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dc.contributor.authorKusano, Masayukien
dc.contributor.authorYasukawa, Kiyoshien
dc.contributor.authorInouye, Kuniyoen
dc.contributor.alternative井上, 國世ja
dc.date.accessioned2010-10-18T07:58:11Z-
dc.date.available2010-10-18T07:58:11Z-
dc.date.issued2010-05-03-
dc.identifier.issn1873-4863-
dc.identifier.urihttp://hdl.handle.net/2433/128776-
dc.description.abstractWe have previously indicated that three single mutations (Leu144-->Ser, Asp150-->Glu, and Ile168-->Ala) in the site-directed mutagenesis of thermolysin increase the activity and two single (Ser53-->Asp and Leu155-->Ala) and one triple (Gly8-->Cys/Asn60-->Cys/Ser65-->Pro) mutations increase the stability. In the present study, aiming to generate highly active and stable thermolysin variants, we combined these mutations and analyzed the effect of combinations on the activity and stability of thermolysin. The combination of the mutations of Leu144-->Ser and Asp150-->Glu yielded the most significant increase in the hydrolytic activities for N-[3-(2-furyl)acryloyl]-Gly-L-Leu amide (FAGLA) and N-carbobenzoxy-L-Asp-L-Phe methyl ester (ZDFM), while that of Leu144-->Ser and Ile168-->Ala abolished the activity. The combination of Ser53-->Asp and Leu155-->Ala yielded the greatest increase in the thermal stability, while that of Ser53-->Asp and Gly8-->Cys/Asn60-->Cys/Ser65-->Pro increased the stability as high as the individual mutations do. The combination of three mutations of Leu144-->Ser, Asp150-->Glu, and Ser53-->Asp yielded a variant L144S/D150E/S53D with improved activity and stability. Its k(cat)/K(m) values in the hydrolysis of FAGLA and ZDFM were 8.6 and 10.2 times higher than those of wild-type thermolysin (WT), respectively, and its rate constant for thermal inactivation at 80 degrees C was 60% of that of WT.en
dc.format.mimetypeapplication/pdf-
dc.language.isoeng-
dc.publisherElsevier B.V.en
dc.rights© 2010 Elsevier B.V.en
dc.rightsThis is not the published version. Please cite only the published version.en
dc.rightsこの論文は出版社版でありません。引用の際には出版社版をご確認ご利用ください。ja
dc.subjectActivity–stability relationshipen
dc.subjectMutational combinationen
dc.subjectSite-directed mutagenesisen
dc.subjectThermal stabilityen
dc.subjectThermolysinen
dc.subject.meshAcrylates/metabolismen
dc.subject.meshCaseins/metabolismen
dc.subject.meshDipeptides/metabolismen
dc.subject.meshElectrophoresis, Polyacrylamide Gelen
dc.subject.meshEnzyme Activation/drug effectsen
dc.subject.meshEnzyme Stability/drug effectsen
dc.subject.meshEscherichia colien
dc.subject.meshHydrolysis/drug effectsen
dc.subject.meshKineticsen
dc.subject.meshMutagenesis/drug effectsen
dc.subject.meshMutagenesis/geneticsen
dc.subject.meshMutant Proteins/isolation & purificationen
dc.subject.meshMutant Proteins/metabolismen
dc.subject.meshMutation/geneticsen
dc.subject.meshSodium Chloride/pharmacologyen
dc.subject.meshSubcellular Fractions/drug effectsen
dc.subject.meshSubcellular Fractions/metabolismen
dc.subject.meshSubstrate Specificity/drug effectsen
dc.subject.meshTemperatureen
dc.subject.meshThermolysin/chemistryen
dc.subject.meshThermolysin/geneticsen
dc.subject.meshThermolysin/isolation & purificationen
dc.subject.meshThermolysin/metabolismen
dc.subject.meshTransformation, Genetic/drug effectsen
dc.titleEffects of the mutational combinations on the activity and stability of thermolysin.en
dc.typejournal article-
dc.type.niitypeJournal Article-
dc.identifier.ncidAA10458361-
dc.identifier.jtitleJournal of biotechnologyen
dc.identifier.volume147-
dc.identifier.issue1-
dc.identifier.spage7-
dc.identifier.epage16-
dc.relation.doi10.1016/j.jbiotec.2010.02.024-
dc.textversionauthor-
dc.identifier.pmid20214932-
dcterms.accessRightsopen access-
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