Références
bibliographiques
168
• Fuentes, S., Méndez, V., Aguila, P. and Seeger, M., 2014. Bioremediation of
petroleum hydrocarbons: catabolic genes, microbial communities, and
applications. Applied microbiology and biotechnology, 98(11), pp.4781-4794.
• Furukawa, K., Hirose, J., Suyama, A.K.I.K.O., Zaiki, T.O.M.O.K.O. and Hayashida,
S., 1993. Gene components responsible for discrete substrate specificity in the
metabolism of biphenyl (bph operon) and toluene (tod operon). Journal of
bacteriology, 175(16), pp.5224-5232.
• Gao, X., Gao, W., Cui, Z., Han, B., Yang, P., Sun, C. and Zheng, L., 2015.
Biodiversity and degradation potential of oil-degrading bacteria isolated from deepsea sediments of South Mid-Atlantic Ridge. Marine pollution bulletin, 97(1-2),
pp.373-380.
• Gargouri, B., Aloui, F. and Sayadi, S., 2012. Reduction of petroleum hydrocarbons
content from an engine oil refinery wastewater using a continuous stirred tank reactor
monitored by spectrometry tools. Journal of Chemical Technology &
Biotechnology, 87(2), pp.238-243.
• Gasperi, J., 2006. Introduction et transfert des hydrocarbures à différentes échelles
spatiales dans le réseau d'assainissement parisien (Doctoral dissertation, Marne-lavallée, ENPC)
• Gauthier, M.J., Lafay, B., Christen, R., Fernandez, L., Acquaviva, M., Bonin, P. and
Bertrand, J.C., 1992. Marinobacter hydrocarbonoclasticus gen. nov., sp. nov., a new,
extremely halotolerant, hydrocarbon-degrading marine bacterium. International
Journal of Systematic and Evolutionary Microbiology, 42(4), pp.568-576.
• Genovese, M., Crisafi, F., Denaro, R., Cappello, S., Russo, D., Calogero, R., Santisi,
S., Catalfamo, M., Modica, A., Smedile, F. and Genovese, L., 2014. Effective
bioremediation strategy for rapid in situ cleanup of anoxic marine sediments in
mesocosm oil spill simulation. Frontiers in microbiology, 5, p.162.
• Gentile, G., Bonsignore, M., Santisi, S., Catalfamo, M., Giuliano, L., Genovese, L.,
Yakimov, M.M., Denaro, R., Genovese, M. and Cappello, S., 2016. Biodegradation
potentiality of psychrophilic bacterial strain Oleispira antarctica RB-8T. Marine
pollution bulletin, 105(1), pp.125-130.
• Gesteira, J.G. and Dauvin, J.C., 2000. Amphipods are good bioindicators of the impact
of oil spills on soft-bottom macrobenthic communities. Marine Pollution
Bulletin, 40(11), pp.1017-1027.
• Ghazali, F.M., Rahman, R.N.Z.A., Salleh, A.B. and Basri, M., 2004. Biodegradation
of hydrocarbons in soil by microbial consortium. International Biodeterioration &
Biodegradation,54(1), pp.61-67.
• Ghoreishi, G., Alemzadeh, A., Mojarrad, M. and Djavaheri, M., 2017. Bioremediation
capability and characterization of bacteria isolated from petroleum contaminated soils
in Iran.Sustainable Environment Research, 27(4), pp.195-202.
bibliographiques
168
• Fuentes, S., Méndez, V., Aguila, P. and Seeger, M., 2014. Bioremediation of
petroleum hydrocarbons: catabolic genes, microbial communities, and
applications. Applied microbiology and biotechnology, 98(11), pp.4781-4794.
• Furukawa, K., Hirose, J., Suyama, A.K.I.K.O., Zaiki, T.O.M.O.K.O. and Hayashida,
S., 1993. Gene components responsible for discrete substrate specificity in the
metabolism of biphenyl (bph operon) and toluene (tod operon). Journal of
bacteriology, 175(16), pp.5224-5232.
• Gao, X., Gao, W., Cui, Z., Han, B., Yang, P., Sun, C. and Zheng, L., 2015.
Biodiversity and degradation potential of oil-degrading bacteria isolated from deepsea sediments of South Mid-Atlantic Ridge. Marine pollution bulletin, 97(1-2),
pp.373-380.
• Gargouri, B., Aloui, F. and Sayadi, S., 2012. Reduction of petroleum hydrocarbons
content from an engine oil refinery wastewater using a continuous stirred tank reactor
monitored by spectrometry tools. Journal of Chemical Technology &
Biotechnology, 87(2), pp.238-243.
• Gasperi, J., 2006. Introduction et transfert des hydrocarbures à différentes échelles
spatiales dans le réseau d'assainissement parisien (Doctoral dissertation, Marne-lavallée, ENPC)
• Gauthier, M.J., Lafay, B., Christen, R., Fernandez, L., Acquaviva, M., Bonin, P. and
Bertrand, J.C., 1992. Marinobacter hydrocarbonoclasticus gen. nov., sp. nov., a new,
extremely halotolerant, hydrocarbon-degrading marine bacterium. International
Journal of Systematic and Evolutionary Microbiology, 42(4), pp.568-576.
• Genovese, M., Crisafi, F., Denaro, R., Cappello, S., Russo, D., Calogero, R., Santisi,
S., Catalfamo, M., Modica, A., Smedile, F. and Genovese, L., 2014. Effective
bioremediation strategy for rapid in situ cleanup of anoxic marine sediments in
mesocosm oil spill simulation. Frontiers in microbiology, 5, p.162.
• Gentile, G., Bonsignore, M., Santisi, S., Catalfamo, M., Giuliano, L., Genovese, L.,
Yakimov, M.M., Denaro, R., Genovese, M. and Cappello, S., 2016. Biodegradation
potentiality of psychrophilic bacterial strain Oleispira antarctica RB-8T. Marine
pollution bulletin, 105(1), pp.125-130.
• Gesteira, J.G. and Dauvin, J.C., 2000. Amphipods are good bioindicators of the impact
of oil spills on soft-bottom macrobenthic communities. Marine Pollution
Bulletin, 40(11), pp.1017-1027.
• Ghazali, F.M., Rahman, R.N.Z.A., Salleh, A.B. and Basri, M., 2004. Biodegradation
of hydrocarbons in soil by microbial consortium. International Biodeterioration &
Biodegradation,54(1), pp.61-67.
• Ghoreishi, G., Alemzadeh, A., Mojarrad, M. and Djavaheri, M., 2017. Bioremediation
capability and characterization of bacteria isolated from petroleum contaminated soils
in Iran.Sustainable Environment Research, 27(4), pp.195-202.
