Novel xylan degrading enzymes from polysaccharide utilizing loci of Prevotella copri DSM18205

Author:

Linares-Pastén Javier A1ORCID,Hero Johan Sebastian2ORCID,Pisa José Horacio2,Teixeira Cristina1,Nyman Margareta3,Adlercreutz Patrick1,Martinez M Alejandra24,Karlsson Eva Nordberg1ORCID

Affiliation:

1. Biotechnology, Department of Chemistry, Lund University, P.O.Box 124, 221 00, Lund, Sweden

2. Planta Piloto de Procesos Industriales Microbiológicos PROIMI-CONICET, Av. Belgrano y Pasaje Caseros, T4001 MVB, San Miguel de Tucumán, Argentina

3. Department Food Technology, Engineering and Nutrition, Lund University, P.O. Box 124, SE-221 00, Lund, Sweden

4. Facultad de Ciencias Exactas y Tecnología, UNT. Av. Independencia 1800, San Miguel de Tucumán, 4000, Argentina

Abstract

Abstract Prevotella copri is a bacterium that can be found in the human gastrointestinal tract. The role of P. copri in the GIT is unclear, and elevated numbers of the microbe have been reported both in dietary fiber-induced improvement in glucose metabolism but also in conjunction with certain inflammatory conditions. These findings raised our interest in investigating the possibility of P. copri to grow on xylan, and identify the enzyme systems playing a role in digestion of xylan-based dietary fibers. Two xylan degrading polysaccharide utilizing loci (PUL10 and 15) were found in the genome, with three and eight glycoside hydrolase (GH) -encoding genes, respectively. Three of them were successfully produced in Escherichia coli: One extracellular enzyme from GH43 (subfamily 12, in PUL10, 60 kDa) and two enzymes from PUL15, one extracellular GH10 (41 kDa), and one intracellular GH43 (subfamily 137 kDa). Based on our results we propose that in PUL15, GH10 (1) is an extracellular endo-1,4-β-xylanase, that hydrolyses mainly glucuronosylated xylan polymers to xylooligosaccharides (XOS); while, GH43_1 in the same PUL, is an intracellular β-xylosidase, catalysing complete hydrolysis of the XOS to xylose. In PUL10, the characterized GH43_12 is an arabinofuranosidase, with a role in degradation of arabinoxylan, catalysing removal of arabinose-residues on xylan.

Publisher

Oxford University Press (OUP)

Subject

Biochemistry

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