4.6 Article

localizing incipient reactions in wood degraded by the brown rot fungus Postia placenta

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出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.ibiod.2013.04.006

关键词

Fenton; Brown rot; Decay; GH61; Polysaccharide monooxygenase; Glycosyl hydrolase

资金

  1. US Department of Energy (DOE) from the Biomass Research and Development Initiative (BRDI) [GO18088]
  2. Early Career from the Biological and Ecological Research (BER) program [DE SC0004012]
  3. Initiative for Renewable Energy and the Environment (IREE), a program of the Institute on the Environment (IonE) at the University of Minnesota [RC 008-11]
  4. U.S. Department of Energy (DOE) [DE-SC0004012] Funding Source: U.S. Department of Energy (DOE)

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Brown rot fungi are theorized to use both free radicals and enzymes to degrade wood. If these incompatible agents are employed in sequence (enzymatic after oxidative) in order to avoid interaction, this should be resolvable spatially in rotting wood. To assess this, we used thin spruce wafers as substrates, with the largest face the transverse plane. Propped wafers were colonized from the bottom (tangential to grain) by Postia placenta, using wood cell orientation and gravity to slow fungal egress and accentuate spatial gradients. After brief colonization, wafers were cut into 1-mm strips progressing up the wafer, and subsectioned for complementary analyses. Analyses included fungal growth, pH, cellulase activity, and wood modifications attributable to non-enzymatic mechanisms. Hyphae were imaged using confocal microscopy of fluorophore-tagged chitin. Dilute alkali solubility and lignin demethylation were measured as proxies (consequences) of carbohydrate depolymerization and lignin oxidation, respectively. Because P. placenta lacks genes for cellobiohydrolases, endoglucanase (EG) activity was measured. In composites of reassembled sections, hyphal fronts and apparent depolymerization preceded EG and lignin demethylation fronts by more than 6 mm. Although detection limits are a caveat when implicating novel fungal metabolites, results encourage and provide methodology for targeting this interesting leading edge of cellulolysis. (C) 2013 Elsevier Ltd. All rights reserved.

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