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Published on: May 21, 2010
Genetic analysis of undiagnosed ataxia-telangiectasia-like disorders
Ayako Kashimada1, Setsuko Hasegawa1, Toshihiro Nomura1
1Department of Pediatrics and Developmental Biology, Tokyo Medical and Dental University, Tokyo, Japan.
Objectives:
Defects in DNA damage responses or repair mechanisms cause numerous rare inherited diseases, referred to as "DNA-repair defects" or "DNA damage deficiency", characterized by neurodegeneration, immunodeficiency, and/or cancer predisposition. Early accurate diagnosis is important for informing appropriate clinical management; however, diagnosis is frequently challenging and can be delayed, due to phenotypic heterogeneity. Comprehensive genomic analysis could overcome this disadvantage. The objectives of this study were to determine the prevalence of ataxia-telangiectasia (A-T) and A-T-like DNA-repair defects in Japan and to determine the utility of comprehensive genetic testing of presumptively diagnosed patients in facilitating early diagnosis.
Methods:
A nationwide survey of diseases presumably caused by DNA-repair defects, including A-T, was performed. Additionally, comprehensive next-generation sequencing (NGS) analysis, targeting known disease-causing genes, was conducted.
Results:
Sixty-three patients with A-T or other diseases with characteristics of DNA-repair defects were identified. Thirty-four patients were genetically or clinically definitively diagnosed with A-T (n = 22) or other DNA-repair defects (n = 12). Genetic analysis of 17 presumptively diagnosed patients revealed one case of ataxia with oculomotor apraxia type 1 (AOA1); one ataxia with oculomotor apraxia type 2 (AOA2); two types of autosomal dominant spinocerebellar ataxia (SCA5, SCA29); two CACNA1A-related ataxias; one microcephaly with or without chorioretinopathy, lymphedema, or mental retardation (MCLMR); and one autosomal dominant KIF1A-related disorder with intellectual deficit, cerebellar atrophy, spastic paraparesis, and optic nerve atrophy. The diagnostic yield was 58.8%.
Conclusion:
Comprehensive genetic analysis of targeted known disease-causing genes by NGS is a powerful diagnostic tool for subjects with indistinguishable neurological phenotypes resembling DNA-repair defects.
Insights
Comprehensive genetic testing aids early diagnosis of rare DNA-repair defects, like ataxia-telangiectasia (A-T), which often present with overlapping neurological symptoms. This study highlights the utility of next-generation sequencing in identifying these conditions.
Area of Science:
- Genetics
- Neurology
- Rare Diseases
Background:
- Defects in DNA damage response/repair cause rare inherited diseases with neurodegeneration, immunodeficiency, and cancer risk.
- Early diagnosis is crucial for management but often delayed due to varied symptoms.
- Comprehensive genomic analysis offers a potential solution for accurate and timely diagnosis.
Purpose of the Study:
- To determine the prevalence of ataxia-telangiectasia (A-T) and similar DNA-repair defects in Japan.
- To assess the effectiveness of comprehensive genetic testing in facilitating early diagnosis of these conditions.
Main Methods:
- Conducted a nationwide survey of suspected DNA-repair defect diseases, including A-T.
- Performed comprehensive next-generation sequencing (NGS) analysis targeting known disease-causing genes.
Main Results:
- Identified 63 patients with A-T or other DNA-repair defects.
- Confirmed diagnoses in 34 patients: 22 with A-T and 12 with other DNA-repair defects.
- Genetic analysis of 17 presumed cases identified various rare genetic ataxias and disorders, with a diagnostic yield of 58.8%.
Conclusions:
- Comprehensive genetic analysis using NGS is a powerful tool for diagnosing neurological phenotypes resembling DNA-repair defects.
- NGS facilitates early and accurate diagnosis, overcoming challenges posed by phenotypic heterogeneity.
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