African Journal of
Microbiology Research

  • Abbreviation: Afr. J. Microbiol. Res.
  • Language: English
  • ISSN: 1996-0808
  • DOI: 10.5897/AJMR
  • Start Year: 2007
  • Published Articles: 5241

Full Length Research Paper

Promising biosurfactant produced by a new Candida tropicalis UCP 1613 strain using substrates from renewable-resources

Daylin Rubio-Ribeaux
  • Daylin Rubio-Ribeaux
  • Post-graduation Program in Biological Sciences, Federal University of Pernambuco, Brazil 50670-420, Recife, Pernambuco, Brazil.
  • Google Scholar
Rosileide Fontenele da Silva Andrade
  • Rosileide Fontenele da Silva Andrade
  • Nucleus of Research in Environmental Sciences and Biotechnology, Catholic University of Pernambuco, Brazil 50050-590, Recife, Pernambuco, Brazil.
  • Google Scholar
Goretti Sonia da Silva
  • Goretti Sonia da Silva
  • Nucleus of Research in Environmental Sciences and Biotechnology, Catholic University of Pernambuco, Brazil 50050-590, Recife, Pernambuco, Brazil.
  • Google Scholar
Rodrigo Assuncao de Holanda
  • Rodrigo Assuncao de Holanda
  • CEUMA University, São Luís, 65075120, Maranhão, Brazil.
  • Google Scholar
Milagre Americo Pele
  • Milagre Americo Pele
  • Post-graduation Program in Biological Sciences, Federal University of Pernambuco, Brazil 50670-420, Recife, Pernambuco, Brazil.
  • Google Scholar
Patricia Nunes
  • Patricia Nunes
  • Nucleus of Research in Environmental Sciences and Biotechnology, Catholic University of Pernambuco, Brazil 50050-590, Recife, Pernambuco, Brazil.
  • Google Scholar
Jose Carlos Vilar Junior
  • Jose Carlos Vilar Junior
  • Northeast Network for Biotechnology, Federal Rural University of Pernambuco, 52171-900 Recife, PE, Brazil.
  • Google Scholar
Maria Aparecida de Resende-Stoianoff
  • Maria Aparecida de Resende-Stoianoff
  • Institute for Biological Sciences, Federal University of Minas Gerais, 31270-010, Belo Horizonte, Minas Gerais, Brazil.
  • Google Scholar
G. M. Campos-Takaki
  • G. M. Campos-Takaki
  • Nucleus of Research in Environmental Sciences and Biotechnology, Catholic University of Pernambuco, Brazil 50050-590, Recife, Pernambuco, Brazil.
  • Google Scholar


  •  Received: 15 February 2017
  •  Accepted: 26 May 2017
  •  Published: 21 June 2017

References

Almeida DG, Silva RCFS, Brasileiro PPF, Luna JM and Sarubbo LA (2015). Utilização de planejamento experimenttal na produção de biossurfactante pela levedura Candida tropicalis a partir de resíduos industriais. Blucher Chem. Eng. Proceed. 1(2):2686-2693.
Crossref

 

Almeida DG, Silva RCFS, Luna JM, Rufino, RD, Santos VA, Sarubbo LA (2017). Response Surface Methodology for optimizing the production of biosurfactant by Candida tropicalis on industrial waste substrates. Front. Microbiol. 8:157.
Crossref

 
 

Alsohim AS, Taylor TB, Barrett GA, Gallie J, Zhang X, Altamirano‐Junqueira AE, Rainey PB, Jackson RW (2014). The biosurfactant viscosin produced by Pseudomonas fluorescens SBW25 aids spreading motility and plant growth promotion. Environ. Microbiol. 16(7):2267-2281.
Crossref

 
 

Andrade RF, Antunes AA, Lima RA, Araújo HW, Resende-Stoianoff MA, Franco LO, Campos-Takaki GM (2015). Enhanced production of an glycolipid biosurfactant produced by Candida glabrata UCP/WFCC1556 for application in dispersion and removal of petroderivatives. Int. J. Curr. Microbiol. Appl. Sci. 4(7):563-576, 2015.

