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Sexual crossing of thermophilic fungus Myceliophthora heterothallica improved enzymatic degradation of sugar beet pulp

机译:嗜热性真菌Myceliophthora heterothallica的性交改善了甜菜果肉的酶促降解

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摘要

Background Enzymatic degradation of plant biomass requires a complex mixture of many different enzymes. Like most fungi, thermophilic Myceliophthora species therefore have a large set of enzymes targeting different linkages in plant polysaccharides. The majority of these enzymes have not been functionally characterized, and their role in plant biomass degradation is unknown. The biotechnological challenge is to select the right set of enzymes to efficiently degrade a particular biomass. This study describes a strategy using sexual crossing and screening with the thermophilic fungus Myceliophthora heterothallica to identify specific enzymes associated with improved sugar beet pulp saccharification. Results Two genetically diverse M. heterothallica strains CBS 203.75 and CBS 663.74 were used to generate progenies with improved growth on sugar beet pulp. One progeny, named SBP.F1.2.11, had a different genetic pattern from the parental strains and had improved saccharification activity after the growth on 3 % sugar beet pulp. The improved SBP saccharification was not explained by altered activities of the major (hemi-)cellulases. Exo-proteome analysis of progeny and parental strains after 7-day growth on sugar beet pulp showed that only 17 of the 133 secreted CAZy enzymes were more abundant in progeny SBP.F1.2.11. Particularly one enzyme belonging to the carbohydrate esterase family 5 (CE5) was more abundant in SBP.F1.2.11. This CE5-CBM1 enzyme, named as Axe1, was phylogenetically related to acetyl xylan esterases. Biochemical characterization of Axe1 confirmed de-acetylation activity with optimal activities at 75–85 °C and pH 5.5–6.0. Supplementing Axe1 to CBS 203.75 enzyme set improved release of xylose and glucose from sugar beet pulp. Conclusions This study identified beneficial enzymes for sugar beet pulp saccharification by selecting progeny with improved growth on this particular substrate. Saccharification of sugar beet pulp was improved by supplementing enzyme mixtures with a previously uncharacterized CE5-CBM1 acetyl xylan esterase. This shows that sexual crossing and selection of M. heterothallica are the successful strategy to improve the composition of enzyme mixtures for efficient plant biomass degradation.
机译:背景技术植物生物质的酶促降解需要许多不同酶的复杂混合物。像大多数真菌一样,嗜热毁丝霉菌物种因此具有大量针对植物多糖中不同键的酶。这些酶的大多数尚未进行功能鉴定,其在植物生物量降解中的作用尚不清楚。生物技术挑战是选择正确的酶组以有效降解特定的生物质。这项研究描述了一种策略,该策略使用嗜热性真菌Myceliophthora heterothallica进行有性杂交和筛选,以鉴定与改良的甜菜浆糖化相关的特定酶。结果使用两个遗传上不同的异种分枝杆菌菌株CBS 203.75和CBS 663.74来产生后代,其后代在甜菜果肉上的生长得以改善。一个子代名为SBP.F1.2.11,其遗传模式与亲本菌株不同,并且在3%甜菜果肉上生长后具有改善的糖化活性。改善的SBP糖化不能通过主要(半纤维素)纤维素酶活性的改变来解释。在甜菜果肉上生长7天后,对后代和亲本菌株的外蛋白质组分析表明,在133个分泌的CAZy酶中,只有17个在后代SBP.F1.2.11中含量更高。特别地,属于碳水化合物酯酶家族5(CE5)的一种酶在SBP.F1.2.11中更为丰富。此CE5-CBM1酶称为Axe1,与乙酰木聚糖酯酶在系统发育上相关。 Axe1的生化特性证实了脱乙酰作用,在75–85°C和pH 5.5–6.0下具有最佳活性。向CBS 203.75酶补充Axe1可以改善甜菜果肉中木糖和葡萄糖的释放。结论本研究通过选择在该特定底物上具有改善的生长的后代,鉴定了用于甜菜果肉糖化的有益酶。通过向酶混合物中添加以前未表征的CE5-CBM1乙酰木聚糖酯酶,可以改善甜菜果肉的糖化程度。这表明异交沙门氏菌的有性杂交和选择是改善酶混合物组成以有效植物生物质降解的成功策略。

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