Biosurfactants for a Sustainable Future. Группа авторов

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      10 10 Guzik, M.W., Kenny, S.T., Duane, G.F. et al. (2014). Conversion of post consumer polyethylene to the biodegradable polymer polyhydroxyalkanoate. Appl. Microbiol. Biotechnol. 98: 4223–4232.

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      16 16 Cavalcanti, M.H.C., Magalhaes, V.M., Farias, C.B.B. et al. (2020). Maximization of biosurfactant production by Bacillus invictae using agroindustrial residues for application in the removal of hydrophobic pollutants. Chem. Eng. Trans. 79: 55–60.

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      20 20 Karnwal, A. (2018). Use of bio‐chemical surfactant producing endophytic bacteria isolated from rice root for heavy metal bioremediation. Pertanika J. Trop. Agric. Sci. 41 (2): 699–713.

      21 21 Kaur, H.P., Prasad, B., and Kaur, S. (2015). A review on application of biosurfactants produced from unconventional inexpensive wastes in food and agriculture industry. World J. Pharm. Res. 4 (8): 827–842.

      22 22 Kertesz, M.A. and Thai, M. (2018). Compost bacteria and fungi that influence growth and development of Agaricus bisporus and other commercial mushrooms. Appl. Microbiol. Biotechnol. 102 (4): 1639–1650.

      23 23 Lima, F.A., Santos, O.S., Pomella, A.W.V. et al. (2020). Culture medium evaluation using low‐cost substrate for biosurfactants lipopeptides production by Bacillus amyloliquefaciens in pilot bioreactor. J. Surfactant Deterg. 23 (1): 91–98.

      24 24 Satpute, S.K., Bhuyan, S.S., Pardesi, K.R. et al. (2010). Molecular genetics of biosurfactant synthesis in microorganisms. Adv. Exp. Med. Biol. 672: 14–41.

      25 25 Kiran, G.S., Ninawe, A.S., Lipton, A.N. et al. (2016). Rhamnolipid biosurfactants: evolutionary implications, applications and future prospects from untapped marine resource. Crit. Rev. Biotechnol. 36: 399–415.

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      28 28 Whang, L.M., Liu, P.W., Ma, C.C., and Cheng, S.S. (2008). Application of biosurfactants, rhamnolipid, and surfactin, for enhanced biodegradation of diesel‐contaminated water and soil. J. Hazard. Mater. 151: 155–163.

      29 29 Karnwal, A., Bhardwaj, V., Dohroo, A. et al. (2018). Effect of microbial surfactants on heavy metal polluted wastewater. Pollut. Res. 37: 39–46.

      30 30 Mishra, S. and Singh, S.N. (2012). Microbial degradation of n‐hexadecane in mineral salt medium as mediated by degradative enzymes. Bioresour. Technol. 111: 148–154.

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      32 32 Das, P., Mukherjee, S., Sivapathasekaran, C., and Sen, R. (2010). Microbial surfactants of marine origin: Potentials and prospects. In: Biosurfactants. Advances in Experimental Medicine and Biology, vol. 672 (ed. R. Sen), 88–101. New York, NY: Springer.

      33 33 Zhang, J., Lin, X.G., Liu, W.W., and Yin, R. (2012). Response of soil microbial community to the bioremediation of soil contaminated with PAHs. Huan Jing Ke Xue 33: 2825–2831.

      34 34 Cazals, F., Huguenot, D., Crampon, M. et al. (2020). Production of biosurfactant using the endemic bacterial community of a PAHs contaminated soil, and its potential use for PAHs remobilization. Sci. Total Environ. 709: 136143.

      35 35 Satyanarayana, T., Johri, B.N., and Prakash, A. (2012). Microorganisms in Sustainable Agriculture and Biotechnology. New York: Springer, Dordrecht.

      36 36 de Almeida Couto, C.R., Alvarez, V.M., Marques, J.M. et al. (2015). Exploiting the aerobic endospore‐forming bacterial diversity in saline and hypersaline environments for biosurfactant production. BMC Microbiol. 15: 240.

      37 37 Silva, M.A., Silva, A.F., Rufino, R.D. et al. (2017). Production of biosurfactants by Pseudomonas species for application in the petroleum industry. Water Environ. Res. 89: 117–126.

      38 38 Nguyen, T.T., Quyen, T.D., and Le, H.T. (2013). Cloning and enhancing production of a detergent‐and organic‐solvent‐resistant nattokinase from Bacillus subtilis VTCC‐DVN‐12‐01 by using an eight‐protease‐gene‐deficient Bacillus subtilis WB800. Microb. Cell Fact. 12 (1): 79.

      39 39 Jenneman, G.E., McInerney, M.J., Knapp, R.M., Clark, J.B., Feero, J.M., Revus, D.E. and Menzie, D.E., (1983). Halotolerant, biosurfactant‐producing Bacillus species potentially useful for enhanced oil recovery. Dev. Ind. Microbiol. (United States), 24(CONF‐8208164‐).

      40 40 Almeida, P.F.D., Moreira, R.S., Almeida, R.C.D.C. et al. (2004). Selection and application of microorganisms to improve oil recovery. Eng. Life Sci. 4 (4): 319–325.

      41 41 Horowitz, S. and Griffin, W.M. (1991). Structural analysis of Bacillus licheniformis 86 surfactant. J. Ind. Microbiol. 7 (1): 45–52.

      42 42 Coronel‐Leon, J., Pinazo, A., Perez, L. et al. (2017). Lichenysin‐geminal amino acid‐based surfactants: Synergistic action of an unconventional antimicrobial mixture. Colloids Surf. B Biointerfaces 149: 38–47.

      43 43 Makkar, R.S. and Cameotra, S.S. (1997). Utilization of molasses for biosurfactant production by two Bacillus strains at thermophilic conditions. J. Am. Oil Chem. Soc. 74 (7): 887–889.

      44 44 Abouseoud, M., Maachi, R., Amrane, A. et al. (2008). Evaluation of different carbon and nitrogen sources in production of biosurfactant by Pseudomonas fluorescens. Desalination 223 (1–3): 143–151.

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