探索亚鲁贝斯青霉糖苷水解酶家族 12 的结构、生物化学和功能多样性

Peicheng Sun*, Mao Peng, Sumitha K. Reddy, Laurine Seelt, Ritesh Mewalal, Ian Blaby, Igor V. Grigoriev and Ronald P. de Vries*, 
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引用次数: 0

摘要

糖苷水解酶(GHs)在植物生物质降解和生物化学品可持续生产的改良过程中发挥着重要作用。与相关物种相比,丝状子囊真菌亚鲁贝斯青霉(Penicillium subrubescens)含有更多候选 GH12。因此,我们旨在比较亚鲁贝斯青霉 GH12s 降解植物细胞壁多糖的能力和底物特异性,以及该物种作为植物生物质增值新型酶源的潜力。我们对真菌 GH12 成员重新进行的系统进化分析表明,P. subrubescens GH12s 位于不同的(新)支系中。生化鉴定结果表明,PsEglA 是一种内切葡聚糖酶,而其他四种亚鲁贝森真菌 GH12(即 PsXegA-D)则是木聚糖酶。有趣的是,PsXegD 和 PsXegE 的结构特征与基枝菌 GH12 木聚糖酶的结构特征更为相似,具有独特的开放式底物结合裂隙。PsUegA 具有木糖酶和内切葡聚糖酶的双重活性,并显示出独特的结构特征。转录组比较分析证实了亚灌木盾叶藻 GH12s 在植物生物质降解过程中的功能多样性。编码 PsUegA 的基因在不同条件下均有表达,这表明该酶具有侦察作用。亚鲁贝斯青霉 GH12 酶具有新颖多样的结构特征、产物特征和功能,这支持了该物种作为植物生物质增值新型酶源的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring the Structural, Biochemical, and Functional Diversity of Glycoside Hydrolase Family 12 from Penicillium subrubescens

Glycoside hydrolases (GHs) play an essential role in plant biomass degradation and modification for the sustainable production of biochemicals. The filamentous Ascomycete fungus Penicillium subrubescens contains a higher number of GH12 candidates compared to related species. Therefore, we aimed to compare P. subrubescens GH12s for their ability and substrate specificity for plant cell wall polysaccharide degradation and species’ potential as a source of novel enzymes for plant biomass valorization. Our re-evaluated phylogenetic analysis of fungal GH12 members showed that the P. subrubescens GH12s were located in different (new) clades. Biochemical characterization marked PsEglA as an endoglucanase and four other P. subrubescens GH12s (i.e., PsXegA–D) as xyloglucanases. Interestingly, structural features of PsXegD and PsXegE were more comparable to those of Basidiomycete GH12 xyloglucanases with a unique open substrate-binding cleft. PsUegA displayed dual xyloglucanase and endoglucanase activity and also showed distinct structural features. Comparative transcriptome analysis supported the functional diversity of P. subrubescens GH12s in plant biomass degradation. The gene encoding PsUegA was expressed under diverse conditions, suggesting a scouting role for this enzyme.

Penicillium subrubescens GH12 enzymes obtain new and diverse structural features, product profiles, and functions, which supports the species’ potential as a source of novel enzymes for plant biomass valorization.

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