A New Phenolic Acid Decarboxylase from the Brown-Rot Fungus Neolentinus lepideus Natively Decarboxylates Biosourced Sinapic Acid into Canolol, a Bioactive Phenolic Compound
-
Published:2024-02-14
Issue:2
Volume:11
Page:181
-
ISSN:2306-5354
-
Container-title:Bioengineering
-
language:en
-
Short-container-title:Bioengineering
Author:
Odinot Elise1, Bisotto-Mignot Alexandra2, Frezouls Toinou2, Bissaro Bastien2ORCID, Navarro David2ORCID, Record Eric2ORCID, Cadoret Frédéric2, Doan Annick2, Chevret Didier3, Fine Frédéric4, Lomascolo Anne2ORCID
Affiliation:
1. OléoInnov, 19 Rue du Musée, F-13001 Marseille, France 2. INRAE, Aix-Marseille Université, UMR1163 BBF Fungal Biodiversity and Biotechnology, 163 Avenue de Luminy, F-13009 Marseille, France 3. INRAE, UMR1319 MICALIS Institute, PAPPSO, Domaine de Vilvert, F-78350 Jouy-en-Josas, France 4. TERRES INOVIA, Parc Industriel, 11 Rue Monge, F-33600 Pessac, France
Abstract
Rapeseed meal (RSM) is a cheap, abundant and renewable feedstock, whose biorefinery is a current challenge for the sustainability of the oilseed sector. RSM is rich in sinapic acid (SA), a p-hydroxycinnamic acid that can be decarboxylated into canolol (2,6-dimethoxy-4-vinylphenol), a valuable bioactive compound. Microbial phenolic acid decarboxylases (PADs), mainly described for the non-oxidative decarboxylation of ferulic and p-coumaric acids, remain very poorly documented to date, for SA decarboxylation. The species Neolentinus lepideus has previously been shown to biotransform SA into canolol in vivo, but the enzyme responsible for bioconversion of the acid has never been characterized. In this study, we purified and characterized a new PAD from the canolol-overproducing strain N. lepideus BRFM15. Proteomic analysis highlighted a sole PAD-type protein sequence in the intracellular proteome of the strain. The native enzyme (NlePAD) displayed an unusual outstanding activity for decarboxylating SA (Vmax of 600 U.mg−1, kcat of 6.3 s−1 and kcat/KM of 1.6 s−1.mM−1). We showed that NlePAD (a homodimer of 2 × 22 kDa) is fully active in a pH range of 5.5–7.5 and a temperature range of 30–55 °C, with optima of pH 6–6.5 and 37–45 °C, and is highly stable at 4 °C and pH 6–8. Relative ratios of specific activities on ferulic, sinapic, p-coumaric and caffeic acids, respectively, were 100:24.9:13.4:3.9. The enzyme demonstrated in vitro effectiveness as a biocatalyst for the synthesis of canolol in aqueous medium from commercial SA, with a molar yield of 92%. Then, we developed processes to biotransform naturally-occurring SA from RSM into canolol by combining the complementary potentialities of an Aspergillus niger feruloyl esterase type-A, which is able to release free SA from the raw meal by hydrolyzing its conjugated forms, and NlePAD, in aqueous medium and mild conditions. NlePAD decarboxylation of biobased SA led to an overall yield of 1.6–3.8 mg canolol per gram of initial meal. Besides being the first characterization of a fungal PAD able to decarboxylate SA, this report shows that NlePAD is very promising as new biotechnological tool to generate biobased vinylphenols of industrial interest (especially canolol) as valuable platform chemicals for health, nutrition, cosmetics and green chemistry.
Funder
Technical Centre for Oilseed Crops, Grain Legumes, and Industrial Hemp Inter-Branch Organization for Vegetable Oils and Proteins OléoInnov company in the framework of the Ecocanolol project
Reference69 articles.
1. Index Mundi (2023, December 05). Agricultural Production, Supply, and Distribution. Available online: http://www.indexmundi.com/agriculture. 2. Rapeseed and sunflower meal: A review on biotechnology status and challenges;Lomascolo;Appl. Microbiol. Biotechnol.,2012 3. Di Lena, G., Sanchez Del Pulgar, J., Lucarini, M., Durazzo, A., Ondrejíčková, P., Oancea, F., Frincu, R.M., Aguzzi, A., Ferrari Nicoli, S., and Casini, I. (2021). Valorization Potentials of Rapeseed Meal in a Biorefinery Perspective: Focus on Nutritional and Bioactive Components. Molecules, 26. 4. Nehmeh, M., Rodriguez-Donis, I., Cavaco-Soares, A., Evon, P., Gerbaud, V., and Thiebaud-Roux, S. (2022). Bio-Refinery of Oilseeds: Oil Extraction, Secondary Metabolites Separation towards Protein Meal Valorisation—A Review. Processes, 10. 5. Wongsirichot, P., Gonzalez-Miquel, M., and Winterburn, J. (2022). Recent advances in rapeseed meal as alternative feedstock for industrial biotechnology. Biochem. Eng. J., 180.
|
|