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Nature reviews Molecular cell biology, 5(12), p.p 1024-1037.
• Wakamatsu, Y., Zhao, X., Jin, C., Day, N., Shibahara, M., Nomura, N., ... & Yokoyama,
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Degradation of petroleum hydrocarbons (C6–C40) and crude oil by a novel Dietzia strain.
Bioresource technology, 102(17), p.p 7755-7761.
• Whang, L. M., Liu, P. W. G., Ma, C. C., & Cheng, S. S. (2008). Application of
biosurfactants, rhamnolipid, and surfactin, for enhanced biodegradation of diesel-contaminated
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Characterization of antarctic hydrocarbon-degrading bacteria capable of producing
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Blida : université Saad Dahlab Belida 1, p. 187
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Ecotoxicology, 19(1), p.p 96-104.
• Zhang, Y., Wang, F., Yang, X., Gu, C., Kengara, F. O., Hong, Q., ... & Jiang, X. (2011).
Extracellular polymeric substances enhanced mass transfer of polycyclic aromatic hydrocarbons
• Vladimirov, N., & Sourjik, V. (2009). Chemotaxis: how bacteria use memory.
• Wadhams, G. H., & Armitage, J. P. (2004). Making sense of it all: bacterial chemotaxis.
Nature reviews Molecular cell biology, 5(12), p.p 1024-1037.
• Wakamatsu, Y., Zhao, X., Jin, C., Day, N., Shibahara, M., Nomura, N., ... & Yokoyama,
K. K. (2001). Mannosylerythritol lipid induces characteristics of neuronal differentiation in
PC12 cells through an ERK related signal cascade. European Journal of Biochemistry, 268(2),
p.p 374-383.
• Wang, X. B., Chi, C. Q., Nie, Y., Tang, Y. Q., Tan, Y., Wu, G., & Wu, X. L. (2011).
Degradation of petroleum hydrocarbons (C6–C40) and crude oil by a novel Dietzia strain.
Bioresource technology, 102(17), p.p 7755-7761.
• Whang, L. M., Liu, P. W. G., Ma, C. C., & Cheng, S. S. (2008). Application of
biosurfactants, rhamnolipid, and surfactin, for enhanced biodegradation of diesel-contaminated
water and soil. Journal of hazardous materials, 151(1), p.p 155-163.
• Xiao, Y., Gerth, K., Müller, R., & Wall, D. (2012). Myxobacterium-produced antibiotic TA
(myxovirescin) inhibits type II signal peptidase. Antimicrobial agents and chemotherapy, 56(4),
p.p 2014-2021.
• Yakimov, M. M., Gentile, G., Bruni, V., Cappello, S., D'Auria, G., Golyshin, P. N., &
Giuliano, L. (2004). Crude oil-induced structural shift of coastal bacterial communities of rod
bay (Terra Nova Bay, Ross Sea, Antarctica) and characterization of cultured cold-adapted
hydrocarbonoclastic bacteria. FEMS Microbiology Ecology, 49(3), p.p 419-432.
• Yakimov, M. M., Giuliano, L., Bruni, V., Scarfi, S., & Golyshin, P. N. (1999).
Characterization of antarctic hydrocarbon-degrading bacteria capable of producing
bioemulsifiers. The new microbiologica, 22(3), p.p 249-256.
• Yakimov, M. M., Timmis, K. N., & Golyshin, P. N. (2007). Obligate oil-degrading marine
bacteria. Current opinion in biotechnology, 18(3), p.p 257-266.
• Zenati, B. (2018). Étude de la biodégradation des hydrocarbures pétroliers par des bactéries
marine : Application en traitement des eaux contaminées par le pétrole. Chimie industrielle.
Blida : université Saad Dahlab Belida 1, p. 187
• Zhang, W., Wang, H., Zhang, R., Yu, X. Z., Qian, P. Y., & Wong, M. H. (2010). Bacterial
communities in PAH contaminated soils at an electronic-waste processing center in China.
Ecotoxicology, 19(1), p.p 96-104.
• Zhang, Y., Wang, F., Yang, X., Gu, C., Kengara, F. O., Hong, Q., ... & Jiang, X. (2011).
Extracellular polymeric substances enhanced mass transfer of polycyclic aromatic hydrocarbons
