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Protein Engineering, Vol. 12, No. 1, 63-70, January 1999
© 1999 Oxford University Press

Engineering a chimeric pyrroloquinoline quinone glucose dehydrogenase: improvement of EDTA tolerance, thermal stability and substrate specificity

Hiromi Yoshida, Katsuhiro Kojima, Arief Budi Witarto and Koji Sode1

Department of Biotechnology, Faculty of Technology, Tokyo University of Agriculture and Technology, 2-24-16 Nakamachi, Koganei, Tokyo 184-8588, Japan

An engineered Escherichia coli PQQ glucose dehydrogenase (PQQGDH) with improved enzymatic characteristics was constructed by substituting and combining the gene-encoding protein regions responsible for EDTA tolerance, thermal stability and substrate specificity. The protein region responsible for complete EDTA tolerance in Acinetobacter calcoaceticus, which is recognized as the indicator of high stability in co-factor binding, was elucidated. The region is located between 32 and 59% from the N-terminus of A.calcoaceticus PQQGDH(A27 region) and also corressponds to the same position from 32 to 59% from the N-terminus in E.coli PQQGDH, though E.coli PQQGDH is EDTA sensitive. We previously reported that the C-terminal 3% region of A.calcoaceticus (A3 region) played an important role in the increase of thermal stability, and that His775Asn substitution in E.coli PQQGDH resulted in an increase in the substrate specificity of E.coli PQQGDH towards glucose. Based on these findings, chimeric and/or mutated PQQGDHs, E97A3 H775N, E32A27E41 H782N, E32A27E38A3 and E32A27E38A3 H782N were constructed to investigate the compatibility of two protein regions and one amino acid substitution. His775 substitution to Asn corresponded to His782 substitution to Asn (H782N) in chimeric enzymes harbouring the A27 region. Since all the chimeric PQQGDHs harbouring the A27 region were EDTA tolerant, the A27 region was found to be compatible with the other region and substituted amino acid responsible for the improvement of enzymatic properties. The contribution of the A3 region to thermal stability complemented the decrease in the thermal stability due to the His775 or His782 substitution to Asn. E32A27E38A3 H782N, which harbours all the above mentioned three regions, showed improved EDTA tolerance, thermal stability and substrate specificity. These results suggested a strategy for the construction of a semi-artificial enzyme by substituting and combining the gene-encoding protein regions responsible for the improvement of enzyme characteristics. The characteristics of constructed chimeric PQQGDH are discussed based on the predicted model, ß-propeller structure.

Keywords: PQQ glucose dehydrogenase/chimeric enzymes/biosensor/substrate specificity/thermal stability

1 To whom correspondence should be addressed


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