Biosurfactants for a Sustainable Future. Группа авторов

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Extremophiles 17: 981–993.

      82 82 Vanavil, B., Perumalsamy, M., and Rao, A.S. (2013). Biosurfactant production from novel air isolate NITT6L: screening, characterization and optimization of media. J. Microbiol. Biotechnol. 23: 1229–1243.

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      84 84 Zhang, Q., Li, Y., and Xia, L. (2014). An oleaginous endophyte Bacillus subtilis HB1310 isolated from thin‐shelled walnut and its utilization of cotton stalk hydrolysate for lipid production. Biotechnol. Biofuels 7 (1): 152.

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      88 88 Xu, N., Liu, S., Xu, L. et al. (2020). Enhanced rhamnolipids production using a novel bioreactor system based on integrated foam‐control and repeated fed‐batch fermentation strategy. Biotechnol. Biofuels 13: 1–10.

      89 89 Yao, S., Zhao, S., Lu, Z. et al. (2015). Control of agitation and aeration rates in the production of surfactin in foam overflowing fed‐batch culture with industrial fermentation. Rev. Argent. Microbiol. 47: 344–349.

      90 90 Zhu, Y., Gan, J.J., Zhang, G.L. et al. (2007). Reuse of waste frying oil for production of rhamnolipids using Pseudomonas aeruginosa zju. u1M. J. Zhejiang Univ. Sci. A 8 (9): 1514–1520.

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      92 92 Bhardwaj, G., Cameotra, S.S., and Chopra, H.K. (2013). Utilization of oleo‐chemical industry by‐products for biosurfactant production. AMB Express 3 (1): 68.

      93 93 Banat, I.M., Satpute, S.K., Cameotra, S.S. et al. (2014). Cost effective technologies and renewable substrates for biosurfactants' production. Front. Microbiol. 5: 697.

      94 94 Thavasi, R., Jayalakshmi, S., Balasubramanian, T., and Banat, I.M. (2008). Production and characterization of a glycolipid biosurfactant from Bacillus megaterium using economically cheaper sources. World J. Microbiol. Biotechnol. 24 (7): 917–925.

      95 95 Mercade, M.E., Manresa, M.A., Robert, M. et al. (1993). Olive oil mill effluent (OOME). New substrate for biosurfactant production. Bioresour. Technol. 43 (1): 1–6.

      96 96 Abalos, A., Pinazo, A., Infante, M.R. et al. (2001). Physicochemical and antimicrobial properties of new rhamnolipids produced by Pseudomonas aeruginosa AT10 from soybean oil refinery wastes. Langmuir 17 (5): 1367–1371.

      97 97 Benincasa, M., Abalos, A., Oliveira, I., and Manresa, A. (2004). Chemical structure, surface properties and biological activities of the biosurfactant produced by Pseudomonas aeruginosa LBI from soapstock. Antonie Van Leeuwenhoek 85: 1–8.

      98 98 De Faria, A.F., Teodoro‐Martinez, D.S., De Oliveira Barbosa, G.N. et al. (2011). Production and structural characterization of surfactin (C14/Leu7) produced by Bacillus subtilis isolate LSFM‐05 grown on raw glycerol from the biodiesel industry. Process Biochem. 46: 1951–1957.

      99 99 George, S. and Jayachandran, K. (2013). Production and characterization of rhamnolipid biosurfactant from waste frying coconut oil using a novel Pseudomonas aeruginosa D. J. Appl. Microbiol. 114: 373–383.

      100 100 Moya Ramírez, I., Altmajer Vaz, D., Banat, I.M. et al. (2016). Hydrolysis of olive mill waste to enhance rhamnolipids and surfactin production. Bioresour. Technol. 205: 1–6.

      101 101 Bednarski, W., Adamczak, M., Tomasik, J., and Płaszczyk, M. (2004). Application of oil refinery waste in the biosynthesis of glycolipids by yeast. Bioresour. Technol. 95 (1): 15–18.

      102 102 Nitschke, M., Costa, S.G., and Contiero, J. (2005). Rhamnolipid surfactants: an update on the general aspects of these remarkable biomolecules. Biotechnol. Prog. 21: 1593–1600.

      103 103 Rufino, R.D., Sarubbo, L.A., Neto, B.B., and Campos‐Takaki, G.M. (2008). Experimental design for the production of tensio‐active agent by Candida lipolytica. J. Ind. Microbiol. Biotechnol. 35: 907–914.

      104 104 Jang, J.Y., Yang, S.Y., Kim, Y.C. et al. (2013). Identification of orfamide A as an insecticidal metabolite produced by Pseudomonas protegens F6. J. Agric. Food Chem. 61: 6786–6791.

      105 105 Menon, V., Prakash, G., Prabhune, A., and Rao, M. (2010). Biocatalytic approach for the utilization of hemicellulose for ethanol production from agricultural residue using thermostable xylanase and thermotolerant yeast. Bioresour. Technol. 101: 5366–5373.

      106 106 Di Martino, C., Catone, M.V., Lopez, N.I., and Raiger Iustman, L.J. (2014). Polyhydroxyalkanoate synthesis affects biosurfactant production and cell attachment to hydrocarbons in Pseudomonas sp. KA‐08. Curr. Microbiol. 68: 735–742.

      107 107 Marmesat, S., Rodrigues, E., Velasco, J., and Dobarganes, C. (2007). Quality of used frying fats and oils: comparison of rapid tests based on chemical and physical oil properties. Int. J. Food Sci. Technol. 42 (5): 601–608.

      108 108 Haba, E., Espuny, M.J., Busquets, M., and Manresa, A. (2000). Screening and production of rhamnolipids by Pseudomonas aeruginosa 47T2 NCIB 40044 from waste frying oils. J. Appl. Microbiol. 88: 379–387.

      109 109 Vedaraman, N. and Venkatesh, N. (2011). Production of surfactin by Bacillus subtilis MTCC 2423 from waste frying oils. Braz. J. Chem. Eng. 28 (2): 175–180.

      110 110 Pan, L.S., Xu, N., Tian, Z. et al. (2011). Preparation and characterization of poly(propylene carbonate)/alkali lignin composite sheets by calendering process. In: Advanced Materials Research, vol. 233–235, 1786–1789. Trans Tech Publications Ltd.

      111 111 Hasanizadeh, P., Moghimi, H., and Hamedi, J. (2018). Biosurfactant production by Mucor circinelloides: Environmental applications and surface‐active properties. Eng. Life Sci. 18 (5): 317–325.

      112 112 Banasik, A., Kanellopoulos, A., Claassen, G.D.H. et al. (2017). Closing loops in agricultural supply chains using multi‐objective optimization: A case study of an industrial mushroom supply chain. Int. J. Prod. Econ. 183: 409–420.

      113 113 Garg, V.K., Suthar, S., and Yadav, A. (2012). Management of food industry waste employing vermicomposting technology. Bioresour. Technol. 126: 437–443.

      114 114 Ponte Rocha, M.V., Gomes Barreto, R.V., Melo, V.M., and Barros Goncalves, L.R. (2009). Evaluation of cashew apple juice for surfactin production by Bacillus subtilis LAMI008. Appl. Biochem. Biotechnol. 155: 366–378.

      115 115 Rocha, M.V., Souza, M.C., Benedicto, S.C. et al. (2007). Production of biosurfactant by Pseudomonas aeruginosa grown on cashew apple juice. Appl. Biochem. Biotechnol. 137–140: 185–194.

      116 116 Giro, M.E., Martins, J.J., Rocha, M.V. et al. (2009). Clarified cashew apple juice as alternative raw material for biosurfactant production

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