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Molecular Diagnosis of Inherited Coagulation and Bleeding Disorders
José María Bastida1, Rocío Benito2, María Luisa Lozano3
1Department of Hematology, Hospital Universitario de Salamanca, Instituto de Investigación Biomédica de Salamanca, Salamanca, Spain.
Insights
Diagnosing inherited bleeding disorders (IBDs) is complex. High-throughput sequencing (HTS) offers rapid, cost-effective genetic analysis, improving molecular characterization, though challenges remain for rare diseases.
Area of Science:
- Hematology
- Genetics
- Molecular Diagnostics
Background:
- Diagnosing inherited bleeding disorders (IBDs), particularly inherited platelet disorders, is challenging due to diverse clinical presentations, non-specific tests, and numerous genes.
- Accurate molecular diagnosis is crucial for prognosis, clinical management, and identifying malignancy risks in severe IBD cases.
Purpose of the Study:
- To highlight the advancements in molecular diagnostics for inherited bleeding disorders.
- To discuss the impact of high-throughput sequencing (HTS) on the genetic diagnosis of IBDs.
Main Methods:
- Review of current diagnostic challenges in IBDs.
- Discussion of high-throughput sequencing (HTS) technologies including targeted gene sequencing, whole-exome sequencing, and whole-genome sequencing.
- Exploration of the role of HTS in improving molecular characterization of IBDs.
Main Results:
- Sanger sequencing, while definitive, is slow and costly, requiring prior gene identification.
- HTS enables simultaneous, rapid, and more affordable investigation of multiple genes, revolutionizing genetic diagnostics.
- Despite HTS advancements, a significant number of patients with IBDs remain undiagnosed.
Conclusions:
- HTS has significantly improved the molecular diagnosis of IBDs, offering a powerful tool for research and clinical practice.
- Further advancements in laboratory assays, bioinformatics, and multidisciplinary collaboration are essential to overcome diagnostic hurdles in rare and complex IBDs.
Abstract:
Diagnosis of inherited bleeding disorders (IBDs) remains challenging, especially in the case of inherited platelet disorders, due to the heterogeneity of the clinical and laboratory phenotype, the limited specificity of platelet function tests, and the large number of potential culprit genes. Unraveling the underlying molecular defect provides the definitive diagnosis of IBDs, facilitating prognosis and clinical care, which are especially important for severe clinical syndromes and those that may be associated with an increased risk of malignancy. Until recently, Sanger sequencing of candidate genes has been the only method of molecular diagnosis, but this approach is time-consuming and costly and requires phenotype-based identification of any obvious candidate gene(s). Nowadays, high-throughput sequencing (HTS) allows the simultaneous and rapid investigation of multiple genes at a manageable cost. This HTS technology that includes targeted sequencing of prespecified genes, whole-exome sequencing, or whole-genome sequencing, is revolutionizing the genetic diagnosis of human diseases. Through its extensive implementation in research and clinical practice, HTS is rapidly improving the molecular characterization of IBDs. However, despite the availability of this powerful approach, many patients still do not receive a diagnosis. As IBDs are complex and rare diseases, development of more advanced laboratory assays, improvements in bioinformatic pipelines, and the formation of multidisciplinary teams are encouraged to advance our understanding of IBDs.
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