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Licensed Unlicensed Requires Authentication Published by De Gruyter September 15, 2015

Synthesis and enzymatic hydrolysis of a diaryl benzyl ester model of a lignin-carbohydrate complex (LCC)

  • Filip Nylander , Hampus Sunner , Lisbeth Olsson , Paul Christakopoulos and Gunnar Westman EMAIL logo
From the journal Holzforschung

Abstract

Specific degradation of the bonds between lignin and carbohydrates is an important step towards separating individual lignocellulosic biopolymers for sustainable production of materials and chemicals. One of the most established covalent lignin-carbohydrate (LC) interactions is the ester bond between the α- or γ-hydroxyl group of a lignin phenylpropane unit and a glucuronic acid side chain of xylan. In this work, a model of the LC benzyl ester bond was synthesized in a one-pot reaction from a β-O-4 lignin unit and d-glucuronic acid, both from commercial sources. The resulting lignin-carbohydrate complex (LCC) model was unstable in aqueous solution. However, at pH 4, the rate of spontaneous hydrolysis was sufficiently low to allow for enzymatic splitting experiments. The enzymatic hydrolysis of the LC benzyl ester bond of the LCC model was demonstrated by means of the glucuronoyl esterase StGE2 from Sporotrichum thermophile, which showed a preference for erythro forms of the LCC model.


Corresponding author: Gunnar Westman, Organic Chemistry, Department of Chemistry and Chemical Engineering, Chalmers University of Technology, SE-412 96, Gothenburg, Sweden, e-mail: ; and Wallenberg Wood Science Centre, Stockholm, Sweden
aFilip Nylander and Hampus Sunner: These authors contributed equally to this work.

Acknowledgments

This work was financed as part of the research effort of the Wallenberg Science Center (www.wwsc.se). L. Olsson and F. Nylander thank the Chalmers Foundation for additional support.

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Received: 2014-11-30
Accepted: 2015-8-10
Published Online: 2015-9-15
Published in Print: 2016-5-1

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