Potential application of biosurfactant from marine bacteria in bioremediation
##plugins.themes.bootstrap3.article.main##
Abstract
Mohanty M, Das S. 2018. Potential application of biosurfactant from marine bacteria in bioremediation. Ocean Life 2: 59- 72. Marine bacteria were screened for their potential ability to produce biosurfactants which can effectively reduce polycyclic aromatic hydrocarbons (PAHs) as the only carbon and energy source. Having many toxic effects, the PAHs are very harmful to flora and fauna as well as affecting humankind adversely. This work aimed at investigating the potential applications of biosurfactant in aerobic degradation of PAHs under stress conditions. The antimicrobial and anti-adhesive capacity of the biosurfactant were also tested against different pathogenic species. Marine bacteria were collected from sediment samples of Paradip Port, Visakhapatnam Port, Rishikulya, Bhitarakanika and screened for their biosurfactant production. Its growth was optimized in carbon and nitrogen sources for maximum biosurfactant production. Naphthalene and PAHs degrading isolates were evaluated for their biodegradative potential through UV-Vis spectroscopy and phenotypical characterization by SEM studies. Five candidate isolates, identified to be Ochrobactrum, Streptococcus, Pseudomonas sp., Pseudomonas aeruginosa and Achromobacter xylosoxidans showing 99.9%, 99.6%, 99%, 99.3%, 98.6% of Phenanthrene degradation (100mg/L) and 99%, 99.1%, 89.75%, 94.01%, 97.02% of Naphthalene degradation (100 mg/L), respectively.
2017-01-01
##plugins.themes.bootstrap3.article.details##
biosurfactant producing bacteria product characterization and
evaluation. Acta Biotech 11 (4): 315-24.
Ball DJ, Hamilton RS, Harrison RM. 1991. The influence of highway
pollutants on environmental quality in Highway pollution, Elsevier,
Amsterdam.
Bradford MM. 1976. A rapid and sensitive for the quantitation of
microgram quantitites of protein utilizing the principle of protein-dye
binding. Analyt Biochem 72: 248- 254.
Cooper D, Goldenberg B. 1987. Surface-active agents from 2 Bacillus
species. Appl Environ Microbiol 53 (2): 224-229.
Das P, Mukherjee S, Sen R. 2008a. Antimicrobial potential of a
lipopeptide biosurfactant derived from a marine Bacillus circulans. J
Appl Microbiol 104: 1675- 1684.
Das P, Mukherjee S, Sen R. 2009. Substrate dependent production of
extracellular biosurfactant by a marine bacterium. Bioresour Technol
100: 1015- 1019.
Desai JD, Banat IM. 1997. Microbial production of surfactants and their
commercial potential. Microbiol. Mol Biol Rev 61: 47-64.
Dhouha G, Lobna A, Ines M, Radhouan K, Imen A, Imen S, Sameh M,
Semia C. 2012. Investigation of Antimicrobial Activity and Statistical
Optimization of Bacillus subtilis SPB1 Biosurfactant Production in
Solid-State Fermentation. J Biomed Biotechnol, Article ID 373682,
DOI: 10.1155/2012/373682.
Dubois M, Gilles KA, Hamilton JK, Rebers PA, Smith F. 1956.
Colorimetric method for determination of sugars and related
substances. Analytical Chemistry 28: 350-356.
Edwards NT. 1983. Polycyclic aromatic hydrocarbons (PAH's) in the
terrestrial environment - a review. J Environ Qual 12: 427-441.
Eisler R. 1987. Polycyclic aromatic hydrocarbon hazards to fish, wildlife
and invertibrates: A synoptic review, U.S. Fish and Wildlife Services,
Biological Report 85 (1.11), Washington, DC.
Gautam KK, Tyagi VK. 2005. Microbial surfactants: A review. J Oleo Sci
55: 155-166.
