Fungal Laccases: Fundamentals, Engineering and Classification Update
Грибные лакказы: основы, инженерия и обновление классификации
2023-11-28
SCID: 54.1/v8mwhduj
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directed evolutionfungal laccasesmulticopper oxidasesphylogenetic classificationprotein engineering
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Abstract (AI)
Multicopper oxidases (MCOs) share a common catalytic mechanism of activation by oxygen and cupredoxin-like folding, along with some common structural determinants. Laccases constitute the largest group of MCOs, with fungal laccases having the greatest biotechnological applicability due to their superior ability to oxidize a wide range of aromatic compounds and lignin, which is enhanced in the presence of redox mediators. The adaptation of these versatile enzymes to specific application processes can be achieved through the directed evolution of the recombinant enzymes. On the other hand, their substrate versatility and the low sequence homology among laccases make their exact classification difficult. Many of the ever-increasing amounts of MCO entries from fungal genomes are automatically (and often wrongly) annotated as laccases. In a recent comparative genomic study of 52 basidiomycete fungi, MCO classification was revised based on their phylogeny. The enzymes clustered according to common structural motifs and theoretical activities, revealing three novel groups of laccase-like enzymes. This review provides an overview of the structure, catalytic activity, and oxidative mechanism of fungal laccases and how their biotechnological potential as biocatalysts in industry can be greatly enhanced by protein engineering. Finally, recent information on newly identified MCOs with laccase-like activity is included.
Key Findings
1
A comparative genomic study of 52 basidiomycete fungi revised MCO classification phylogenetically and identified three novel groups of laccase-like enzymes.
2
Directed evolution of recombinant fungal laccases can adapt their substrate versatility and catalytic properties to specific industrial processes.
3
Fungal laccases are the largest multicopper oxidase group and efficiently oxidize diverse aromatic compounds and lignin, especially with redox mediators.
4
Low sequence homology and broad substrate specificity make fungal laccase classification difficult, causing frequent misannotation of fungal MCO genes as laccases.
5
Structural motifs, phylogeny, and predicted activities provide a basis for distinguishing newly identified fungal MCOs with laccase-like activity.
Research Object
fungal laccases and laccase-like multicopper oxidases
Research Subject
their structure, catalytic and oxidative mechanisms, biotechnological applicability, protein-engineering enhancement, and phylogenetic classification
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2023-11-28
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