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Updated: Aug 3, 2026

Mutagenesis and Analysis of Genetic Mutations in the GC-rich KISS1 Receptor Sequence Identified in Humans with Reproductive Disorders
Published on: September 4, 2011
Molecular and biochemical characterization of xrs mutants defective in Ku80
B K Singleton1, A Priestley, H Steingrimsdottir
1MRC Cell Mutation Unit, University of Sussex, Brighton, United Kingdom.
Abstract:
The gene product defective in radiosensitive CHO mutants belonging to ionizing radiation complementation group 5, which includes the extensively studied xrs mutants, has recently been identified as Ku80, a subunit of the Ku protein and a component of DNA-dependent protein kinase (DNA-PK). Several group 5 mutants, including xrs-5 and -6, lack double-stranded DNA end-binding and DNA-PK activities. In this study, we examined additional xrs mutants at the molecular and biochemical levels. All mutants examined have low or undetectable levels of Ku70 and Ku80 protein, end-binding, and DNA-PK activities. Only one mutant, xrs-6, has Ku80 transcript levels detectable by Northern hybridization, but Ku80 mRNA was detectable by reverse transcription-PCR in most other mutants. Two mutants, xrs-4 and -6, have altered Ku80 transcripts resulting from mutational changes in the genomic Ku80 sequence affecting RNA splicing, indicating that the defects in these mutants lie in the Ku80 gene rather than a gene controlling its expression. Neither of these two mutants has detectable wild-type Ku80 transcript. Since the mutation in both xrs-4 and xrs-6 cells results in severely truncated Ku80 protein, both are likely candidates to be null mutants. Azacytidine-induced revertants of xrs-4 and -6 carried both wild-type and mutant transcripts. The results with these revertants strongly support our model proposed earlier, that CHO-K1 cells carry a copy of the Ku80 gene (XRCC5) silenced by hypermethylation. Site-directed mutagenesis studies indicate that previously proposed ATP-binding and phosphorylation sites are not required for Ku80 activity, whereas N-terminal deletions of more than the first seven amino acids result in severe loss of activities.
Insights
Radiosensitive CHO mutants defective in DNA repair have mutations in the Ku80 gene. These mutations affect Ku80 protein and DNA-PK activity, confirming Ku80
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Ionizing radiation sensitivity in CHO mutants is linked to DNA repair pathways.
- Complementation group 5 mutants, including xrs mutants, are deficient in DNA-dependent protein kinase (DNA-PK) activity.
- The gene product Ku80, a subunit of the Ku protein, is implicated in DNA repair.
Purpose of the Study:
- To investigate the molecular and biochemical defects in additional xrs mutants.
- To determine the specific mutations responsible for radiosensitivity in these mutants.
- To elucidate the role of Ku80 in DNA repair and DNA-PK complex formation.
Main Methods:
- Molecular analysis of xrs mutants, including Northern hybridization and reverse transcription-PCR (RT-PCR).
- Biochemical assays to measure Ku70/Ku80 protein levels, DNA end-binding, and DNA-PK activities.
- Site-directed mutagenesis to assess the functional importance of specific Ku80 domains.
Main Results:
- All examined xrs mutants showed low or undetectable levels of Ku70/Ku80 protein, DNA end-binding, and DNA-PK activities.
- Mutants xrs-4 and xrs-6 possess altered Ku80 transcripts due to splicing defects in the Ku80 gene.
- Azacytidine-induced revertants of xrs-4 and xrs-6 confirmed a model of a silenced Ku80 gene (XRCC5) in CHO-K1 cells.
- N-terminal deletions in Ku80 beyond the first seven amino acids significantly reduced its activity.
Conclusions:
- Defects in the Ku80 gene are the primary cause of radiosensitivity in the studied xrs mutants.
- Specific mutations affecting RNA splicing in the Ku80 gene lead to truncated, non-functional protein.
- The findings support a model where the Ku80 gene (XRCC5) can be epigenetically silenced via hypermethylation in CHO cells.
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