 
 

Aparna A, Srinikethan G, Smitha H (2012). Production and characterization of biosurfactant produced by a novel Pseudomonas sp. 2B. Colloid Surface B. 95:23-29.
Crossref

 
 

Banat IM, Franzetti A, Gandolfi I, Bestetti G, Martinotti MG, Fracchia L, Smyth TJ, Marchant R (2010). Microbial biosurfactants production, applications and future potential. Appl. Microbiol. Biotechnol. 87(2):427-444.
Crossref

 
 

Banat IM, Satpute SK, Cameotra SS, Patil R, Nayanit NV (2014). Cost effective technologies and renewable substrates for biosurfactants production. Front. Microbiol. 5(697):1-18.

 
 

Batista RM., Rufino RD, Luna JM, Souza JEG, Sarubbo LA (2010). Effect of medium components on the production of a biosurfactant from Candida tropicalis applied to the removal of hydrophobic contaminants in soil. Water Environ. Res. 82(5):418-425.
Crossref

 
 

Bauer AW, Kirby WM, Sherris JC, Turck M (1996). Antibiotic susceptibility testing by standardized single disc method. Am. J. Clin. Pathol. 4:493-496.

 
 

Borsanyiova M, Patil A, Mukherji R, Prabhune A, Bopegamage S (2016). Biological activity of sophorolipids and their possible use as antiviral agents. Folia Microbiol. 61(1):85-89.
Crossref

 
 

Bradshaw LJ. Laboratory Microbiology. Fourth Edition (1992). USA. pp. 13-55.

 
 

Brasileiro P, Almeida D, Luna J, Rufino R, Santos V, Sarubbo L (2015). Optimization of the biosurfactant production from Candida guiliermondii using a central composite rotatable design. Chem. Eng. Trans. 43:1411-1416.

 
 

Calvo C, Manzanera M, Silva-Castro GA, González-López J (2009). Application of bioemulsifiers in soil oil bioremediation processes. Future Prospects. Sci. Total Environ. 407:3634-3640.
Crossref

 
 

Campos JM, Stamford TL, Sarubbo LA (2014). Production of a bioemulsifier with potential application in the food industry. Appl. Biochem. Biotechnol. 172(6):3234-3252.
Crossref

 
 

Carrillo C, Teruel JA, Aranda FJ, Ortiz A (2003). Molecular mechanism of membrane permeabilization by the peptide antibiotic surfactin. Biochim Biophys Acta 1611:91-97.
Crossref

 
 

Coimbra CD, Rufino RD, Luna JM, Sarubbo LA (2009). Studies of the cell surface properties of Candida species and relation to the production of biosurfactants for environmental applications. Curr. Microbiol. 58(3):245-251.
Crossref

 
 

Desai JD, Banat IM (1997). Microbial production of surfactants and their commercial potential. Microbiol Mol. Biol. Rev. 61:47-64.

 
 

Dubois M, Gilles KA, Hamilton JK, Rebers PAT, Smith F (1956). Colorimetric method for determination of sugars and related substances. Anal. Chem. 28(3):350-356.
Crossref

 
 

Elving GJ, Van Der Mei HC, Busscher HJ, Amerogen EC, Van Weissenbruch R, Albers FW (2000) Antimicrobial activity of synthetic salivary peptides against voice prosthetic microorganisms. Laryngoscope 110:321-324.
Crossref

 
 

Farré M, Barceló D (2003). Toxicity testing of wastewater and sewage sludge by biosensors, bioassays and chemical analysis. Trends Analyt. Chem. 22(5):299-310.
Crossref

 
 

Fletcher J (1991). A brief overview of plant toxicity testing. In: Goruch, J.W., Lower, W.R., Lewis, M.A., Wang, W. (Eds.), Plants for Toxicity Assessment. ASTM, Philadelphia. pp. 1-11.
Crossref

 
 

Gilanyi T, Stergiopoulos C, Wolfram E (1976). Equilibrium surface tension of aqueous surfactant solutions. Colloid Poly. Sci. 254:1018-1023.
Crossref

 
 

Gusmão CA, Rufino RD, Sarubbo LA (2010). Laboratory production and characterization of a new biosurfactant from Candida glabrata UCP1002 cultivated in vegetable fat waste applied to the removal of hydrophobic contaminant. World J. Microbiol. Biotechnol. 26(9):683-1692.
Crossref

 
 

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

 
 

Khopade A, Biao R, Liu X, Mahadik K, Zhang L, Kokare C (2012). Production and stability studies of the biosurfactant isolated from marine Nocardiopsis sp. B4. Desalination 3:198-204,
Crossref

 
 

Krawczyńska M, Kołwzan B, Rybak J, Gediga K, Shcheglova NS (2012). The influence of biopreparation on seed germination and growth. Pol. J. Environ. Stud. 21(6):175-180.

