190. Figueroa LS, Schwarz B, Richards AM (2015) Structural characterization of amphiphilic
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191. Anjum F, Gautam G, Edgard G, Negi S (2016) Biosurfactant production through Bacillus
sp. MTCC 5877 and its multifarious applications in food industry. Bioresour Technol
213:262–269
192. Karlapudi AP, Venkateswarulu TC, Tammineedi J, Kanumuri L, Ravuru BK, Dirisala VR,
Kodali VP (2018) Role of biosurfactants in bioremediation of oil pollution-a review. Petroleum 4:241–249
193. Maximize Market Research (2019) Biosurfactant market – global industry analysis and
forecast (2019–2026) by type, by application and by geography. https://www.
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10 Feb 2020
194. Jain R, Mody K, Mishra A, Jha B (2012) Isolation and structural characterization of
biosurfactant produced by an alkaliphilic bacterium Cronobacter sakazakii isolated from oil
contaminated wastewater. Carbohydr Polym 87:2320–2326
195. Tambekar DH, Dose PN, Gunjakar SR, Gadakh PV (2012) Studies on biosurfactant production from Lonar Lake’s Achromobacter xylosoxidans bacterium. Int J Adv Pharm Biol Chem
1:415–419
196. Shende AM (2013) Studies on biosurfactant from Exiguobacterium sp. Sci Res Repor
3:193–199
197. Selim S, El-Alfy S, Hagagy N, Hassanin A, Khattab R, Syaed E (2012) Oil-biodegradation and
biosurfactant production by haloalkaliphilic archaea isolated from soda lakes of the Wadi an
Natrun, Egypt. J Pure Appl Microbiol 6:1011–1020
198. Zarinviarsagh M, Ebrahimipour G, Sadeghi H (2017) Lipase and biosurfactant from
Ochrobactrum intermedium strain MZV101 isolated by washing powder for detergent application. Lipids Health Dis 16:177. https://doi.org/10.1186/s12944-017-0565-8
199. Andhare P, Chauhan K, Dave M, Pathak H (2014) Microbial exopolysaccharides: advances in
applications and future prospects. In: Biotechnology volume 3: microbial biotechnology.
Studium Press LLC, Houston, pp 1–25
200. Costa OYA, Raaijmakers JM, Kuramae EE (2018) Microbial extracellular polymeric substances: ecological function and impact on soil aggregation. Front Microbiol 9:1636
201. Florenzano G, Sili C, Pelosi E, Vincenzini M (1985) Cyanospira rippkae and Cyanospira
capsulata (gen. nov. and spp. nov.): new filamentous heterocystous cyanobacteria from
Magadi lake (Kenya). Arch Microbiol 140:301–306
202. Corsaro MM, Grant WD, Grant S, Marciano CE, Parrilli M (1999) Structure determination of
an exopolysaccharide from an alkaliphilic bacterium closely related to Bacillus spp. Eur J
Biochem 264:554–561
203. Joshi AA, Kanekar PP (2011) Production of exopolysaccharide by Vagococcus carniphilus
MCM B-1018 isolated from alkaline Lonar Lake, India. Ann Microbiol 61:733–740
204. De Philippis R, Micheletti E (2009) Heavy metal removal with exopolysaccharide-producing
cyanobacteria. In: Wang LK, Chen JP, Hung YT, Shammas NK (eds) Heavy metals in the
environment. CRC Press, Boca Raton, pp 89–122
205. De Philippis R, Paperi R, Sili C (2007) Heavy metal sorption by released polysaccharides and
whole cultures of two exopolysaccharide-producing cyanobacteria. Biodegradation
18:181–187
206. Zinicovscaia I, Yushin N, Shvetsova M, Frontasyeva M (2018) Zinc removal from model
solution and wastewater by Arthrospira (Spirulina) Platensis biomass. Int J Phytoremediation
20:901–908
207. Han PP, Sun Y, Wu XY, Yuan YJ, Dai YJ, Jia SR (2014) Emulsifying, flocculating, and
physicochemical properties of exopolysaccharide produced by cyanobacterium Nostoc
flagelliforme. Appl Biochem Biotechnol 172:36–49
46
G. Mamo and B. Mattiasson
siderophores produced by a soda lake isolate, Halomonas sp. SL01, reveals cysteine, phenylalanine and proline containing head groups. Extremophiles 19:1183–1192
191. Anjum F, Gautam G, Edgard G, Negi S (2016) Biosurfactant production through Bacillus
sp. MTCC 5877 and its multifarious applications in food industry. Bioresour Technol
213:262–269
192. Karlapudi AP, Venkateswarulu TC, Tammineedi J, Kanumuri L, Ravuru BK, Dirisala VR,
Kodali VP (2018) Role of biosurfactants in bioremediation of oil pollution-a review. Petroleum 4:241–249
193. Maximize Market Research (2019) Biosurfactant market – global industry analysis and
forecast (2019–2026) by type, by application and by geography. https://www.
