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from petroleum contaminated sites in Tunisia: isolation, identification and characterization of
the biotechnological potential. New biotechnology, 30(6), p.p. 723- 733.
• Maier, R. M., & Soberon-Chavez, G. (2000). Pseudomonas aeruginosa rhamnolipids:
biosynthesis and potential applications. Applied microbiology and biotechnology, 54(5), p.p.
625-633.
• Marchal, R., Penet, S., Solano-Serena, F., & Vandecasteele, J. P. (2003). Gasoline and
diesel oil biodegradation. Oil & gas science and technology, 58(4), p.p. 441-448.
• Mason, O. U., Scott, N. M., Gonzalez, A., Robbins-Pianka, A., Bælum, J., Kimbrel, J., ... &
Jansson, J. K. (2014). Metagenomics reveals sediment microbial community response to
Deepwater Horizon oil spill. The ISME journal, 8(7), p.p. 1464-1475.
• Mohanty, G., & Mukherji, S. (2008). Biodegradation rate of diesel range n-alkanes by
bacterial cultures Exiguobacterium aurantiacum and Burkholderia cepacia. International
Biodeterioration & Biodegradation, 61(3), p.p. 240-250.
• Morikawa, M., Hirata, Y., & Imanaka, T. (2000). A study on the structure–function
relationship of lipopeptide biosurfactants. Biochimica et Biophysica Acta (BBA)-Molecular and
Cell Biology of Lipids, 1488(3), p.p. 211-218.
• Mounier, J. (2013). Caractérisation fonctionnelle de gènes de Marinobacter
hydrocarbonoclasticus lors du développement de biofilms sur composés organiques
hydrophobes (Doctoral dissertation, Pau).
• Muangchinda, C., Rungsihiranrut, A., Prombutara, P., Soonglerdsongpha, S., &
Pinyakong, O. (2018). 16S metagenomic analysis reveals adaptability of a mixed-PAHdegrading consortium isolated from crude oil-contaminated seawater to changing environmental
conditions. Journal of hazardous materials, 357, p.p. 119-127.
• Mukherjee, S., Juottonen, H., Siivonen, P., Quesada, C. L., Tuomi, P., Pulkkinen, P., &
Yrjälä, K. (2014). Spatial patterns of microbial diversity and activity in an aged creosotecontaminated site. The ISME journal, 8(10), p.p. 2131-2142.
• Nikitha, T., Satyaprakash, M., Vani, S. S., Sadhana, B., & Padal, S. B. (2017). A review on
polycyclic aromatic hydrocarbons: Their transport, fate and biodegradation in the environment.
Int. J. Curr. Microbiol. Appl. Sci, 6(4), p.p. 1627-1639.
• O'Toole, G. A., & Kolter, R. (1998). Initiation of biofilm formation in Pseudomonas
fluorescens WCS365 proceeds via multiple, convergent signalling pathways: a genetic analysis.
Molecular microbiology, 28(3), p.p. 449-461.
from petroleum contaminated sites in Tunisia: isolation, identification and characterization of
the biotechnological potential. New biotechnology, 30(6), p.p. 723- 733.
• Maier, R. M., & Soberon-Chavez, G. (2000). Pseudomonas aeruginosa rhamnolipids:
biosynthesis and potential applications. Applied microbiology and biotechnology, 54(5), p.p.
625-633.
• Marchal, R., Penet, S., Solano-Serena, F., & Vandecasteele, J. P. (2003). Gasoline and
diesel oil biodegradation. Oil & gas science and technology, 58(4), p.p. 441-448.
• Mason, O. U., Scott, N. M., Gonzalez, A., Robbins-Pianka, A., Bælum, J., Kimbrel, J., ... &
Jansson, J. K. (2014). Metagenomics reveals sediment microbial community response to
Deepwater Horizon oil spill. The ISME journal, 8(7), p.p. 1464-1475.
• Mohanty, G., & Mukherji, S. (2008). Biodegradation rate of diesel range n-alkanes by
bacterial cultures Exiguobacterium aurantiacum and Burkholderia cepacia. International
Biodeterioration & Biodegradation, 61(3), p.p. 240-250.
• Morikawa, M., Hirata, Y., & Imanaka, T. (2000). A study on the structure–function
relationship of lipopeptide biosurfactants. Biochimica et Biophysica Acta (BBA)-Molecular and
Cell Biology of Lipids, 1488(3), p.p. 211-218.
• Mounier, J. (2013). Caractérisation fonctionnelle de gènes de Marinobacter
hydrocarbonoclasticus lors du développement de biofilms sur composés organiques
hydrophobes (Doctoral dissertation, Pau).
• Muangchinda, C., Rungsihiranrut, A., Prombutara, P., Soonglerdsongpha, S., &
Pinyakong, O. (2018). 16S metagenomic analysis reveals adaptability of a mixed-PAHdegrading consortium isolated from crude oil-contaminated seawater to changing environmental
conditions. Journal of hazardous materials, 357, p.p. 119-127.
• Mukherjee, S., Juottonen, H., Siivonen, P., Quesada, C. L., Tuomi, P., Pulkkinen, P., &
Yrjälä, K. (2014). Spatial patterns of microbial diversity and activity in an aged creosotecontaminated site. The ISME journal, 8(10), p.p. 2131-2142.
• Nikitha, T., Satyaprakash, M., Vani, S. S., Sadhana, B., & Padal, S. B. (2017). A review on
polycyclic aromatic hydrocarbons: Their transport, fate and biodegradation in the environment.
Int. J. Curr. Microbiol. Appl. Sci, 6(4), p.p. 1627-1639.
• O'Toole, G. A., & Kolter, R. (1998). Initiation of biofilm formation in Pseudomonas
fluorescens WCS365 proceeds via multiple, convergent signalling pathways: a genetic analysis.
Molecular microbiology, 28(3), p.p. 449-461.
