Comparative analysis of lignin peroxidase and manganese peroxidase activity on coniferous and deciduous wood using ToF-SIMS

被引:0
作者
Jacqueline MacDonald
Robyn E. Goacher
Mamdouh Abou-Zaid
Emma R. Master
机构
[1] University of Toronto,Department of Chemical Engineering & Applied Chemistry
[2] Agriculture and Agri-Food Canada,London Research and Development Centre
[3] Niagara University,Department of Biochemistry, Chemistry and Physics
[4] Great Lakes Forestry Centre,Department of Chemical and Biochemical Engineering
[5] Western University,undefined
来源
Applied Microbiology and Biotechnology | 2016年 / 100卷
关键词
Manganese peroxidase; Lignin peroxidase; Time-of-flight secondary ion mass spectrometry; Wood fibre;
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学科分类号
摘要
White-rot fungi are distinguished by their ability to efficiently degrade lignin via lignin-modifying type II peroxidases, including manganese peroxidase (MnP) and lignin peroxidase (LiP). In the present study, time-of flight secondary ion mass spectrometry (ToF-SIMS) was used to evaluate lignin modification in three coniferous and three deciduous wood preparations following treatment with commercial preparations of LiP and MnP from two different white-rot fungi. Percent modification of lignin was calculated as a loss of intact methoxylated lignin over nonfunctionalized aromatic rings, which is consistent with oxidative cleavage of methoxy moieties within the lignin structure. Exposure to MnP resulted in greater modification of lignin in coniferous compared to deciduous wood (28 vs. 18 % modification of lignin); and greater modification of G-lignin compared to S-lignin within the deciduous wood samples (21 vs. 12 %). In contrast, exposure to LiP resulted in similar percent modification of lignin in all wood samples (21 vs 22 %), and of G- and S-lignin within the deciduous wood (22 vs. 23 %). These findings suggest that the selected MnP and LiP may particularly benefit delignification of coniferous and deciduous wood, respectively. Moreover, the current analysis further demonstrates the utility of ToF-SIMS for characterizing enzymatic modification of lignin in wood fibre along with potential advantages over UV and HPCL-MS detection of solubilized delignification products.
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页码:8013 / 8020
页数:7
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