Literature DB >> 26941214

Bioprocessing of wheat bran for the production of lignocellulolytic enzyme cocktail by Cotylidia pannosa under submerged conditions.

Deepika Sharma1, Vijay Kumar Garlapat1, Gunjan Goel1.   

Abstract

Characterization and production of efficient lignocellulytic enzyme cocktails for biomass conversion is the need for biofuel industry. The present investigation reports the modeling and optimization studies of lignocellulolytic enzyme cocktail production by Cotylidia pannosa under submerged conditions. The predominant enzyme activities of cellulase, xylanase and laccase were produced in the cocktail through submerged conditions using wheat bran as a substrate. A central composite design approach was utilized to model the production process using temperature, pH, incubation time and agitation as input variables with the goal of optimizing the output variables namely cellulase, xylanase and laccase activities. The effect of individual, square and interaction terms on cellulase, xylanase and laccase activities were depicted through the non-linear regression equations with significant R(2) and P-values. An optimized value of 20 U/ml, 17 U/ml and 13 U/ml of cellulase, xylanase and laccase activities, respectively, were obtained with a media pH of 5.0 in 77 h at 31C, 140 rpm using wheatbran as a substrate. Overall, the present study introduces a fungal strain, capable of producing lignocellulolytic enzyme cocktail for subsequent applications in biofuel industry.

Entities:  

Keywords:  Cotylidia pannosa; lignocellulolytic cocktail; response surface methodology; submerged fermentation; wheat bran

Mesh:

Substances:

Year:  2016        PMID: 26941214      PMCID: PMC4879985          DOI: 10.1080/21655979.2016.1160190

Source DB:  PubMed          Journal:  Bioengineered        ISSN: 2165-5979            Impact factor:   3.269


  23 in total

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9.  Xylanase production with xylan rich lignocellulosic wastes by a local soil isolate of Trichoderma viride.

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  3 in total

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Review 2.  Fungal Laccase Production from Lignocellulosic Agricultural Wastes by Solid-State Fermentation: A Review.

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3.  Impact of process parameters and plant polysaccharide hydrolysates in cellulase production by Trichoderma reesei and Neurospora crassa under wheat bran based solid state fermentation.

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