Gentry TJ, Rensing C, Pepper IL. 2004. New approaches for
bioaugmentation as a remediation technology. Crit Rev Environ Sci
Technol 34: 447-494.
Guerra-Santos L, Kappeli O, Fiechter A. 1984. Pseudomonas aeruginosa
biosurfactant production in continuous culture with glucose as carbon
source. Appl Environ Microbiol 48: 301-305.
Karanth NGK, Deo PG, Veenanadig NK. 1999. Microbial production of
biosurfactants and their importance. Curr Sci 77 (1): 116-126.
Kumar M, Leona V, Materanoa ADS, Ilzinsa OA, Galindo-Castroa I,
Sergio L, Fuenmayora SL. 2006. Polycyclic Aromatic Hydrocarbon
Degradation by Biosurfactant-Producing Pseudomonas sp. IR1. 61c:
203-212; http://www.znaturforsch.com.
Lee SD,Grant L. (eds.). 1981. Health and ecological assessment of
polynuclear aromatic hydrocarbons. Pathotex Publ., Park Forest
South, Illinois.
Morikawa M, Hirata Y, Imanaka T. 2000. A study on the structurefunction relationship of lipopeptide biosurfactants. Biochim Biophys
Acta 1488 (3): 211-218.
Onwosi CO, Odibo FJC. 2012. Effects of carbon and nitrogen sources on
rhamnolipid biosurfactant production by Pseudomonas nitroreducens
isolated from soil. World J Microbiol Biotechnol 28: 937-942.
Rodrigues LR, Teixeira JA, Meib HC, Oliveira R 2006. Isolation and
partial characterization of a biosurfactant produced by Streptococcus
thermophilus A. Colloids and Surfaces B: Biointerfaces 53: 105-112.
Satpute SK, Bhawsar BD, Dhakephalkar PK, Chopade BA. 2008.
Assessment of different screening methods for selecting biosurfactant
producing marine bacteria. Indian Journal of marine sciences 37 (3):
243-250.
Scow KM, Hicks KA. 2005. Natural attenuation and enhanced
bioremediation of organic contaminants in groundwater. Curr Opin
Biotechnol 16: 246-253.
Singh Cameotra SC, Makkar RS. 2010. Biosurfactant-enhanced
bioremediation of hydrophobic pollutants. Pure Appl Chem 82 (1):97-
116.
Singh P, Cameotra SS. 2004. Enhancement of metal bioremediation by
use of microbial surfactants. Biochem. Biophy Res Commun 319:
291-297.
Singh S, Hyun KS, Mulchandani A, Chen W. 2008. Bioremediation:
environmental clean-up through pathway Engineering. Curr Opin
Biotechnol 19: 437-444.
Taguchi F, Ogawa Y, Takeuchi K, Suzuki T, Toyoda K, Shiraishi T,
Ichinose Y. 2006. A Homologue of the 3-Oxoacyl- (Acyl Carrier
Protein) Synthase III Gene Located in the Glycosylation Island of
Pseudomonas syringae pv. tabaci Regulates Virulence Factors via NAcyl Homoserine Lactone and Fatty Acid Synthesis. J Bacteriol 188
(24): 8376-8384.
Tao X, Lu G, Zhi Dang Z, Yang C, YiA X. 2007. phenanthrene-degrading
strain Sphingomonas sp. GY2B isolated from contaminated soils.
Proc Biochem 42: 401-408.
Valerio F, Bottino P, Ugolini D, Cimberle MR, Tozzi GA, Frigerio A.
1984. Chemical and photochemical degradation of polycyclic
aromatic hydrocarbons in the atmosphere. Sci Total Environ 40: 169-
188.
Yalcin E, Cavusoglu K. 2010. Structural analysis and antioxidant activity
of a biosurfactant obtained from Bacillus subtilis RW-I. Türk
Biyokimya Dergisi Turkish Journal of Biochemistry-Turk J Biochem
35 (3): 243-247.