 
 

Luna J, Rufino R, Campos G, Sarubbo L (2012). Properties of the biosurfactant produced by Candida sphaerica cultivated in low-cost substrates. Chem. Eng. 27:67-72.

 
 

Luna JM, Rufino RD, Sarubbo L (2016). Biosurfactant from Candida sphaerica UCP0995 exhibiting heavy metal remediation properties. Process Saf. Environ. 102:558-566.
Crossref

 
 

Luna JM, Rufino RD, Sarubbo LA, Campos-Takaki, GM (2013). Characterisation, surface properties and biological activity of a biosurfactant produced from industrial waste by Candida sphaerica UCP0995 for application in the petroleum industry. Colloid. Surfaces B. 102:202-209.
Crossref

 
 

Luna JM, Rufino RD, Sarubbo LA, Rodrigues LR, Teixeira JA, Campos-Takaki GM (2011). Evaluation antimicrobial and antiadhesive properties of the biosurfactant lunasan produced by Candida sphaerica UCP 0995. Curr. Microbiol. 62(5):1527-1534.
Crossref

 
 

Luna JMD, Sarubbo L, Campos-Takaki GMD (2009). A new biosurfactant produced by Candida glabrata UCP 1002: characteristics of stability and application in oil recovery. Braz. Arch. Biol. Technol. 52(4):785-793.
Crossref

 
 

Makkar RS, Cameotra SS, Banat IM (2011). Advances in utilization of renewable substrates for biosurfactant production. AMB Express 1(5):1-19.
Crossref

 
 

Manocha MS, San-Blas G, Centeno S (1980). Lipid composition of Paracoccidioides brasiliensis: Possible correlation with virulence of different strains. Microbiol. 117:147-154.
Crossref

 
 

Marchant R, Banat IM (2012). Microbial biosurfactants: challenges and opportunities for future exploitation. Trends Biotechnol. 30(11):558-565.
Crossref

 
 

Meylheuc T, Van Oss CJ, Bellon-Fontaine M N (2001). Adsorption of biosurfactants on solid surface and consequences regarding the bioahesion of Listeria monocytogenes LO28. J. Appl. Microbiol. 91:822-832.
Crossref

 
 

Mohan SV, Butti SK, Amulya K, Dahiya S, Modestra JA (2016). Waste biorefinery: A new paradigm for a sustainable bioelectro economy. Trends Biotechnol. 34(11):852-855.
Crossref

 
 

Nitschke M, Costa SG (2007). Biosurfactants in food industry. Trends Food Sci. Technol. 18:252-259.
Crossref

 
 

Pornsunthorntawee O, Wongpanit P, Chavadej S, Abe M, Rujiravanit R (2008). Structural and physicochemical characterization of crude biosurfactant produced by Pseudomonas aeruginosa SP4 isolated from petroleum-contaminated soil. Bioresource Technol. 99(6):1589-1595.
Crossref

 
 

Rienzo MAD, Banat IM, Dolman B, Winterburn J, Martin PJ (2015). Sophorolipid biosurfactants: Possible uses as antibacterial and antibiofilm agent. New Biotechnol. 32(6):720-726.
Crossref

 
 

Rufino RD, Luna JM, Campos Takaki GM, Sarubbo LA (2014). Characterization and properties of the biosurfactant produced by Candida lipolytica UCP 0988. Electron. J. Biotechnol. 17 (1):34-38.
Crossref

 
 

Rufino RD, Luna JM, Sarubbo LA, Rodrigues LRM, Teixeira JAC, Campos-Takaki, GM (2011). Antimicrobial and anti-adhesive potential of a biosurfactant Rufisan produced by Candida lipolytica UCP 098. Colloid. Surfaces B. 84(1):1-5.
Crossref

 
 

Rufino RD, Sarubbo LA, Campos-Takaki GM (2007). Enhancement of stability of biosurfactant produced by Candida lipolytica using industrial residue as substrate. World J. Microbiol. Biotechnol. 23(5):729-734.
Crossref

