4.4 Article

Redesigning the Active Site of Transaldolase TalB from Escherichia coli: New Variants with Improved Affinity towards Nonphosphorylated Substrates

期刊

CHEMBIOCHEM
卷 11, 期 5, 页码 681-690

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/cbic.200900720

关键词

biocatalysis; protein engineering; saturation mutagenesis; substrate specificity; transaldolase

资金

  1. Deutsche Forschungsgemeinschaft [SPP1170/Sp503/4-2]
  2. Swedish Research Council
  3. Spanish MCINN [CTQ2006-01345/BQU]
  4. Generalitat de Catalunya [DURSI 2005-SGR-00698]
  5. ESF [CM0701]

向作者/读者索取更多资源

Recently, we reported on a transaldolase B variant (TalB F178Y) that is able to use dihydroxyacetone (DHA) as donor in aldol reactions. In a second round of. protein engineering, we aimed, at improving the affinity of this variant towards nonphosphorylated acceptor aldehydes, that is, glyceraldehyde (GA). The anion binding site was identified in the X-ray structure of TalB F178Y where a sulfate ion from the buffer was bound in the, active site. Therefore, we performed site-directed saturation mutagenesis at three residues forming the putative phosphate binding site, Arg181, Ser226 and Arg228. The focused libraries were screened for the formation of D-fructose from DHA and D,L-GA by using an adjusted colour assay. The best results with respect to the synthesis of D-fructose were achieved with the TalB F178Y/R181E variant, which exhibited an at least fivefold increase in affinity towards D,L-GA (K-M=24 mm). We demonstrated that this double mutant can use D-GA, glycolaldehyde and the L-isomer, L-GA, as acceptor substrates. This resulted in, preparative synthesis of D-fructose, D-xylulose and L-sorbose when DHA was used as donor. Hence, we engineered a DHA-dependent aldolase that can synthesise the formation of poly-hydroxylated compounds from simple and cheap substrates at preparative scale.

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