Rational engineering of AA5_2 copper radical oxidases to probe the molecular determinants governing their substrate selectivity

Author:

Koncitikova Radka12,Zuily Lisa1,Lemarié Emeline12,Ribeaucourt David12ORCID,Saker Safwan2,Haon Mireille2,Brumer Harry3,Guallar Victor45,Berrin Jean‐Guy2ORCID,Lafond Mickael1ORCID

Affiliation:

1. Centrale Marseille, iSm2 Aix Marseille Université, CNRS France

2. UMR1163 Biodiversité et Biotechnologie Fongiques INRAE, Aix Marseille Université France

3. Michael Smith Laboratories University of British Columbia Vancouver Canada

4. Department of Life Sciences Barcelona Supercomputing Center (BSC) Spain

5. Catalan Institution for Research and Advanced Studies (ICREA) Barcelona Spain

Abstract

Fungal copper radical oxidases (CROs) from the Auxiliary Activity family 5 (AA5) constitute a group of metalloenzymes that oxidize a wide panel of natural compounds, such as galactose‐containing saccharides or primary alcohols, into product derivatives exhibiting promising biotechnological interests. Despite a well‐conserved first copper‐coordination sphere and overall fold, some members of the AA5_2 subfamily are incapable of oxidizing galactose and galactosides but conversely efficiently catalyse the oxidation of diverse aliphatic alcohols. The objective of this study was to understand which residues dictate the substrate preferences between alcohol oxidases and galactose oxidases within the AA5_2 subfamily. Based on structural differences and molecular modelling predictions between the alcohol oxidase from Colletotrichum graminicola (CgrAlcOx) and the archetypal galactose oxidase from Fusarium graminearum (FgrGalOx), a rational mutagenesis approach was developed to target regions or residues potentially driving the substrate specificity of these enzymes. A set of 21 single and multiple CgrAlcOx variants was produced and characterized leading to the identification of six residues (W39, F138, M173, F174, T246, L302), in the vicinity of the active site, crucial for substrate recognition. Two multiple CgrAlcOx variants, i.e. M4F (W39F, F138W, M173R and T246Q) and M6 (W39F, F138W, M173R, F174Y, T246Q and L302P), exhibited a similar affinity for carbohydrate substrates when compared to FgrGalOx. In conclusion, using a rational site‐directed mutagenesis approach, we identified key residues involved in the substrate selectivity of AA5_2 enzymes towards galactose‐containing saccharides.

Funder

Agence Nationale de la Recherche

Canadian Network for Research and Innovation in Machining Technology, Natural Sciences and Engineering Research Council of Canada

Centre National de la Recherche Scientifique

Publisher

Wiley

Subject

Cell Biology,Molecular Biology,Biochemistry

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