Stabilization of multimeric sucrose synthase from Acidithiobacillus caldus via immobilization and post-immobilization techniques for synthesis of UDP-glucose

dc.contributor.authorTrobo Maseda, Lara
dc.contributor.authorOrrego, Alejandro H.
dc.contributor.authorMoreno Pérez, Sonia
dc.contributor.authorFernández Lorente, Gloria
dc.contributor.authorGuisan, José M.
dc.contributor.authorRocha Martín, Javier
dc.date.accessioned2017-11-28T15:38:26Z
dc.date.available2017-11-28T15:38:26Z
dc.date.issued2018
dc.description.abstractSucrose synthases (SuSys) have been attracting great interest in recent years in industrial biocatalysis. They can be used for the cost-effective production of uridine 5′-diphosphate glucose (UDP-glucose) or its in situ recycling if coupled to glycosyltransferases on the production of glycosides in the food, pharmaceutical, nutraceutical, and cosmetic industry. In this study, the homotetrameric SuSy from Acidithiobacillus caldus (SuSyAc) was immobilized-stabilized on agarose beads activated with either (i) glyoxyl groups, (ii) cyanogen bromide groups, or (iii) heterogeneously activated with both glyoxyl and positively charged amino groups. The multipoint covalent immobilization of SuSyAc on glyoxyl agarose at pH 10.0 under optimized conditions provided a significant stabilization factor at reaction conditions (pH 5.0 and 45 °C). However, this strategy did not stabilize the enzyme quaternary structure. Thus, a post-immobilization technique using functionalized polymers, such as polyethyleneimine (PEI) and dextran-aldehyde (dexCHO), was applied to cross-link all enzyme subunits. The coating of the optimal SuSyAc immobilized glyoxyl agarose with a bilayer of 25 kDa PEI and 25 kDa dexCHO completely stabilized the quaternary structure of the enzyme. Accordingly, the combination of immobilization and post-immobilization techniques led to a biocatalyst 340-fold more stable than the non-cross-linked biocatalyst, preserving 60% of its initial activity. This biocatalyst produced 256 mM of UDP-glucose in a single batch, accumulating 1 M after five reaction cycles. Therefore, this immobilized enzyme can be of great interest as a biocatalyst to synthesize UDP-glucose.spa
dc.description.filiationUEMspa
dc.description.impact3.670 JCR (2018) Q2, 41/162 Biotechnology & Applied Microbiologyspa
dc.description.impact1.127 SJR (2018) Q1, 53/342 Biotechnology, 22/114 Applied Microbiology and Biotechnology, 451/2844 Medicine (miscellaneous)spa
dc.description.impactNo data IDR 2018spa
dc.description.sponsorshipEU FP7 project SuSy (Sucrose Synthase as Cost-Effective Mediator of Glycosylation Reactions, CKBBE/ 3293spa
dc.description.sponsorship(IJCI-2014-19260) Spanish Ministry of Economy, Industry and Competitiveness.spa
dc.identifier.citationTrobo-Maseda, L., Orrego, A. H., Moreno-Pérez, S., Fernández-Lorente, G., Guisan, J. M. & Rocha-Martin, J. (2018). Stabilization of multimeric sucrose synthase from Acidithiobacillus caldus via immobilization and post-immobilization techniques for synthesis of UDP-glucose. Applied Microbiology and Biotechnology, 102(2), 773-787.spa
dc.identifier.doi10.1007/s00253-017-8649-y
dc.identifier.issn0175-7598
dc.identifier.issn1432-0614
dc.identifier.urihttp://hdl.handle.net/11268/6800
dc.language.isospaspa
dc.peerreviewedSispa
dc.relation.projectIDCKBBE/3293spa
dc.rights.accessRightsopen accessspa
dc.subject.otherEnzimas multiméricasspa
dc.subject.otherEstabilización enzimáticaspa
dc.subject.uemMicrobiologíaspa
dc.subject.uemBiotecnologíaspa
dc.subject.unescoCienciaspa
dc.subject.unescoEnzimaspa
dc.titleStabilization of multimeric sucrose synthase from Acidithiobacillus caldus via immobilization and post-immobilization techniques for synthesis of UDP-glucosespa
dc.typejournal articlespa
dspace.entity.typePublication
relation.isAuthorOfPublication1234b64c-5ae3-4c75-a8a2-7befb13d9a6b
relation.isAuthorOfPublication.latestForDiscovery1234b64c-5ae3-4c75-a8a2-7befb13d9a6b

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