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The influence of process parameters in production of lipopeptide iturin A using aerated packed bed bioreactors in solid-state fermentation
Authors:C A Piedrahíta-Aguirre  R G Bastos  A L Carvalho  R Monte Alegre
Institution:1. Department of Food Engineering, College of Food Engineering, State University of Campinas, P.O. Box 6121, Campinas, SP, 13083-862, Brazil
2. Center of Agricultural Sciences, CCA, Federal University of S?o Carlos, UFSCar, P.O. Box 153, Araras, SP, 13600-970, Brazil
3. Unit Operation Laboratory, Technology Department, State University of Feira de Santana, Feira de Santana, BA, 44036-900, Brazil
Abstract:The strain Bacillus iso 1 co-produces the lipopeptide iturin A and biopolymer poly-γ-glutamic acid (γ-PGA) in solid-state fermentation of substrate consisting of soybean meal, wheat bran with rice husks as an inert support. The effects of pressure drop, oxygen consumption, medium permeability and temperature profile were studied in an aerated packed bed bioreactor to produce iturin A, diameter of which was 50 mm and bed height 300 mm. The highest concentrations of iturin A and γ-PGA were 5.58 and 3.58 g/kg-dry substrate, respectively, at 0.4 L/min after 96 h of fermentation. The low oxygen uptake rates, being 23.34 and 22.56 mg O2/kg-dry solid substrate for each air flow rate tested generated 5.75 W/kg-dry substrate that increased the fermentation temperature at 3.7 °C. The highest pressure drop was 561 Pa/m at 0.8 L/min in 24 h. This is the highest concentration of iturin A produced to date in an aerated packed bed bioreactor in solid-state fermentation. The results can be useful to design strategies to scale-up process of iturin A in aerated packed bed bioreactors. Low concentration of γ-PGA affected seriously pressure drop, decreasing the viability of the process due to generation of huge pressure gradients with volumetric air flow rates. Also, the low oxygenation favored the iturin A production due to the reduction of free void by γ-PGA production, and finally, the low oxygen consumption generated low metabolic heat. The results show that it must control the pressure gradients to scale-up the process of iturin A production.
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