Organism	Strain	Reference(s)	Comment(s)
Candida tropicalis	HP15	Krug, M., Ziegler, H., & Straube, G. (1985). Degradation of phenolic compounds by the yeast Candida tropicalis HP 15 I. Physiology of growth and substrate utilization. Journal of Basic Microbiology, 25(2), 103–110. https://doi.org/10.1002/jobm.3620250206	-
Corynebacterium glutamicum	ATCC13032	Qi, S., Chaudhry, M. T., Zhang, Y., Meng, B., Huang, Y., Zhao, K., Poetsch, A., Jiang, C., Liu, S., & Liu, S. (2007). Comparative proteomes of Corynebacterium glutamicum grown on aromatic compounds revealed novel proteins involved in aromatic degradation and a clear link between aromatic catabolism and gluconeogenesis via fructose‐1,6‐bisphosphatase. PROTEOMICS, 7(20), 3775–3787. https://doi.org/10.1002/pmic.200700481	-
Candida parapsilosis	CBS604	Middelhoven, W. J. (1993). Catabolism of benzene compounds by ascomycetous and basidiomycetous yeasts and yeastlike fungi: A literature review and an experimental approach. Antonie van Leeuwenhoek, 63(2), 125–144. https://doi.org/10.1007/bf00872388; Gérecová, G., Neboháčová, M., Zeman, I., Pryszcz, L. P., Tomáška, U., Gabaldón, T., & Nosek, J. (2015). Metabolic gene clusters encoding the enzymes of two branches of the 3-oxoadipate pathway in the pathogenic yeast Candida albicans. FEMS Yeast Research, 15(3). https://doi.org/10.1093/femsyr/fov006	-
Cryptococcus terreus	PB4	Bergauer, P., Fonteyne, P. A., Nolard, N., Schinner, F., & Margesin, R. (2005). Biodegradation of phenol and phenol-related compounds by psychrophilic and cold-tolerant alpine yeasts. Chemosphere, 59(7), 909–918. https://doi.org/10.1016/j.chemosphere.2004.11.011	-
Rhodotorula creatinivora	PB7	Bergauer, P., Fonteyne, P. A., Nolard, N., Schinner, F., & Margesin, R. (2005). Biodegradation of phenol and phenol-related compounds by psychrophilic and cold-tolerant alpine yeasts. Chemosphere, 59(7), 909–918. https://doi.org/10.1016/j.chemosphere.2004.11.011	-
Rhodosporidium lusitaniae	PB14	Bergauer, P., Fonteyne, P. A., Nolard, N., Schinner, F., & Margesin, R. (2005). Biodegradation of phenol and phenol-related compounds by psychrophilic and cold-tolerant alpine yeasts. Chemosphere, 59(7), 909–918. https://doi.org/10.1016/j.chemosphere.2004.11.011	-
Microbotryomycetidae sp.	AG15	Bergauer, P., Fonteyne, P. A., Nolard, N., Schinner, F., & Margesin, R. (2005). Biodegradation of phenol and phenol-related compounds by psychrophilic and cold-tolerant alpine yeasts. Chemosphere, 59(7), 909–918. https://doi.org/10.1016/j.chemosphere.2004.11.011	-
Candida maltosa	Fialova isolate	Fialová, A., Boschke, E., & Bley, T. (2004). Rapid monitoring of the biodegradation of phenol-like compounds by the yeast Candida maltosa using BOD measurements. International Biodeterioration &amp; Biodegradation, 54(1), 69–76. https://doi.org/10.1016/j.ibiod.2004.02.004	-
Leucosporidium scottii	G43	Middelhoven, W. J. (1993). Catabolism of benzene compounds by ascomycetous and basidiomycetous yeasts and yeastlike fungi: A literature review and an experimental approach. Antonie van Leeuwenhoek, 63(2), 125–144. https://doi.org/10.1007/bf00872388	-
Exophiala jeanselmei	CBS 658.76	Middelhoven, W. J. (1993). Catabolism of benzene compounds by ascomycetous and basidiomycetous yeasts and yeastlike fungi: A literature review and an experimental approach. Antonie van Leeuwenhoek, 63(2), 125–144. https://doi.org/10.1007/bf00872388	-
Rhodotorula ingeniosa	PB5	Bergauer, P., Fonteyne, P. A., Nolard, N., Schinner, F., & Margesin, R. (2005). Biodegradation of phenol and phenol-related compounds by psychrophilic and cold-tolerant alpine yeasts. Chemosphere, 59(7), 909–918. https://doi.org/10.1016/j.chemosphere.2004.11.011	-
Mastigobasidium intermedium	PB8	Bergauer, P., Fonteyne, P. A., Nolard, N., Schinner, F., & Margesin, R. (2005). Biodegradation of phenol and phenol-related compounds by psychrophilic and cold-tolerant alpine yeasts. Chemosphere, 59(7), 909–918. https://doi.org/10.1016/j.chemosphere.2004.11.011	-
