Degradation of lignite (low-rank coal) by ligninolytic basidiomycetes and their manganese peroxidase system

被引:0
|
作者
M. Hofrichter
D. Ziegenhagen
S. Sorge
R. Ullrich
F. Bublitz
W. Fritsche
机构
[1] Institut für Technische Mikrobiologie,
[2] Friedrich-Schiller-Universität Jena,undefined
[3] Philosophenweg 12,undefined
[4] 07743 Jena,undefined
[5] Germany Tel.: +3641-949337 Fax: +3641-949302,undefined
来源
Applied Microbiology and Biotechnology | 1999年 / 52卷
关键词
Humic Substance; Humic Acid; Lignite; Mining Area; Stable Enzyme;
D O I
暂无
中图分类号
学科分类号
摘要
Ligninolytic basidiomycetes (wood and leaf-litter-decaying fungi) have the ability to degrade low-rank coal (lignite). Extracellular manganese peroxidase is the crucial enzyme in the depolymerization process of both coal-derived humic substances and native coal. The depolymerization of coal by Mn peroxidase is catalysed via chelated Mn(III) acting as a diffusible mediator with a high redox potential and can be enhanced in the presence of additional mediating agents (e.g. glutathione). The depolymerization process results in the formation of a complex mixture of lower-molecular-mass fulvic-acid-like compounds. Experiments using a synthetic 14C-labeled humic acid demonstrated that the Mn peroxidase-catalyzed depolymerization of humic substances was accompanied by a substantial release of carbon dioxide (17%–50% of the initially added radioactivity was released as 14CO2). Mn peroxidase was found to be a highly stable enzyme that remained active for several weeks under reaction conditions in a liquid reaction mixture and even persisted in sterile and native soil from an opencast mining area for some days.
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页码:78 / 84
页数:6
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