maximizemarketresearch.com/market-report/global-biosurfactants-market/433/.
Accessed
10 Feb 2020
194. Jain R, Mody K, Mishra A, Jha B (2012) Isolation and structural characterization of
biosurfactant produced by an alkaliphilic bacterium Cronobacter sakazakii isolated from oil
contaminated wastewater. Carbohydr Polym 87:2320–2326
195. Tambekar DH, Dose PN, Gunjakar SR, Gadakh PV (2012) Studies on biosurfactant production from Lonar Lake’s Achromobacter xylosoxidans bacterium. Int J Adv Pharm Biol Chem
1:415–419
196. Shende AM (2013) Studies on biosurfactant from Exiguobacterium sp. Sci Res Repor
3:193–199
197. Selim S, El-Alfy S, Hagagy N, Hassanin A, Khattab R, Syaed E (2012) Oil-biodegradation and
biosurfactant production by haloalkaliphilic archaea isolated from soda lakes of the Wadi an
Natrun, Egypt. J Pure Appl Microbiol 6:1011–1020
198. Zarinviarsagh M, Ebrahimipour G, Sadeghi H (2017) Lipase and biosurfactant from
Ochrobactrum intermedium strain MZV101 isolated by washing powder for detergent application. Lipids Health Dis 16:177. https://doi.org/10.1186/s12944-017-0565-8
199. Andhare P, Chauhan K, Dave M, Pathak H (2014) Microbial exopolysaccharides: advances in
applications and future prospects. In: Biotechnology volume 3: microbial biotechnology.
Studium Press LLC, Houston, pp 1–25
200. Costa OYA, Raaijmakers JM, Kuramae EE (2018) Microbial extracellular polymeric substances: ecological function and impact on soil aggregation. Front Microbiol 9:1636
201. Florenzano G, Sili C, Pelosi E, Vincenzini M (1985) Cyanospira rippkae and Cyanospira
capsulata (gen. nov. and spp. nov.): new filamentous heterocystous cyanobacteria from
Magadi lake (Kenya). Arch Microbiol 140:301–306
202. Corsaro MM, Grant WD, Grant S, Marciano CE, Parrilli M (1999) Structure determination of
an exopolysaccharide from an alkaliphilic bacterium closely related to Bacillus spp. Eur J
Biochem 264:554–561
203. Joshi AA, Kanekar PP (2011) Production of exopolysaccharide by Vagococcus carniphilus
MCM B-1018 isolated from alkaline Lonar Lake, India. Ann Microbiol 61:733–740
204. De Philippis R, Micheletti E (2009) Heavy metal removal with exopolysaccharide-producing
cyanobacteria. In: Wang LK, Chen JP, Hung YT, Shammas NK (eds) Heavy metals in the
environment. CRC Press, Boca Raton, pp 89–122
205. De Philippis R, Paperi R, Sili C (2007) Heavy metal sorption by released polysaccharides and
whole cultures of two exopolysaccharide-producing cyanobacteria. Biodegradation
18:181–187
206. Zinicovscaia I, Yushin N, Shvetsova M, Frontasyeva M (2018) Zinc removal from model
solution and wastewater by Arthrospira (Spirulina) Platensis biomass. Int J Phytoremediation
20:901–908
207. Han PP, Sun Y, Wu XY, Yuan YJ, Dai YJ, Jia SR (2014) Emulsifying, flocculating, and
physicochemical properties of exopolysaccharide produced by cyanobacterium Nostoc
flagelliforme. Appl Biochem Biotechnol 172:36–49
46
G. Mamo and B. Mattiasson