Candida albicans	CBS562	Gérecová, G., Neboháčová, M., Zeman, I., Pryszcz, L. P., Tomáška, U., Gabaldón, T., & Nosek, J. (2015). Metabolic gene clusters encoding the enzymes of two branches of the 3-oxoadipate pathway in the pathogenic yeast Candida albicans. FEMS Yeast Research, 15(3). https://doi.org/10.1093/femsyr/fov006	-
Candida tropicalis	CBS94	Gérecová, G., Neboháčová, M., Zeman, I., Pryszcz, L. P., Tomáška, U., Gabaldón, T., & Nosek, J. (2015). Metabolic gene clusters encoding the enzymes of two branches of the 3-oxoadipate pathway in the pathogenic yeast Candida albicans. FEMS Yeast Research, 15(3). https://doi.org/10.1093/femsyr/fov006	-
Candida dubliniensis	CBS7987	Gérecová, G., Neboháčová, M., Zeman, I., Pryszcz, L. P., Tomáška, U., Gabaldón, T., & Nosek, J. (2015). Metabolic gene clusters encoding the enzymes of two branches of the 3-oxoadipate pathway in the pathogenic yeast Candida albicans. FEMS Yeast Research, 15(3). https://doi.org/10.1093/femsyr/fov006	-
Candida orthopsilosis	MCO457	Gérecová, G., Neboháčová, M., Zeman, I., Pryszcz, L. P., Tomáška, U., Gabaldón, T., & Nosek, J. (2015). Metabolic gene clusters encoding the enzymes of two branches of the 3-oxoadipate pathway in the pathogenic yeast Candida albicans. FEMS Yeast Research, 15(3). https://doi.org/10.1093/femsyr/fov006	-
Trichosporon oleaginosus	ATCC 20509	Yaguchi, A., Robinson, A., Mihealsick, E., & Blenner, M. (2017). Metabolism of aromatics by Trichosporon oleaginosus while remaining oleaginous. Microbial Cell Factories, 16(1). https://doi.org/10.1186/s12934-017-0820-8	-
Burkholderia sp.	H1	Yang, C., Wang, T., Gao, L., Yin, H., & Lü, X. (2017). Isolation, identification and characterization of lignin‐degrading bacteria from Qinling, China. Journal of Applied Microbiology, 123(6), 1447–1460. https://doi.org/10.1111/jam.13562	-
Azotobacter vinelandii	ATCC 12837	Groseclose, E. E., & Ribbons, D. W. (1981). Metabolism of resorcinylic compounds by bacteria: new pathway for resorcinol catabolism in Azotobacter vinelandii. Journal of Bacteriology, 146(2), 460–466. https://doi.org/10.1128/jb.146.2.460-466.1981	-
Azoarcus anaerobius	LuFRes1	Gorny, N., Wahl, G., Brune, A., & Schink, B. (1992). A strictly anaerobic nitrate-reducing bacterium growing with resorcinol and other aromatic compounds. Archives of Microbiology, 158(1), 48–53. https://doi.org/10.1007/bf00249065	(anaerobically)
Desulfobacterium catecholicum	NZva20	Szewzyk, R., & Pfennig, N. (1987). Complete oxidation of catechol by the strictly anaerobic sulfate-reducing Desulfobacterium catecholicum sp. nov.. Archives of Microbiology, 147(2), 163–168. https://doi.org/10.1007/bf00415278; Szewzyk, R., & Pfennig, N. (1987). Complete oxidation of catechol by the strictly anaerobic sulfate-reducing Desulfobacterium catecholicum sp. nov.. Archives of Microbiology, 147(2), 163–168. https://doi.org/10.1007/bf00415278	(anaerobically); (anaerobically)
Rhodococcus jostii	RHA1	Kasai, D., Araki, N., Motoi, K., Yoshikawa, S., Iino, T., Imai, S., Masai, E., & Fukuda, M. (2015). γ-Resorcylate Catabolic-Pathway Genes in the Soil Actinomycete Rhodococcus jostii RHA1. Applied and Environmental Microbiology, 81(21), 7656–7665. https://doi.org/10.1128/aem.02422-15	-
Pseudomonas putida	ORC	Chapman, P. J., & Ribbons, D. W. (1976). Metabolism of resorcinylic compounds by bacteria: alternative pathways for resorcinol catabolism in Pseudomonas putida. Journal of Bacteriology, 125(3), 985–998. https://doi.org/10.1128/jb.125.3.985-998.1976	-
Thauera aromatica	K172	Tschech, A., & Fuchs, G. (1987). Anaerobic degradation of phenol by pure cultures of newly isolated denitrifying pseudomonads. Archives of Microbiology, 148(3), 213–217. https://doi.org/10.1007/bf00414814	(anaerobically)
Burkholderia cepacia	Song isolate 1	Song, Y. J. (2009). Characterization of aromatic hydrocarbon degrading bacteria isolated from pine litter.. Korean Journal of Microbiology and Biotechnology, 37, 333-339.	-
