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Cloning, expression, and characterization of thermotolerant manganese superoxide dismutase from Bacillus sp. MHS47

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dc.contributor.author Areekit S.
dc.contributor.author Kanjanavas P.
dc.contributor.author Khawsak P.
dc.contributor.author Pakpitchareon A.
dc.contributor.author Potivejkul K.
dc.contributor.author Chansiri G.
dc.contributor.author Chansiri K.
dc.date.accessioned 2021-04-05T03:35:46Z
dc.date.available 2021-04-05T03:35:46Z
dc.date.issued 2011
dc.identifier.issn 14220067
dc.identifier.other 2-s2.0-79251636317
dc.identifier.uri https://ir.swu.ac.th/jspui/handle/123456789/14586
dc.identifier.uri https://www.scopus.com/inward/record.uri?eid=2-s2.0-79251636317&doi=10.3390%2fijms12010844&partnerID=40&md5=f88f9a9756800a44e9243fe5b158b5f8
dc.description.abstract A superoxide dismutase gene from thermotolerant Bacillus sp. MHS47 (MnSOD47) was cloned, sequenced, and expressed. The gene has an open reading frame of 612 bp, corresponding to 203 deduced amino acids, with high homology to the amino acid sequences of B. thuringiensis (accession no. EEN01322), B. anthracis (accession no. NP_846724), B. cereus (accession no. ZP_04187911), B. weihenstephanensis (accession no. YP_001646918), and B. pseudomycoides. The conserved manganese-binding sites (H28, H83, D165, and H169) show that MnSOD47 has the specific characteristics of the manganese superoxide dismutase (MnSOD) enzymes. MnSOD47 expressed an enzyme with a molecular weight of approximately 22.65 kDa and a specific activity of 3537.75 U/mg. The enzyme is active in the pH range 7-8.5, with an optimum pH of 7.5, and at temperatures in the range 30-45 °C, with an optimum temperature of 37 °C. Tests of inhibitors and metal ions indicated that the enzyme activity is inhibited by sodium azide, but not by hydrogen peroxide or potassium cyanide. These data should benefit future studies of MnSODs in other microorganisms and the biotechnological production of MnSOD47, and could also be used to develop a biosensor for the detection of antioxidants and free radical activity. In the future, this basic knowledge could be applicable to the detection of cancer risks in humans and therapeutic treatments. © 2010 by the authors; licensee MDPI, Basel, Switzerland.
dc.subject bacterial enzyme
dc.subject genomic DNA
dc.subject hydrogen peroxide
dc.subject manganese superoxide dismutase
dc.subject manganese superoxide dismutase 47
dc.subject potassium cyanide
dc.subject recombinant enzyme
dc.subject sodium azide
dc.subject unclassified drug
dc.subject bacterial protein
dc.subject superoxide dismutase
dc.subject article
dc.subject Bacillus
dc.subject Bacillus anthracis
dc.subject Bacillus cereus
dc.subject Bacillus pseudomycoides
dc.subject Bacillus thuringiensis
dc.subject Bacillus weihenstephanensis
dc.subject bacterial gene
dc.subject bacterial strain
dc.subject binding site
dc.subject controlled study
dc.subject DNA sequence
dc.subject enzyme activation
dc.subject enzyme activity
dc.subject enzyme analysis
dc.subject enzyme inhibition
dc.subject enzyme purification
dc.subject enzyme stability
dc.subject Escherichia coli
dc.subject gene expression
dc.subject gene identification
dc.subject gene isolation
dc.subject genetic analysis
dc.subject genetic code
dc.subject heat tolerance
dc.subject molecular cloning
dc.subject molecular weight
dc.subject nonhuman
dc.subject nucleotide sequence
dc.subject open reading frame
dc.subject pH measurement
dc.subject polyacrylamide gel electrophoresis
dc.subject polymerase chain reaction
dc.subject protein expression
dc.subject sequence alignment
dc.subject sequence homology
dc.subject temperature dependence
dc.subject chemistry
dc.subject enzymology
dc.subject genetics
dc.subject metabolism
dc.subject pH
dc.subject temperature
dc.subject Bacillus anthracis
dc.subject Bacillus cereus
dc.subject Bacillus sp.
dc.subject Bacillus thuringiensis
dc.subject Bacillus
dc.subject Bacterial Proteins
dc.subject Enzyme Stability
dc.subject Hydrogen-Ion Concentration
dc.subject Superoxide Dismutase
dc.subject Temperature
dc.title Cloning, expression, and characterization of thermotolerant manganese superoxide dismutase from Bacillus sp. MHS47
dc.type Article
dc.rights.holder Scopus
dc.identifier.bibliograpycitation International Journal of Molecular Sciences. Vol 12, No.1 (2011), p.844-856
dc.identifier.doi 10.3390/ijms12010844


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