首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Discovery of LPMO activity on hemicelluloses shows the importance of oxidative processes in plant cell wall degradation
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Discovery of LPMO activity on hemicelluloses shows the importance of oxidative processes in plant cell wall degradation

机译:LPMO对半纤维素活性的发现表明氧化过程在植物细胞壁降解中的重要性

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摘要

The recently discovered lytic polysaccharide monooxygenases (LPMOs) are known to carry out oxidative cleavage of glycoside bonds in chitin and cellulose, thus boosting the activity of well-known hydrolytic depolymerizing enzymes. Because biomass-degrading microorganisms tend to produce a plethora of LPMOs, and considering the complexity and copolymeric nature of the plant cell wall, it has been speculated that some LPMOs may act on other substrates, in particular the hemicelluloses that tether to cellulose microfibrils. We demonstrate that an LPMO from Neurospora crassa, NcLPMO9C, indeed degrades various hemicelluloses, in particular xyloglucan. This activity was discovered using a glycan microarray-based screening method for detection of substrate specificities of carbohydrate-active enzymes, and further explored using defined oligomeric hemicelluloses, isolated polymeric hemicelluloses and cell walls. Products generated by NcLPMO9C were analyzed using high performance anion exchange chromatography and multidimensional mass spectrometry. We show that NcLPMO9C generates oxidized products from a variety of substrates and that its product profile differs from those of hydrolytic enzymes acting on the same substrates. The enzyme particularly acts on the glucose backbone of xyloglucan, accepting various substitutions (xylose, galactose) in almost all positions. Because the attachment of xyloglucan to cellulose hampers depolymerization of the latter, it is possible that the beneficial effect of the LPMOs that are present in current commercial cellulase mixtures in part is due to hitherto undetected LPMO activities on recalcitrant hemicellulose structures.
机译:已知最近发现的裂解多糖单加氧酶(LPMO)可以进行几丁质和纤维素中糖苷键的氧化裂解,从而增强了众所周知的水解解聚酶的活性。因为降解生物质的微生物倾向于产生大量的LPMO,并且考虑到植物细胞壁的复杂性和共聚性质,所以已经推测某些LPMO可能作用于其他底物,特别是与纤维素微纤维束缚的半纤维素。我们证明从神经孢霉,NcLPMO9C,LPMO确实降解各种半纤维素,特别是木葡聚糖。使用基于聚糖微阵列的筛选方法检测碳水化合物活性酶的底物特异性发现了这种活性,并使用定义的寡聚半纤维素,分离的聚合半纤维素和细胞壁进一步进行了探索。使用高效阴离子交换色谱和多维质谱分析了由NcLPMO9C生成的产物。我们显示NcLPMO9C从多种底物产生氧化产物,并且其产物谱不同于作用在相同底物上的水解酶。该酶特别作用于木葡聚糖的葡萄糖主链,几乎在所有位置均接受各种取代(木糖,半乳糖)。由于木葡聚糖与纤维素的结合阻碍了后者的解聚,因此存在于当前的商业纤维素酶混合物中的LPMO的有益作用可能部分是由于迄今未检测到的LPMO对难降解半纤维素结构的活性。

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