DmWRNexo is a 3'-5' exonuclease: phenotypic and biochemical characterization of mutants of the Drosophila orthologue of human WRN exonuclease.

The premature human ageing Werner's syndrome is caused by loss or mutation of the WRN helicase/exonuclease. We have recently identified the orthologue of the WRN exonuclease in flies, DmWRNexo, encoded by the CG7670 locus, and showed very high levels of mitotic recombination in a hypomorphic Pi...

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Main Authors: Boubriak, I, Mason, P, Clancy, D, Dockray, J, Saunders, R, Cox, L
Format: Journal article
Language:English
Published: 2009
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author Boubriak, I
Mason, P
Clancy, D
Dockray, J
Saunders, R
Cox, L
author_facet Boubriak, I
Mason, P
Clancy, D
Dockray, J
Saunders, R
Cox, L
author_sort Boubriak, I
collection OXFORD
description The premature human ageing Werner's syndrome is caused by loss or mutation of the WRN helicase/exonuclease. We have recently identified the orthologue of the WRN exonuclease in flies, DmWRNexo, encoded by the CG7670 locus, and showed very high levels of mitotic recombination in a hypomorphic PiggyBac insertional mutant. Here, we report a novel allele of CG7670, with a point mutation resulting in the change of the conserved aspartate (229) to valine. Flies bearing this mutation show levels of mitotic recombination 20-fold higher than wild type. Molecular modelling suggests that D229 lies towards the outside of the molecule distant from the nuclease active site. We have produced recombinant protein of the D229V mutant, assayed its nuclease activity in vitro, and compared activity with that of wild type DmWRNexo and a D162A E164A double active site mutant we have created. We show for the first time that DmWRNexo has 3'-5' exonuclease activity and that mutation within the presumptive active site disrupts exonuclease activity. Furthermore, we show that the D229V mutant has very limited exonuclease activity in vitro. Using Drosophila, we can therefore analyse WRN exonuclease from enzyme activity in vitro through to fly phenotype, and show that loss of exonuclease activity contributes to genome instability.
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spelling oxford-uuid:1f9b84f8-92ae-4069-84cb-5e0f29ba04322022-03-26T11:22:53ZDmWRNexo is a 3'-5' exonuclease: phenotypic and biochemical characterization of mutants of the Drosophila orthologue of human WRN exonuclease.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:1f9b84f8-92ae-4069-84cb-5e0f29ba0432EnglishSymplectic Elements at Oxford2009Boubriak, IMason, PClancy, DDockray, JSaunders, RCox, LThe premature human ageing Werner's syndrome is caused by loss or mutation of the WRN helicase/exonuclease. We have recently identified the orthologue of the WRN exonuclease in flies, DmWRNexo, encoded by the CG7670 locus, and showed very high levels of mitotic recombination in a hypomorphic PiggyBac insertional mutant. Here, we report a novel allele of CG7670, with a point mutation resulting in the change of the conserved aspartate (229) to valine. Flies bearing this mutation show levels of mitotic recombination 20-fold higher than wild type. Molecular modelling suggests that D229 lies towards the outside of the molecule distant from the nuclease active site. We have produced recombinant protein of the D229V mutant, assayed its nuclease activity in vitro, and compared activity with that of wild type DmWRNexo and a D162A E164A double active site mutant we have created. We show for the first time that DmWRNexo has 3'-5' exonuclease activity and that mutation within the presumptive active site disrupts exonuclease activity. Furthermore, we show that the D229V mutant has very limited exonuclease activity in vitro. Using Drosophila, we can therefore analyse WRN exonuclease from enzyme activity in vitro through to fly phenotype, and show that loss of exonuclease activity contributes to genome instability.
spellingShingle Boubriak, I
Mason, P
Clancy, D
Dockray, J
Saunders, R
Cox, L
DmWRNexo is a 3'-5' exonuclease: phenotypic and biochemical characterization of mutants of the Drosophila orthologue of human WRN exonuclease.
title DmWRNexo is a 3'-5' exonuclease: phenotypic and biochemical characterization of mutants of the Drosophila orthologue of human WRN exonuclease.
title_full DmWRNexo is a 3'-5' exonuclease: phenotypic and biochemical characterization of mutants of the Drosophila orthologue of human WRN exonuclease.
title_fullStr DmWRNexo is a 3'-5' exonuclease: phenotypic and biochemical characterization of mutants of the Drosophila orthologue of human WRN exonuclease.
title_full_unstemmed DmWRNexo is a 3'-5' exonuclease: phenotypic and biochemical characterization of mutants of the Drosophila orthologue of human WRN exonuclease.
title_short DmWRNexo is a 3'-5' exonuclease: phenotypic and biochemical characterization of mutants of the Drosophila orthologue of human WRN exonuclease.
title_sort dmwrnexo is a 3 5 exonuclease phenotypic and biochemical characterization of mutants of the drosophila orthologue of human wrn exonuclease
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AT masonp dmwrnexoisa35exonucleasephenotypicandbiochemicalcharacterizationofmutantsofthedrosophilaorthologueofhumanwrnexonuclease
AT clancyd dmwrnexoisa35exonucleasephenotypicandbiochemicalcharacterizationofmutantsofthedrosophilaorthologueofhumanwrnexonuclease
AT dockrayj dmwrnexoisa35exonucleasephenotypicandbiochemicalcharacterizationofmutantsofthedrosophilaorthologueofhumanwrnexonuclease
AT saundersr dmwrnexoisa35exonucleasephenotypicandbiochemicalcharacterizationofmutantsofthedrosophilaorthologueofhumanwrnexonuclease
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