Organism	Strain	Reference(s)
Rhodococcus erythropolis	1CP	Eulberg, D., Golovleva, L. A., & Schlömann, M. (1997). Characterization of catechol catabolic genes from Rhodococcus erythropolis 1CP. Journal of Bacteriology, 179(2), 370–381. https://doi.org/10.1128/jb.179.2.370-381.1997
Burkholderia cepacia	ATCC 29351	Hamzah, R. Y., & Al-Baharna, B. S. (1994). Catechol ring-cleavage in Pseudomonas cepacia: the simultaneous induction of ortho and meta pathways. Applied Microbiology and Biotechnology, 41(2), 250–256. https://doi.org/10.1007/bf00186968
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
Corynebacterium glutamicum	ATCC13032	Shen, X. H., Zhou, N. Y., & Liu, S. J. (2012). Degradation and assimilation of aromatic compounds by Corynebacterium glutamicum: another potential for applications for this bacterium?. Applied Microbiology and Biotechnology, 95(1), 77–89. https://doi.org/10.1007/s00253-012-4139-4
Pseudomonas putida	PRS2000	Ornston, L. N., & Parke, D. (1976). Properties of an inducible uptake system for beta-ketoadipate in Pseudomonas putida. Journal of Bacteriology, 125(2), 475–488. https://doi.org/10.1128/jb.125.2.475-488.1976
Rhodococcus opacus	PD630 (DSMZ 44193)	Henson, W. R., Campbell, T., DeLorenzo, D. M., Gao, Y., Berla, B., Kim, S. J., Foston, M., Moon, T. S., & Dantas, G. (2018). Multi-omic elucidation of aromatic catabolism in adaptively evolved Rhodococcus opacus. Metabolic Engineering, 49, 69–83. https://doi.org/10.1016/j.ymben.2018.06.009
Natrialba sp.	C21	Khemili-Talbi, S., Kebbouche-Gana, S., Akmoussi-Toumi, S., Angar, Y., & Gana, M. L. (2015). Isolation of an extremely halophilic arhaeon Natrialba sp. C21 able to degrade aromatic compounds and to produce stable biosurfactant at high salinity. Extremophiles, 19(6), 1109–1120. https://doi.org/10.1007/s00792-015-0783-9
