Contribution of proteases and cellulases produced by solid-state fermentation to the improvement of corn ethanol production

被引:0
作者
Anaïs Guillaume
Aurore Thorigné
Yoann Carré
Joëlle Vinh
Loïc Levavasseur
机构
[1] Ets J. Soufflet,Centre de Recherche et Innovation Soufflet
[2] Quai Sarrail,undefined
[3] PSL University,undefined
[4] ESPCI Paris (SMBP CNRS USR 3149),undefined
来源
Bioresources and Bioprocessing | / 6卷
关键词
Solid-state fermentation; Enzymes; Protease; Cellulases; Bioethanol; Corn; Purification; Characterization;
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摘要
By cultivating a strain of Aspergillus tubingensis on agro-industrial by-products using solid-state fermentation technology, a biocatalyst containing more than 130 different enzymes was obtained. The enzymatic complex was composed mainly of hydrolases, among which a protease, an aspergillopepsin, accounted for more than half of the total proteins. Cell-wall-degrading enzymes such as pectinases, cellulases and hemicellulases were also highly represented. Adding the biocatalyst to corn mash at 1 kg/T corn allowed to significantly improve ethanol production performances. The final ethanol concentration was increased by 6.8% and the kinetics was accelerated by 14 h. The aim of this study was to identify the enzymes implicated in the effect on corn ethanol production. By fractionating the biocatalyst, the particular effect of the major enzymes was investigated. Experiments revealed that, together, the protease and two cellulolytic enzymes (an endoglucanase and a β-glucosidase) were responsible for 80% of the overall effect of the biocatalyst. Nevertheless, the crude extract of the biocatalyst showed greater impact than the combination of up to seven purified enzymes, demonstrating the complementary enzymatic complex obtained by solid-state fermentation. This technology could, therefore, be a relevant natural alternative to the use of GMO-derived enzymes in the ethanol industry.[graphic not available: see fulltext]
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