Feruloyl Esterase (LaFae) from Lactobacillus acidophilus: Structural Insights and Functional Characterization for Application in Ferulic Acid Production

Author:

Jeon Sangeun1ORCID,Hwang Jisub23ORCID,Do Hackwon23,Le Ly Thi Huong Luu1,Lee Chang Woo2,Yoo Wanki14ORCID,Lee Min Ju2,Shin Seung Chul5,Kim Kyeong Kyu4ORCID,Kim Han-Woo23ORCID,Lee Jun Hyuck23ORCID

Affiliation:

1. Department of Chemistry, College of Natural Science, Sookmyung Women’s University, Seoul 04310, Republic of Korea

2. Research Unit of Cryogenic Novel Material, Korea Polar Research Institute, Incheon 07505, Republic of Korea

3. Department of Polar Sciences, University of Science and Technology, Incheon 07505, Republic of Korea

4. Department of Precision Medicine, Graduate School of Basic Medical Science (GSBMS), Sungkyunkwan University School of Medicine, Suwon 16419, Republic of Korea

5. Division of Life Sciences, Korea Polar Research Institute, Incheon 07505, Republic of Korea

Abstract

Ferulic acid and related hydroxycinnamic acids, used as antioxidants and preservatives in the food, cosmetic, pharmaceutical and biotechnology industries, are among the most abundant phenolic compounds present in plant biomass. Identification of novel compounds that can produce ferulic acid and hydroxycinnamic acids, that are safe and can be mass-produced, is critical for the sustainability of these industries. In this study, we aimed to obtain and characterize a feruloyl esterase (LaFae) from Lactobacillus acidophilus. Our results demonstrated that LaFae reacts with ethyl ferulate and can be used to effectively produce ferulic acid from wheat bran, rice bran and corn stalks. In addition, xylanase supplementation was found to enhance LaFae enzymatic hydrolysis, thereby augmenting ferulic acid production. To further investigate the active site configuration of LaFae, crystal structures of unliganded and ethyl ferulate-bound LaFae were determined at 2.3 and 2.19 Å resolutions, respectively. Structural analysis shows that a Phe34 residue, located at the active site entrance, acts as a gatekeeper residue and controls substrate binding. Mutating this Phe34 to Ala produced an approximately 1.6-fold increase in LaFae activity against p-nitrophenyl butyrate. Our results highlight the considerable application potential of LaFae to produce ferulic acid from plant biomass and agricultural by-products.

Funder

National Research Foundation of Korea Grant from the Korean Government

Ministry of Oceans and Fisheries, Korea

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

Reference49 articles.

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