Organism	Strain	Reference(s)	Comment(s)
Rhodopseudomonas palustris	CGA009	Salmon, R. C., Cliff, M. J., Rafferty, J. B., & Kelly, D. J. (2013). The CouPSTU and TarPQM Transporters in Rhodopseudomonas palustris: Redundant, Promiscuous Uptake Systems for Lignin-Derived Aromatic Substrates. PLoS ONE, 8(3), e59844. https://doi.org/10.1371/journal.pone.0059844	-
Oceanimonas doudoroffii	JCM21046T	Numata, K., & Morisaki, K. (2015). Screening of Marine Bacteria To Synthesize Polyhydroxyalkanoate from Lignin: Contribution of Lignin Derivatives to Biosynthesis by Oceanimonas doudoroffii. ACS Sustainable Chemistry &amp; Engineering, 3(4), 569–573. https://doi.org/10.1021/acssuschemeng.5b00031	-
Acinetobacter baylyi	ADP1	Fischer, R., Bleichrodt, F. S., & Gerischer, U. C. (2008). Aromatic degradative pathways in Acinetobacter baylyi underlie carbon catabolite repression. Microbiology, 154(10), 3095–3103. https://doi.org/10.1099/mic.0.2008/016907-0	-
Cupriavidus necator	JMP134	Pérez-Pantoja, D., De la Iglesia, R., Pieper, D. H., & González, B. (2008). Metabolic reconstruction of aromatic compounds degradation from the genome of the amazing pollutant-degrading bacteriumCupriavidus necatorJMP134. FEMS Microbiology Reviews, 32(5), 736–794. https://doi.org/10.1111/j.1574-6976.2008.00122.x	-
Pseudomonas putida	KT2440	Jiménez, J. I., Miñambres, B., García, J. L., & Díaz, E. (2002). Genomic analysis of the aromatic catabolic pathways from Pseudomonas putida KT2440. Environmental Microbiology, 4(12), 824–841. https://doi.org/10.1046/j.1462-2920.2002.00370.x	-
Treponema primitia	ZAS-1	Lucey, K. S., & Leadbetter, J. R. (2013). Catechol 2,3‐dioxygenase and other meta‐cleavage catabolic pathway genes in the ‘anaerobic’ termite gut spirochete <scp>T</scp>reponema primitia. Molecular Ecology, 23(6), 1531–1543. https://doi.org/10.1111/mec.12598	-
Rhodotorula mucilaginosa	CBS17	Sampaio, J. P. (1999). Utilization of low molecular weight aromatic compounds by heterobasidiomycetous yeasts: taxonomic implications. Canadian Journal of Microbiology, 45(6), 491–512. https://doi.org/10.1139/w99-020	-
Leucosporidium scottii	G43	Sampaio, J. (1995). Utilization of Low Molecular Weight Lignin-Related Aromatic Compounds for the Selective Isolation of Yeasts: Rhodotorula vanillica, a New Basidiomycetous Yeast Species. Systematic and Applied Microbiology, 17(4), 613–619. https://doi.org/10.1016/s0723-2020(11)80083-4	-
Enterobacter aerogenes	L7	Deschamps, A. M., Mahoudeau, G., & Lebeault, J. M. (1980). Fast degradation of kraft lignin by bacteria. European Journal of Applied Microbiology and Biotechnology, 9(1), 45–51. https://doi.org/10.1007/bf00500001	-
Acetobacterium woodii	NZva16	Tschech, A., & Pfennig, N. (1984). Growth yield increase linked to caffeate reduction in Acetobacterium woodii. Archives of Microbiology, 137(2), 163–167. https://doi.org/10.1007/bf00414460	(anaerobically)
Thauera sp.	Cin3,4	Mechichi, T., Patel, B. K., & Sayadi, S. (2005). Anaerobic degradation of methoxylated aromatic compounds by Clostridium methoxybenzovorans and a nitrate-reducing bacterium Thauera sp. strain Cin3,4. International Biodeterioration &amp; Biodegradation, 56(4), 224–230. https://doi.org/10.1016/j.ibiod.2005.09.001	(anaerobically)
Enterobacter sp.	DG-6	Grbić-Galić, D. (1985). Fermentative and oxidative transformation of ferulate by a facultatively anaerobic bacterium isolated from sewage sludge. Applied and Environmental Microbiology, 50(4), 1052–1057. https://doi.org/10.1128/aem.50.4.1052-1057.1985	(anaerobically)
Rhodopseudomonas palustris	CGA001	Harwood, C. S., & Gibson, J. (1988). Anaerobic and aerobic metabolism of diverse aromatic compounds by the photosynthetic bacterium Rhodopseudomonas palustris. Applied and Environmental Microbiology, 54(3), 712–717. https://doi.org/10.1128/aem.54.3.712-717.1988; Harwood, C. S., & Gibson, J. (1988). Anaerobic and aerobic metabolism of diverse aromatic compounds by the photosynthetic bacterium Rhodopseudomonas palustris. Applied and Environmental Microbiology, 54(3), 712–717. https://doi.org/10.1128/aem.54.3.712-717.1988	-
Cupriavidus pinatubonensis	1245	Sato, Y., Nishihara, H., Yoshida, M., Watanabe, M., Rondal, J. D., Concepcion, R. N., & Ohta, H. (2006). Cupriavidus pinatubonensis sp. nov. and Cupriavidus laharis sp. nov., novel hydrogen-oxidizing, facultatively chemolithotrophic bacteria isolated from volcanic mudflow deposits from Mt. Pinatubo in the Philippines. International Journal of Systematic and Evolutionary Microbiology, 56(5), 973–978. https://doi.org/10.1099/ijs.0.63922-0	-
Cupriavidus laharis	1263a	Sato, Y., Nishihara, H., Yoshida, M., Watanabe, M., Rondal, J. D., Concepcion, R. N., & Ohta, H. (2006). Cupriavidus pinatubonensis sp. nov. and Cupriavidus laharis sp. nov., novel hydrogen-oxidizing, facultatively chemolithotrophic bacteria isolated from volcanic mudflow deposits from Mt. Pinatubo in the Philippines. International Journal of Systematic and Evolutionary Microbiology, 56(5), 973–978. https://doi.org/10.1099/ijs.0.63922-0	-
Brettanomyces anomalus	NCYC 615	Edlin, D. A., Narbad, A., Dickinson, J. R., & Lloyd, D. (1995). The biotransformation of simple phenolic compounds byBrettanomyces anomalus. FEMS Microbiology Letters, 125(2–3), 311–315. https://doi.org/10.1111/j.1574-6968.1995.tb07374.x	-
Rhodotorula glutinis	Jain isolate	GUPTA, J. K., JEBSEN, C., & KNEIFEL, H. (1986). Sinapic Acid Degradation by the Yeast Rhodotorula glutinis. Microbiology, 132(10), 2793–2799. https://doi.org/10.1099/00221287-132-10-2793	-
