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Production of a recombinant swollenin from Trichoderma harzianum in Escherichia coli and its potential synergistic role in biomass degradation

机译:在大肠杆菌中从哈茨木霉中产生重组膨胀素及其在生物质降解中的潜在协同作用

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Background Fungal swollenins (SWOs) constitute a class of accessory proteins that are homologous to canonical plant expansins. Expansins and expansin-related proteins are well known for acting in the deagglomeration of cellulose structure by loosening macrofibrils. Consequently, SWOs can increase the accessibility and efficiency of the other enzymes involved in the saccharification of cellulosic substrates. Thus, SWOs are promising targets for improving the hydrolysis of plant biomass and for use as an additive to enhance the efficiency of an enzyme cocktail designed for the production of biofuels. Results Here, we report the initial characterization of an SWO from Trichoderma harzianum (ThSwo) that was successfully produced using Escherichia coli as a host. Initially, transcriptome and secretome data were used to compare swo gene expression and the amount of secreted ThSwo. The results from structural modeling and phylogenetic analysis of the ThSwo protein showed that ThSwo does preserve some structural features of the plant expansins and family-45 glycosyl hydrolase enzymes, but it evolutionarily diverges from both of these protein classes. Recombinant ThSwo was purified at a high yield and with high purity and showed secondary folding similar to that of a native fungal SWO. Bioactivity assays revealed that the purified recombinant ThSwo created a rough and amorphous surface on Avicel and displayed a high synergistic effect with a commercial xylanase from T. viride , enhancing its hydrolytic performance up to 147?±?7%. Conclusions Many aspects of the structure and mechanism of action of fungal SWOs remain unknown. In the present study, we produced a recombinant, active SWO from T. harzianum using a prokaryotic host and confirmed its potential synergistic role in biomass degradation. Our work paves the way for further studies evaluating the structure and function of this protein, especially regarding its use in biotechnology.
机译:背景真菌溶胀素(SWO)构成了一类与规范植物扩展蛋白同源的辅助蛋白。众所周知,扩张蛋白和与扩张蛋白有关的蛋白通过使大纤维松弛而在纤维素结构的解聚中起作用。因此,SWO可以增加参与纤维素底物糖化的其他酶的可及性和效率。因此,SWO是有望改善植物生物质水解并用作添加剂的添加剂,以增强设计用于生产生物燃料的酶混合物的效率。结果在这里,我们报告了来自哈茨木霉(ThSwo)的SWO的初步表征,该菌株已使用大肠杆菌作为宿主成功生产。最初,转录组和分泌组数据用于比较swo基因表达和分泌的ThSwo量。 ThSwo蛋白的结构建模和系统发育分析结果表明,ThSwo确实保留了植物扩展蛋白和45族糖基水解酶的某些结构特征,但在进化上却与这两种蛋白有所不同。重组ThSwo以高收率和高纯度纯化,并显示出与天然真菌SWO相似的二次折叠。生物活性测定表明,纯化的重组ThSwo在Avicel上产生了粗糙且无定形的表面,并与来自T. viride的商业木聚糖酶表现出高协同作用,将其水解性能提高到147?±7%。结论真菌SWO的结构和作用机理的许多方面仍然未知。在本研究中,我们使用原核宿主从哈茨木霉中产生了一种重组的活性SWO,并证实了其在生物质降解中的潜在协同作用。我们的工作为进一步评估这种蛋白质的结构和功能铺平了道路,尤其是在生物技术中。

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