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拉沙蒙尼氏菌溶细胞多糖单加氧酶的转录组和分泌组分析。

Transcriptional and secretome analysis of Rasamsonia emersonii lytic polysaccharide mono-oxygenases.

机构信息

Department of Microbiology, Guru Nanak Dev University, Amritsar-143005, Punjab, India.

Department of Pharmaceutical Sciences, Guru Nanak Dev University, Amritsar, India.

出版信息

Appl Microbiol Biotechnol. 2024 Aug 21;108(1):444. doi: 10.1007/s00253-024-13240-0.

Abstract

The current study is the first to describe the temporal and differential transcriptional expression of two lytic polysaccharide monooxygenase (LPMO) genes of Rasamsonia emersonii in response to various carbon sources. The mass spectrometry based secretome analysis of carbohydrate active enzymes (CAZymes) expression in response to different carbon sources showed varying levels of LPMOs (AA9), AA3, AA7, catalase, and superoxide dismutase enzymes pointing toward the redox-interplay between the LPMOs and auxiliary enzymes. Moreover, it was observed that cello-oligosaccharides have a negative impact on the expression of LPMOs, which has not been highlighted in previous reports. The LPMO1 (30 kDa) and LPMO2 (47 kDa), cloned and expressed in Pichia pastoris, were catalytically active with (k/K) of 6.6×10 mg ml min and 1.8×10 mg ml min against Avicel, respectively. The mass spectrometry of hydrolysis products of Avicel/carboxy methyl cellulose (CMC) showed presence of C/C oxidized oligosaccharides indicating them to be Type 3 LPMOs. The 3D structural analysis of LPMO1 and LPMO2 revealed distinct arrangements of conserved catalytic residues at their active site. The developed enzyme cocktails consisting of cellulase from R. emersonii mutant M36 supplemented with recombinant LPMO1/LPMO2 resulted in significantly enhanced saccharification of steam/acid pretreated unwashed rice straw slurry from PRAJ industries (Pune, India). The current work indicates that LPMO1 and LPMO2 are catalytically efficient and have a high degree of thermostability, emphasizing their usefulness in improving benchmark enzyme cocktail performance. KEY POINTS: • Mass spectrometry depicts subtle interactions between LPMOs and auxiliary enzymes. • Cello-oligosaccharides strongly downregulated the LPMO1 expression. • Developed LPMO cocktails showed superior hydrolysis in comparison to CellicCTec3.

摘要

本研究首次描述了 Rasamsonia emersonii 两种溶细胞单加氧酶(LPMO)基因在不同碳源下的时间和差异转录表达。基于质谱的碳水化合物活性酶(CAZymes)分泌分析表明,不同碳源下 LPMO(AA9)、AA3、AA7、过氧化氢酶和超氧化物歧化酶的表达水平不同,这表明 LPMO 与辅助酶之间存在氧化还原相互作用。此外,还观察到纤维二糖寡糖对 LPMO 的表达有负面影响,这在以前的报告中没有被强调。在巴斯德毕赤酵母中克隆和表达的 LPMO1(30 kDa)和 LPMO2(47 kDa)对微晶纤维素的催化活性(k/K)分别为 6.6×10 mg ml min 和 1.8×10 mg ml min。微晶纤维素/羧甲基纤维素(CMC)水解产物的质谱分析表明存在 C/C 氧化寡糖,表明它们为 3 型 LPMO。LPMO1 和 LPMO2 的 3D 结构分析显示,其活性部位保守催化残基的排列方式不同。由 R. emersonii 突变体 M36 来源的纤维素酶与重组 LPMO1/LPMO2 组成的酶制剂可显著提高 PRAJ 工业(印度浦那)未洗涤稻秆浆的蒸汽/酸预处理糖化效率。本研究表明,LPMO1 和 LPMO2 具有较高的催化效率和热稳定性,这强调了它们在提高基准酶制剂性能方面的有用性。 关键点: • 质谱描绘了 LPMO 与辅助酶之间的微妙相互作用。 • 纤维二糖寡糖强烈下调 LPMO1 的表达。 • 与 CellicCTec3 相比,开发的 LPMO 酶制剂具有更高的水解效率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/79bb/11339117/c193e832c350/253_2024_13240_Fig1_HTML.jpg

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