isovaleric acid, 2-hydroxy, 2TMS/2-Hydroxyvaleric acid, 2TMS/2-Methylbutyric acid, 2TMS * | C11H26O3 | - | + |
| 6 | 10.235 | Ethyl phosphoric acid, 2TMS | C10H14O2 | - | + |
| 7 | 10.413 | Pentanoic acid, 2-hydroxy-4-methyl, 2TMS/2-Hydroxy-3-methylvaleric acid, 2TMS * | C6H12O3 | - | + |
| 8 | 11.089 | Phosphoric acid, 3TMS | H3O4P | + | + |
| 9 | 11.661 | Succinic acid, 2TMS | C4H6O4 | + | + |
| 10 | 12.061 | Uracil, 2TMS | C4H4N2O2 | + | + |
| 11 | 12.488 | Benzaldehyde, 4-hydroxy, TMS | C7H6O2 | + | - |
| 12 | 13.849 | 4′-Hydroxyacetophenone, TMS/2′-Hydroxyacetophenone, TMS/3′-Hydroxyacetophenone, TMS * | C11H16O2 | + | + |
| 13 | 14.308 | 4-Hydroxybenzyl alcohol, 2TMS | C13H24O2 | - | + |
| 14 | 14.584 | Pyroglutamic acid, 2TMS | C5H7NO3 | + | + |
| 15 | 14.713 | Vanillin, TMS/Isovanillin, TMS * | C11H16O3 | + | - |
| 16 | 15.372 | 2-Phenyl lactic, 2TMS/DL-3-Phenyllactic acid, 2TMS * | C15H26O3 | - | + |
| 17 | 15.691 | Benzoic acid, 2-amino, 2TMS | C13H23NO2 | + | - |
| 18 | 15.810 | p-Hydroxybenzoic acid, 2TMS /m-Hydroxybenzoic acid, 2TMS * | C13H22O3 | + | + |
| 19 | 15.956 | Benzeneacetic acid, 4-hydroxy, 2TMS | C14H24O3 | + | - |
| 20 | 15.983 | Isovanillylalcohol, 2TMS/Vanillyl alcohol, 2TMS * | C14H24O3 | - | + |
| 21 | 16.712 | Syringaldehyde, TMS | C12H18O4 | + | + |
| 22 | 17.230 | cis-Aconitic acid, 3TMS/trans-Aconitic acid, 3TMS * | C15H30O6 | + | + |
| 23 | 17.382 | Vanillic acid, 2TMS | C14H24O4 | + | + |
| 24 | 18.100 | Citric acid, 4TMS | C6H8O7 | + | + |
| 25 | 18.797 | Syringic acid, 2TMS | C15H26O5 | + | + |
| 26 | 18.867 | 4-Hydroxyphenyllactic acid, 3TMS | C18H34O4 | - | + |
| 27 | 19.175 | p-Coumaric acid, 2TMS | C15H24O3 | + | + |
| 28 | 20.639 | Isoferulic acid, 2TMS /Ferulic acid, 2TMS derivative * | C16H26O4 | + | + |
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Silva, J.P.; de Miranda, J.N.; Uchoa, S.C.P.; Stranz, A.C.; de Santana, R.L.; Hamann, P.R.V.; Ticona, A.R.P.; Williams, T.C.R.; Torres, F.A.G.; Castellanos, R.; et al. Bioconversion of Organosolv Lignin by Rumen Bacterium: Isolation, Characterization and Metabolic Profiling. Molecules 2026, 31, 903. https://doi.org/10.3390/molecules31050903
Silva JP, de Miranda JN, Uchoa SCP, Stranz AC, de Santana RL, Hamann PRV, Ticona ARP, Williams TCR, Torres FAG, Castellanos R, et al. Bioconversion of Organosolv Lignin by Rumen Bacterium: Isolation, Characterization and Metabolic Profiling. Molecules. 2026; 31(5):903. https://doi.org/10.3390/molecules31050903
Chicago/Turabian StyleSilva, Jéssica Pinheiro, Jailson Novaes de Miranda, Sofia Chacon Prates Uchoa, Artur Carvalho Stranz, Rosália Loriano de Santana, Pedro Ricardo Vieira Hamann, Alonso R. Poma Ticona, Thomas Christopher Rhys Williams, Fernando Araripe Gonçalves Torres, Roberto Castellanos, and et al. 2026. "Bioconversion of Organosolv Lignin by Rumen Bacterium: Isolation, Characterization and Metabolic Profiling" Molecules 31, no. 5: 903. https://doi.org/10.3390/molecules31050903
APA StyleSilva, J. P., de Miranda, J. N., Uchoa, S. C. P., Stranz, A. C., de Santana, R. L., Hamann, P. R. V., Ticona, A. R. P., Williams, T. C. R., Torres, F. A. G., Castellanos, R., & Noronha, E. F. (2026). Bioconversion of Organosolv Lignin by Rumen Bacterium: Isolation, Characterization and Metabolic Profiling. Molecules, 31(5), 903. https://doi.org/10.3390/molecules31050903