 
 

Santos DK, Rufino RD, Luna JM, Santos VA, Salgueiro AA, Sarubbo LA (2013). Synthesis and evaluation of biosurfactant produced by Candida lipolytica using animal fat and corn steep liquor J. Petrol. Sci. Eng. 105:43-50.
Crossref

 
 

Sarubbo LA, Farias CBB, Campos-Takaki GM (2007). Co-utilization of canola oil and glucose on the production of a surfactant by Candida lipolytica. Curr. Microbiol. 54:68-73.
Crossref

 
 

Sarubbo LA, Luna JM, Campos-Takaki GM. (2006). Production and stability studies of the bioemulsifier obtained from a new strain of Candida glabrata UCP 1002. Electron. J. Biotechnol. 9(4):400-406.

 
 

Satpute SK, Banpurkar AG, Dhakephalkar PK, Banat IM, Chopade BA (2010). Methods for investigating biosurfactants and bioemulsifiers: A review. Crit. Rev. Biotechnol. 30:127–144.
Crossref

 
 

Sharma D, Saharan BS, Chauhan N, Bansal A, Procha S (2014). Production and structural characterization of Lactobacillus helveticus derived biosurfactant. Sci. World J. 2014:1-9.

 
 

Shavandi M, Mohebali G, Haddadib A, Shakaramia H, Nuhic A(2011). Emulsification potential of a newly isolated biosurfactant-producing bacterium Rhodococcus sp. strain TA6. Colloid. Surfaces B. 82:477-482.
Crossref

 
 

Silva NRA, Luna MA, Santiago AL., Franco LO, Silva GK, de Souza PM, Okada K, Albuquerque CDC, Alves CS, Campos-Takaki GM. (2014). Biosurfactant and bioemulsifier produced by a promising Cunninghamella echinulata isolated from Caatinga soil in the Northeast of Brazil. Int. J. Mol. Sci. 15(9):15377-15395.
Crossref

 
 

Silva VL, Lovaglio RB, Tozzi HH, Takaki M, Contiero J (2015). Rhamnolipids: A new application in seeds development. J. Med. Biol. Sci. Res. 1(8):100-106.

 
 

Smith, Brian C (1996). Fundamentals of Fourier transform infrared spectroscopy. 2nd Ed. CRC Press Taylor and Francis Group. 198 p.

 
 

Sobrinho HB, Rufino RD, Luna JM, Salgueiro AA, Campos-Takaki GM, Leite LF, Sarubbo LA (2008). Utilization of two agroindustrial by-products for the production of a surfactant by Candida sphaerica UCP0995. Proc. Biochem. 43(9):912-917.
Crossref

 
 

Sobrinho HBS, Luna JM, Rufino RD, Porto ALF, Sarubbo LA (2013). Application of biosurfactant from Candida sphaerica UCP 0995 in removal of petroleum derivative from soil and sea water. J. Life Sci. 7(6):559-569.

 
 

Tiquia S M, Tam NFY, Hodgkiss IJ (1996). Effects of composting on phytotoxicity of spent pig-manure sawdust litter. Environ. Pollut. 93(3):249-256.
Crossref

 
 

Velmurugan M, Baskaran A, Kumar SD, Sureka I, Raj EA, Emelda J, Sathiyamurthy K (2015). Screening, stability and antibacterial potential of rhamnolipids from Pseudomonas sp., isolated from hydrocarbon contaminated soil. J. Appl. Pharm. Sci. 5(8):26-33.
Crossref

 
 

Verma A, Gupta N, Verma SK, Das MD (2015). Multifactorial approach to biosurfactant production by adaptive strain Candida tropicalis MTCC 230 in the presence of hydrocarbons. J. Surfactants Deterg. 18(1):145-153.
Crossref

 
 

White TJ, Bruns TD, Lee SB (1990). Amplification and direct sequencing
Crossref

 
 

Yadav JS, Bezawada J, Yan S, Tyagi RD, Surampalli RY (2012). Candida krusei: Biotechnological potentials and concerns about its safety. Can. J. Microbiol. 58:937-952.
Crossref

 
 

Zheng C, Wang M, Wang Y, Huang Z (2012). Optimization of biosurfactant-mediated oil extraction from oil sludge. Bioresource Technol. 110:338-342.
Crossref