Mechanisms of Manganese(II) Oxidation by Filamentous Ascomycete Fungi Vary With Species and Time as a Function of Secretome Composition

Механизмы окисления марганца(II) нитчатыми аскомицетными грибами зависят от вида и времени как функции состава секретома
Carolyn Zeiner, Samuel Purvine, Erika Zink, Si Wu, Ljiljana Paša‐Tolić, Dominique L. Chaput, Cara Santelli, Colleen M. Hansel
2021-02-10

Cu-based oxidationFAD-based oxidationfilamentous Ascomycetesfungal secretomemanganese(II) oxidation
Manganese (Mn) oxides are among the strongest oxidants and sorbents in the environment, and Mn(II) oxidation to Mn(III/IV) (hydr)oxides includes both abiotic and microbially-mediated processes. While white-rot Basidiomycete fungi oxidize Mn(II) using laccases and manganese peroxidases in association with lignocellulose degradation, the mechanisms by which filamentous Ascomycete fungi oxidize Mn(II) and a physiological role for Mn(II) oxidation in these organisms remain poorly understood. Here we use a combination of chemical and in-gel assays and bulk mass spectrometry to demonstrate secretome-based Mn(II) oxidation in three phylogenetically diverse Ascomycetes that is mechanistically distinct from hyphal-associated Mn(II) oxidation on solid substrates. We show that Mn(II) oxidative capacity of these fungi is dictated by species-specific secreted enzymes and varies with secretome age, and we reveal the presence of both Cu-based and FAD-based Mn(II) oxidation mechanisms in all 3 species, demonstrating mechanistic redundancy. Specifically, we identify candidate Mn(II)-oxidizing enzymes as tyrosinase and glyoxal oxidase in Stagonospora sp. SRC1lsM3a, bilirubin oxidase in Stagonospora sp. and Paraconiothyrium sporulosum AP3s5-JAC2a, and GMC oxidoreductase in all 3 species, including Pyrenochaeta sp. DS3sAY3a. The diversity of the candidate Mn(II)-oxidizing enzymes identified in this study suggests that the ability of fungal secretomes to oxidize Mn(II) may be more widespread than previously thought.
1
All three species exhibit both copper-based and FAD-based Mn(II) oxidation, indicating mechanistic redundancy.
2
Candidate Mn(II)-oxidizing enzymes include tyrosinase, glyoxal oxidase, bilirubin oxidase, and GMC oxidoreductase, with GMC oxidoreductase detected in all three species.
3
Fungal Mn(II)-oxidative capacity is determined by species-specific secreted enzymes and changes as the secretome ages.
4
The diversity of candidate enzymes suggests that Mn(II)-oxidizing fungal secretomes may be more widespread than previously recognized.
5
Three phylogenetically diverse filamentous Ascomycetes oxidize Mn(II) through secretome-based mechanisms distinct from hyphal-associated oxidation on solid substrates.

Secretome-based manganese(II) oxidation by three phylogenetically diverse filamentous Ascomycete fungi

Species- and time-dependent secretome composition and the redundant Cu-based and FAD-based enzymatic mechanisms governing Mn(II) oxidative capacity

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2021-02-10
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Carolyn Zeiner
Samuel Purvine
Erika Zink
Si Wu
Ljiljana Paša‐Tolić
Dominique L. Chaput
Cara Santelli
Colleen M. Hansel
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