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dc.contributor.authorAldrich-Wright, Janice
dc.contributor.authorCavicchioli, Ricardo
dc.contributor.authorCharlton, Tim
dc.contributor.authorOmar, Suhaila M.
dc.contributor.authorSiddiqui, Khawar Sohail
dc.contributor.authorErtan, Haluk
dc.contributor.authorCassel, Camilo
dc.contributor.authorVerma, Arjun
dc.contributor.authorPoljak, Anne
dc.date.accessioned2021-03-03T14:50:22Z
dc.date.available2021-03-03T14:50:22Z
dc.identifier.citationErtan H., Cassel C., Verma A., Poljak A., Charlton T., Aldrich-Wright J., Omar S. M. , Siddiqui K. S. , Cavicchioli R., "A new broad specificity alkaline metalloprotease from a Pseudomonas sp isolated from refrigerated milk: Role of calcium in improving enzyme productivity", JOURNAL OF MOLECULAR CATALYSIS B-ENZYMATIC, cilt.113, ss.1-8, 2015
dc.identifier.issn1381-1177
dc.identifier.othervv_1032021
dc.identifier.otherav_3bc16b94-b41b-4df4-bcf5-5cdfdae11213
dc.identifier.urihttp://hdl.handle.net/20.500.12627/44115
dc.identifier.urihttps://doi.org/10.1016/j.molcatb.2014.12.010
dc.description.abstractMetalloproteases represent the largest fraction of the global enzyme market. For biotechnological purposes the accumulation of product (i.e. productivity) provides the best measure of assessing enzyme performance because it takes into account the interplay between activity, stability, activation and inhibition. Studies assessing the productivity of alkaline metalloproteases and chemicals that improve their productivity have not previously been reported. In this study we report the specificity, productivity, kinetic and thermodynamic properties of an extracellular protease, purified from a new strain of Pseudomonas sp. isolated from refrigerated milk. Mass spectrometry analysis revealed the enzyme is a serralysin-type alkaline metalloprotease, with broad cleavage-site specificity. By studying the effects of Ca2+ ion removal (using a chelator) and Ca2+ ion addition, conditions were identified that led to an increase in productivity by 300% (6.3 vs 1.9 mg azopeptide mu g(-1) enzyme at 40 degrees C). The basis for the enhanced productivity was linked to elevated melting temperatures of secondary (T-m 47 vs 38 degrees C) and tertiary structure (T-m 50 vs 44 degrees C), increased half-life of inactivation (t(1/2) 30 vs 4.9 min), increased optimum temperature (44 vs 36 degrees C), and changes in both catalytic activity (k(cat) 3.3 vs 2.2 min(-1)) and substrate affinity (K-m 3.9 vs 2.5 mg mL(-1)). Thermodynamic data were indicative of Ca2+-binding causing the transition-state to be more ordered (less entropy) relative to the folded-state, thereby resisting a transition to an unfolded state. The specificity, kinetics and response to calcium of this AMP illustrate its potential usefulness for industrial applications, and the research highlights the broader potential for using calcium to enhance the productivity of proteases. Crown Copyright (C) 2015 Published by Elsevier B.V. All rights reserved.
dc.language.isoeng
dc.subjectMoleküler Biyoloji ve Genetik
dc.subjectSitogenetik
dc.subjectFizikokimya
dc.subjectTemel Bilimler
dc.subjectTemel Bilimler (SCI)
dc.subjectYaşam Bilimleri
dc.subjectKimya
dc.subjectKİMYA, FİZİKSEL
dc.subjectYaşam Bilimleri (LIFE)
dc.subjectMoleküler Biyoloji ve Genetik
dc.subjectBİYOKİMYA VE MOLEKÜLER BİYOLOJİ
dc.titleA new broad specificity alkaline metalloprotease from a Pseudomonas sp isolated from refrigerated milk: Role of calcium in improving enzyme productivity
dc.typeMakale
dc.relation.journalJOURNAL OF MOLECULAR CATALYSIS B-ENZYMATIC
dc.contributor.departmentUniversity of New South Wales Sydney , ,
dc.identifier.volume113
dc.identifier.startpage1
dc.identifier.endpage8
dc.contributor.firstauthorID221379


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