» Articles » PMID: 37746164

Basidiomycota Fungi and ROS: Genomic Perspective on Key Enzymes Involved in Generation and Mitigation of Reactive Oxygen Species

Overview
Specialty Biology
Date 2023 Sep 25
PMID 37746164
Authors
Affiliations
Soon will be listed here.
Abstract

Our review includes a genomic survey of a multitude of reactive oxygen species (ROS) related intra- and extracellular enzymes and proteins among fungi of Basidiomycota, following their taxonomic classification within the systematic classes and orders, and focusing on different fungal lifestyles (saprobic, symbiotic, pathogenic). Intra- and extracellular ROS metabolism-involved enzymes (49 different protein families, summing 4170 protein models) were searched as protein encoding genes among 63 genomes selected according to current taxonomy. Extracellular and intracellular ROS metabolism and mechanisms in Basidiomycota are illustrated in detail. In brief, it may be concluded that differences between the set of extracellular enzymes activated by ROS, especially by HO, and involved in generation of HO, follow the differences in fungal lifestyles. The wood and plant biomass degrading white-rot fungi and the litter-decomposing species of Agaricomycetes contain the highest counts for genes encoding various extracellular peroxidases, mono- and peroxygenases, and oxidases. These findings further confirm the necessity of the multigene families of various extracellular oxidoreductases for efficient and complete degradation of wood lignocelluloses by fungi. High variations in the sizes of the extracellular ROS-involved gene families were found, however, among species with mycorrhizal symbiotic lifestyle. In addition, there are some differences among the sets of intracellular thiol-mediation involving proteins, and existence of enzyme mechanisms for quenching of intracellular HO and ROS. In animal- and plant-pathogenic species, extracellular ROS enzymes are absent or rare. In these fungi, intracellular peroxidases are seemingly in minor role than in the independent saprobic, filamentous species of Basidiomycota. Noteworthy is that our genomic survey and review of the literature point to that there are differences both in generation of extracellular ROS as well as in mechanisms of response to oxidative stress and mitigation of ROS between fungi of Basidiomycota and Ascomycota.

Citing Articles

Sequential pretreatment with hydroxyl radical and manganese peroxidase for the efficient enzymatic saccharification of corn stover.

Zhou M, Wang Y, Wang Y, Tu T, Zhang J, Wang X Biotechnol Biofuels Bioprod. 2024; 17(1):136.

PMID: 39558384 PMC: 11575438. DOI: 10.1186/s13068-024-02583-5.


Enhancement of antioxidant activity and total phenolic content of Fomitopsis pinicola mycelium extract.

Krupodorova T, Barshteyn V, Dzhagan V, Pluzhnyk A, Zaichenko T, Blume Y Fungal Biol Biotechnol. 2024; 11(1):18.

PMID: 39511671 PMC: 11545585. DOI: 10.1186/s40694-024-00187-0.


Influence of Growth Support on the Diversity, Composition, and Functionality of Microbial Communities Associated with Tillandsia recurvata.

Siqueira J, de Carvalho L, Santos C, Frezarin E, Pinheiro D, Nicodemo D Microb Ecol. 2024; 87(1):129.

PMID: 39414684 PMC: 11485485. DOI: 10.1007/s00248-024-02448-2.


Oxidative stress and culture atmosphere effects on bioactive compounds and laccase activity in the white rot fungus on birch wood substrate.

Kiviniemi E, Mikkola A, Mattila H, Wahlsten M, Lundell T Curr Res Microb Sci. 2024; 7:100280.

PMID: 39398196 PMC: 11466665. DOI: 10.1016/j.crmicr.2024.100280.


Uncovering the Mechanisms: The Role of Biotrophic Fungi in Activating or Suppressing Plant Defense Responses.

Leiva-Mora M, Capdesuner Y, Villalobos-Olivera A, Moya-Jimenez R, Saa L, Martinez-Montero M J Fungi (Basel). 2024; 10(9).

PMID: 39330396 PMC: 11433257. DOI: 10.3390/jof10090635.


References
1.
Ullrich R, Nuske J, Scheibner K, Spantzel J, Hofrichter M . Novel haloperoxidase from the agaric basidiomycete Agrocybe aegerita oxidizes aryl alcohols and aldehydes. Appl Environ Microbiol. 2004; 70(8):4575-81. PMC: 492325. DOI: 10.1128/AEM.70.8.4575-4581.2004. View

2.
Shah F, Mali T, Lundell T . Polyporales Brown Rot Species Fomitopsis pinicola: Enzyme Activity Profiles, Oxalic Acid Production, and Fe-Reducing Metabolite Secretion. Appl Environ Microbiol. 2018; 84(8). PMC: 5881074. DOI: 10.1128/AEM.02662-17. View

3.
Warris A, Ballou E . Oxidative responses and fungal infection biology. Semin Cell Dev Biol. 2018; 89:34-46. DOI: 10.1016/j.semcdb.2018.03.004. View

4.
Pompeu G, Pietrobon V, Andreote C, Ferreira L, Aguiar M, Sartori S . Role of the antioxidant defense system during the production of lignocellulolytic enzymes by fungi. Int Microbiol. 2019; 22(2):255-264. DOI: 10.1007/s10123-018-00045-1. View

5.
Hofrichter M, Ullrich R, Pecyna M, Liers C, Lundell T . New and classic families of secreted fungal heme peroxidases. Appl Microbiol Biotechnol. 2010; 87(3):871-97. DOI: 10.1007/s00253-010-2633-0. View