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. 2021 Jul;193(7):2182-2197.
doi: 10.1007/s12010-021-03544-6. Epub 2021 Mar 8.

Enhanced Tolerance of Spathaspora passalidarum to Sugarcane Bagasse Hydrolysate for Ethanol Production from Xylose

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Enhanced Tolerance of Spathaspora passalidarum to Sugarcane Bagasse Hydrolysate for Ethanol Production from Xylose

Thályta F Pacheco et al. Appl Biochem Biotechnol. 2021 Jul.

Abstract

During the pretreatment and hydrolysis of lignocellulosic biomass to obtain a hydrolysate rich in fermentable sugars, furaldehydes (furfural and hydroxymethylfurfural), phenolic compounds, and organic acids are formed and released. These compounds inhibit yeast metabolism, reducing fermentation yields and productivity. This study initially confirmed the ability of Spathaspora passalidarum to ferment xylose and demonstrated its sensibility to the inhibitors present in the hemicellulosic sugarcane bagasse hydrolysate. Then, an adaptive laboratory evolution, with progressive increments of hydrolysate concentration, was employed to select a strain more resistant to hydrolysate inhibitors. Afterward, a central composite design was performed to maximize ethanol production using hydrolysate as substrate. At optimized conditions (initial cell concentration of 30 g/L), S. passalidarum was able to produce 19.4 g/L of ethanol with productivity, yield, and xylose consumption rate of 0.8 g/L.h and 0.4 g/g, respectively, in a sugarcane bagasse hemicellulosic hydrolysate. A kinetic model was developed to describe the inhibition of fermentation by substrate and product. The values obtained for substrate saturation and inhibition constant were Ks = 120.4 g/L and Ki = 1293.4 g/L. Ethanol concentration that stops cell growth was 30.1 g/L. There was an agreement between simulated and experimental results, with a residual standard deviation lower than 6%.

Keywords: Adaptive evolution; Lignocellulosic hydrolysate; Spathaspora passalidarum; Sugarcane biomass; Xylose.

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References

    1. Mata, T. M., Tavares, T. F., Meireles, S., & Caetano, N. S. (2015). Bioethanol from brewers’ spent grain: pentose fermentation. Chemical Engineering Transactions, 43, 241–246
    1. Oliva, J. M., Negro, M. J., Manzanares, P., Ballesteros, I., Chamorro, M. A., Sáez, F., Ballesteros, M., & Moreno, A. D. (2017). A sequential steam explosion and reactive extrusion pretreatment for lignocellulosic conversion within a fermentation-based biorefinery perspective. Fermentation, 3(2), 15. https://doi.org/10.3390/fermentation3020015 . - DOI
    1. Caetano, N. S., Moura, R. F., Meireles, S., Mendes, A. M., & Mata, T. M. (2013). Bioethanol from brewer’s spent grains: acid pretreatment optimization. Chemical Engineering Transactions, 35, 1021–1026
    1. Bergmann, J. C., Trichez, D., Morais Junior, W. G., Ramos, T. G. S., Pacheco, T. F., Carneiro, C. V., Hororato, V. M., Serra, L. A., & Almeida, J. R. M. (2019). Biotechnological application of non-conventional yeasts for xylose valorization. In A. Sibirny (Ed.), Non-conventional yeasts: from basic research to application. Cham: Springer
    1. Rodrussamee, N., Sattayawat, P., & Yamada, M. (2018). Highly efficient conversion of xylose to ethanol without glucose repression by newly isolated thermotolerant Spathaspora passalidarum CMUWF1-2. BMC Microbiology, 18(1), 73. - DOI

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