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A mutational analysis of active site residues in trans-3-chloroacrylic acid dehalogenase.


ABSTRACT: trans-3-Chloroacrylic acid dehalogenase (CaaD) catalyzes the hydrolytic dehalogenation of trans-3-haloacrylates to yield malonate semialdehyde by a mechanism utilizing ?Pro-1, ?Arg-8, ?Arg-11, and ?Glu-52. These residues are implicated in a promiscuous hydratase activity where 2-oxo-3-pentynoate is processed to acetopyruvate. The roles of three nearby residues (?Asn-39, ?Phe-39, and ?Phe-50) are unexplored. Mutants were constructed at these positions (?N39A, ?F39A, ?F39T, ?F50A and ?F50Y) and kinetic parameters determined along with those of the ?R8K and ?R11K mutants. Analysis indicates that ?Arg-8, ?Arg-11, and ?Asn-39 are critical for dehalogenase activity whereas ?Arg-11 and ?Phe-50 are critical for hydratase activity. Docking studies suggest structural bases for these observations.

SUBMITTER: Poelarends GJ 

PROVIDER: S-EPMC3779635 | biostudies-literature | 2013 Sep

REPOSITORIES: biostudies-literature

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A mutational analysis of active site residues in trans-3-chloroacrylic acid dehalogenase.

Poelarends Gerrit J GJ   Serrano Hector H   Huddleston Jamison P JP   Johnson William H WH   Whitman Christian P CP  

FEBS letters 20130710 17


trans-3-Chloroacrylic acid dehalogenase (CaaD) catalyzes the hydrolytic dehalogenation of trans-3-haloacrylates to yield malonate semialdehyde by a mechanism utilizing βPro-1, αArg-8, αArg-11, and αGlu-52. These residues are implicated in a promiscuous hydratase activity where 2-oxo-3-pentynoate is processed to acetopyruvate. The roles of three nearby residues (βAsn-39, αPhe-39, and αPhe-50) are unexplored. Mutants were constructed at these positions (βN39A, αF39A, αF39T, αF50A and αF50Y) and ki  ...[more]

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