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1.
Electron. j. biotechnol ; 38: 40-48, Mar. 2019. tab, graf, ilus
Artigo em Inglês | LILACS | ID: biblio-1051342

RESUMO

BACKGROUND: The use of agro-industrial wastes to produce high value-added biomolecules such as biosurfactants is a promising approach for lowering the total costs of production. This study aimed to produce biosurfactants using Rhizopus arrhizus UCP 1607, with crude glycerol (CG) and corn steep liquor (CSL) as substrates. In addition, the biomolecule was characterized, and its efficiency in removing petroderivatives from marine soil was investigated. RESULTS: A 22 factorial design was applied, and the best condition for producing the biosurfactant was determined in assay 4 (3% CG and 5% CSL). The biosurfactant reduced the surface tension of water from 72 to 28.8 mN/m and produced a yield of 1.74 g/L. The preliminary biochemical characterization showed that the biosurfactant consisted of proteins (38.0%), carbohydrates (35.4%), and lipids (5.5%). The compounds presented an anionic character, nontoxicity, and great stability for all conditions tested. The biomolecule displayed great ability in dispersing hydrophobic substrates in water, thereby resulting in 53.4 cm2 ODA. The best efficiency of the biosurfactant in removing the pollutant diesel oil from marine soil was 79.4%. CONCLUSIONS: This study demonstrated the ability of R. arrhizus UCP1607 to produce a low-cost biosurfactant characterized as a glycoprotein and its potential use in the bioremediation of the hydrophobic diesel oil pollutant in marine soil


Assuntos
Rhizopus/metabolismo , Tensoativos/metabolismo , Gasolina , Solo , Tensoativos/toxicidade , Tensão Superficial , Biodegradação Ambiental , Ambiente Marinho , Zea mays , Agroindústria , Interações Hidrofóbicas e Hidrofílicas , Glicerol , Resíduos Industriais , Micelas , Mucorales/metabolismo
2.
Int J Mol Sci ; 17(10)2016 Sep 23.
Artigo em Inglês | MEDLINE | ID: mdl-27669227

RESUMO

Almost all oleaginous microorganisms are available for biodiesel production, and for the mechanism of oil accumulation, which is what makes a microbial approach economically competitive. This study investigated the potential that the yeast Candida lipolytica UCP0988, in an anamorphous state, has to produce simultaneously a bioemulsifier and to accumulate lipids using inexpensive and alternative substrates. Cultivation was carried out using waste soybean oil and corn steep liquor in accordance with 2² experimental designs with 1% inoculums (107 cells/mL). The bioemulsifier was produced in the cell-free metabolic liquid in the late exponential phase (96 h), at Assay 4 (corn steep liquor 5% and waste soybean oil 8%), with 6.704 UEA, IE24 of 96.66%, and showed an anionic profile. The emulsion formed consisted of compact small and stable droplets (size 0.2-5 µm), stable at all temperatures, at pH 2 and 4, and 2% salinity, and showed an ability to remove 93.74% of diesel oil from sand. The displacement oil (ODA) showed 45.34 cm² of dispersion (central point of the factorial design). The biomass obtained from Assay 4 was able to accumulate lipids of 0.425 g/g biomass (corresponding to 42.5%), which consisted of Palmitic acid (28.4%), Stearic acid (7.7%), Oleic acid (42.8%), Linoleic acid (19.0%), and γ-Linolenic acid (2.1%). The results showed the ability of C. lipopytica to produce both bioemulsifier and biodiesel using the metabolic conversion of waste soybean oil and corn steep liquor, which are economic renewable sources.


Assuntos
Biocombustíveis , Candida/metabolismo , Emulsificantes/metabolismo , Óleos Voláteis/metabolismo , Óleo de Soja/metabolismo , Biomassa , Candida/crescimento & desenvolvimento , Concentração de Íons de Hidrogênio , Resíduos Industriais , Óleos Voláteis/química , Ácido Oleico/metabolismo , Ácido Palmítico/metabolismo , Óleo de Soja/química , Ácidos Esteáricos/metabolismo , Especificidade por Substrato , Temperatura , Zea mays/química , Zea mays/metabolismo
3.
Int J Mol Sci ; 15(9): 15377-95, 2014 Sep 01.
Artigo em Inglês | MEDLINE | ID: mdl-25257520

RESUMO

A Mucoralean fungus was isolated from Caatinga soil of Pernambuco, Northeast of Brazil, and was identified as Cunninghamella echinulata by morphological, physiological, and biochemical tests. This strain was evaluated for biosurfactant/bioemulsifier production using soybean oil waste (SOW) and corn steep liquor (CSL) as substrates, added to basic saline solution, by measuring surface tension and emulsifier index and activity. The best results showed the surface water tension was reduced from 72 to 36 mN/m, and an emulsification index (E24) of 80% was obtained using engine oil and burnt engine oil, respectively. A new molecule of biosurfactant showed an anionic charge and a polymeric chemical composition consisting of lipids (40.0% w/w), carbohydrates (35.2% w/w) and protein (20.3% w/w). In addition, the biosurfactant solution (1%) demonstrated its ability for an oil displacement area (ODA) of 37.36 cm², which is quite similar to that for Triton X-100 (38.46 cm²). The stability of the reduction in the surface water tension as well as of the emulsifier index proved to be stable over a wide range of temperatures, in pH, and in salt concentration (4%-6% w/v). The biosurfactant showed an ability to reduce and increase the viscosity of hydrophobic substrates and their molecules, suggesting that it is a suitable candidate for mediated enhanced oil recovery. At the same time, these studies indicate that renewable, relatively inexpensive and easily available resources can be used for important biotechnological processes.


Assuntos
Cunninghamella/química , Emulsificantes/isolamento & purificação , Tensoativos/isolamento & purificação , Biodegradação Ambiental , Brasil , Carboidratos/análise , Carbono/metabolismo , Cunninghamella/crescimento & desenvolvimento , Cunninghamella/isolamento & purificação , Cunninghamella/metabolismo , Estabilidade de Medicamentos , Emulsificantes/química , Óleos Combustíveis , Proteínas Fúngicas/análise , Concentração de Íons de Hidrogênio , Interações Hidrofóbicas e Hidrofílicas , Resíduos Industriais , Lipídeos/análise , Micelas , Nitrogênio/metabolismo , Salinidade , Microbiologia do Solo , Glycine max , Tensão Superficial/efeitos dos fármacos , Tensoativos/química , Temperatura , Viscosidade , Água , Zea mays
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