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Substrate specificity and regioselectivity of fungal AA9 lytic polysaccharide monooxygenases secreted by Podospora anserina

机译:鹅掌假单胞菌分泌的真菌AA9裂解多糖单加氧酶的底物特异性和区域选择性

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Background The understanding of enzymatic polysaccharide degradation has progressed intensely in the past few years with the identification of a new class of fungal-secreted enzymes, the lytic polysaccharide monooxygenases (LPMOs) that enhance cellulose conversion. In the fungal kingdom, saprotrophic fungi display a high number of genes encoding LPMOs from family AA9 but the functional relevance of this redundancy is not fully understood. Results In this study, we investigated a set of AA9 LPMOs identified in the secretomes of the coprophilous ascomycete Podospora anserina, a biomass degrader of recalcitrant substrates. Their activity was assayed on cellulose in synergy with the cellobiose dehydrogenase from the same organism. We showed that the total release of oxidized oligosaccharides from cellulose was higher for PaLPMO9A, PaLPMO9E, and PaLPMO9H that harbored a carbohydrate-binding module from the family CBM1. Investigation of their regioselective mode of action revealed that PaLPMO9A and PaLPMO9H oxidatively cleaved at both C1 and C4 positions while PaLPMO9E released only C1-oxidized products. Rapid cleavage of cellulose was observed using PaLPMO9H that was the most versatile in terms of substrate specificity as it also displayed activity on cello-oligosaccharides and β-(1,4)-linked hemicellulose polysaccharides (e.g., xyloglucan, glucomannan). Conclusions This study provides insights into the mode of cleavage and substrate specificities of fungal AA9 LPMOs that will facilitate their application for the development of future biorefineries.
机译:背景技术在过去的几年中,通过鉴定一类新型的真菌分泌酶-可增强纤维素转化的裂解多糖单加氧酶(LPMO),人们对酶促多糖降解的认识得到了极大的发展。在真菌界,腐养真菌显示出大量编码来自AA9家族的LPMO的基因,但这种冗余的功能相关性尚未得到充分了解。结果在这项研究中,我们调查了一组在共食性子囊菌Podospora anserina的分泌液中鉴定出的AA9 LPMO,后者是顽固底物的生物质降解物。与来自同一生物的纤维二糖脱氢酶协同作用,在纤维素上测定了它们的活性。我们表明,从纤维素中氧化的寡糖的总释放量较高,对于PaLPMO9A,PaLPMO9E和PaLPMO9H,它们包含来自CBM1家族的碳水化合物结合模块。对它们的区域选择性作用方式的研究表明,PaLPMO9A和PaLPMO9H在C1和C4位置均被氧化裂解,而PaLPMO9E仅释放C1氧化的产物。使用PaLPMO9H观察到了纤维素的快速裂解,PaLPMO9H在底物特异性方面是最通用的,因为它还对纤维寡糖和β-(1,4)连接的半纤维素多糖(如木葡聚糖,葡甘露聚糖)表现出活性。结论本研究为真菌AA9 LPMOs的裂解模式和底物特异性提供了见识,这将有助于其在未来生物精炼厂的开发中的应用。

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