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dc.creatorWu,Gaobing
dc.creatorZhan,Tao
dc.creatorGuo,Yiming
dc.creatorKumar,Ashok
dc.creatorLiu,Ziduo
dc.date2016-07-01
dc.date.accessioned2019-05-03T12:45:25Z
dc.date.available2019-05-03T12:45:25Z
dc.identifierhttps://scielo.conicyt.cl/scielo.php?script=sci_arttext&pid=S0717-34582016000400004
dc.identifier.urihttp://revistaschilenas.uchile.cl/handle/2250/85555
dc.descriptionBackground: Glycine oxidase (GO), a type of D-amino acid oxidase, is of biotechnological interest for its potential in several fields. In our previous study, we have characterized a new glycine oxidase (BceGO) from Bacillus cereus HYC-7. Here, a variant of N336K with increased the affinity against all the tested substrate was obtained by screening a random mutant library of BceGO. It is observed that the residue N336 is invariable between its homogeneous enzymes. This work was aimed to explore the role of the residue N336 in glycine oxidase by site-directed mutagenesis, kinetic assay, structure modeling and substrate docking. Results: The results showed that the affinity of N336H, N336K and N336R increased gradually toward all the substrates, with increase in positive charge on side chain, while N336A and N336G have not shown a little significant effect on substrate affinity. The structure modeling studies indicated that the residue Asn336 is located in a random coil between |J-18 and a-10. Also, far-UV CD spectra-analysis showed that the mutations at Asn336 do not affect the secondary structure of enzyme. Conclusion: Asn336 site was located in a conserved GHYRNG loop which adjoining to substrate and the isoalloxazine ring of FAD, and involved in the substrate affinity of glycine oxidase. This might provide new insight into the structure-function relationship of GO, and valuable clue to redesign its substrate specificity for some biotechnological application.
dc.formattext/html
dc.languageen
dc.publisherPontificia Universidad Católica de Valparaíso
dc.relation10.1016/j.ejbt.2016.02.009
dc.rightsinfo:eu-repo/semantics/openAccess
dc.sourceElectronic Journal of Biotechnology v.19 n.4 2016
dc.subjectBacillus cereus
dc.subjectError-prone PCR
dc.subjectGlycine oxidase
dc.subjectSite-directed mutagenesis
dc.subjectSubstrate affinity
dc.titleAsn336 is involved in the substrate affinity of glycine oxidase from Bacillus cereus


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