Expression of an endoglucanase–cellobiohydrolase fusion protein in Saccharomyces cerevisiae, Yarrowia lipolytica, and Lipomyces starkeyi

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作者
Qi Xu
Markus Alahuhta
Hui Wei
Eric P. Knoshaug
Wei Wang
John O. Baker
Todd Vander Wall
Michael E. Himmel
Min Zhang
机构
[1] National Renewable Energy Laboratory,Biosciences Center
来源
Biotechnology for Biofuels | / 11卷
关键词
Fusion protein; Oleaginous yeast; CBHI; Consolidated bioprocessing; Cellulase; Cellobiohydrolase;
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摘要
The low secretion levels of cellobiohydrolase I (CBHI) in yeasts are one of the key barriers preventing yeast from directly degrading and utilizing lignocellulose. To overcome this obstacle, we have explored the approach of genetically linking an easily secreted protein to CBHI, with CBHI being the last to be folded. The Trichoderma reesei eg2 (TrEGII) gene was selected as the leading gene due to its previously demonstrated outstanding secretion in yeast. To comprehensively characterize the effects of this fusion protein, we tested this hypothesis in three industrially relevant yeasts: Saccharomyces cerevisiae, Yarrowia lipolytica, and Lipomyces starkeyi. Our initial assays with the L. starkeyi secretome expressing differing TrEGII domains fused to a chimeric Talaromyces emersonii–T. reesei CBHI (TeTrCBHI) showed that the complete TrEGII enzyme, including the glycoside hydrolase (GH) 5 domain is required for increased expression level of the fusion protein when linked to CBHI. We found that this new construct (TrEGII–TeTrCBHI, Fusion 3) had an increased secretion level of at least threefold in L. starkeyi compared to the expression level of the chimeric TeTrCBHI. However, the same improvements were not observed when Fusion 3 construct was expressed in S. cerevisiae and Y. lipolytica. Digestion of pretreated corn stover with the secretomes of Y. lipolytica and L. starkeyi showed that conversion was much better using Y. lipolytica secretomes (50% versus 29%, respectively). In Y. lipolytica, TeTrCBHI performed better than the fusion construct. Furthermore, S. cerevisiae expression of Fusion 3 construct was poor and only minimal activity was observed when acting on the substrate, pNP-cellobiose. No activity was observed for the pNP-lactose substrate. Clearly, this approach is not universally applicable to all yeasts, but works in specific cases. With purified protein and soluble substrates, the exoglucanase activity of the GH7 domain embedded in the Fusion 3 construct in L. starkeyi was significantly higher than that of the GH7 domain in TeTrCBHI expressed alone. It is probable that a higher fraction of fusion construct CBHI is in an active form in Fusion 3 compared to just TeTrCBHI. We conclude that the strategy of leading TeTrCBHI expression with a linked TrEGII module significantly improved the expression of active CBHI in L. starkeyi.
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  • [11] Nicaud JM(2012)Microbial cellulose utilization: fundamentals and biotechnology Biotechnol Adv 30 1207-1454
  • [12] Tsigie YA(2017)Fungal cellulases Bioresour Technol 245 1447-494
  • [13] Wang CY(2017)Development of yeast cell factories for consolidated bioprocessing of lignocellulose to bioethanol through cell surface engineering Biotechnol Biofuels 10 132-583
  • [14] Kasim NS(2017)Improved ethanol production at high temperature by consolidated bioprocessing using Biotechnol Biofuels 10 298-D495
  • [15] Diem QD(2014) strain engineered with artificial zinc finger protein Biotechnol Biofuels 7 148-299
  • [16] Huynh LH(2017)Conferring cellulose-degrading ability to Microb Cell Fact 16 126-4300
  • [17] Ho QP(2000) to facilitate a consolidated bioprocessing approach Biotechnol Bioeng 69 486-643
  • [18] Truong CT(2005)Expressing accessory proteins in cellulolytic Curr Opin Biotechnol 16 577-611
  • [19] Ju YH(2014) to improve the conversion yield of recalcitrant cellulose Nucleic Acids Res 42 D490-4054
  • [20] Lin J(2012)Engineering towards a complete heterologous cellulase secretome in Acta Crystallogr D Biol Crystallogr 68 292-1516