Resolving structural variants in hemophilia: insights from long-read sequencing and molecular and clinical implications.

Structural variants (SVs) in F8 and F9 are major causes of severe hemophilia, yet their mechanistic basis and clinical impact remain incompletely understood. We aimed to implement an integrated workflow to define hemophilia-associated SVs at nucleotide resolution and to explore genomic signatures and clinical correlates. We analyzed 25 unrelated families non-recurrent SVs with hemophilia A (HA;n=20) or hemophilia B (HB;n=5) using genome walking, short-read sequencing, and nanopore whole-genome long-read sequencing (WGS-LRS). In HA, we resolved 15 partial F8 deletions (from 249 bp to ~0.5 Mb), one tandem duplication, and four complex rearrangements. In HB, we characterized three large F9 deletions (including one partial and two whole-gene deletions, up to >4 Mb) and two pathogenic exonic Alu insertions. In four cases, MLPA calls were incomplete or misleading, whereas WGS-LRS uncovered breakpoints and structures missed by standard workflows. Notably, repetitive elements were present at least one breakpoint in nearly all SVs (22/25), implicating local genomic architecture in SV formation. Breakpoint-junction analysis revealed short microhomologies in most events (F8: 18/20; F9: 3/5), supporting microhomology-mediated end joining or replication-based mechanisms as predominant pathways. WGS-LRS enabled methylation-based assessment of skewed X-inactivation in a carrier with a Xq28 deletion. Inhibitors were reported in 4/16 and 3/4 evaluable HA and HB cases, respectively. Overall, this study provides the first systematic application of nanopore WGS-LRS as a transformative genomic diagnostic approach for comprehensive SV analysis in hemophilia, enabling definitive SV delineation, correcting misclassification by conventional testing, and supporting mechanism-informed interpretation to improve molecular diagnosis and genetic counseling.

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Publication Details

Journal
Blood Advances
Published
2026-09-30
DOI
https://doi.org/10.1182/bloodadvances.2026021414
Primary Topic
Hemophilia Treatment and Research
Type
article
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article

Resolving structural variants in hemophilia: insights from long-read sequencing and molecular and clinical implications.

Belén de la Morena‐Barrio, Javier Corral, Inmaculada Soto, María del Carmen Gómez del Castillo Solano et al.
Blood Advances
Hemophilia Treatment and Research
article

Resolving structural variants in hemophilia: insights from long-read sequencing and molecular and clinical implications.

Belén de la Morena‐Barrio, Javier Corral, Inmaculada Soto, María del Carmen Gómez del Castillo Solano, Francisco José López‐Jaime, María Falcón‐Rodríguez, Francisco Vidal, Rubén Berrueco, Laia Closa, Elisenda Farssac, Irene Corrales, Ramiro Nuñez, Mario A. Ríos de Paz, Natàlia Comes, Carlos Hobeich, Carmen Altisent, Nina Borràs, Iris Garcia‐Martínez, Marina Carrasco, Violeta Martínez‐Robles, Rafael Parra, Carina Lera, Noemí González, Lorena Ramírez, Olga Benítez
article en

Abstract

Structural variants (SVs) in F8 and F9 are major causes of severe hemophilia, yet their mechanistic basis and clinical impact remain incompletely understood. We aimed to implement an integrated workflow to define hemophilia-associated SVs at nucleotide resolution and to explore genomic signatures and clinical correlates. We analyzed 25 unrelated families non-recurrent SVs with hemophilia A (HA;n=20) or hemophilia B (HB;n=5) using genome walking, short-read sequencing, and nanopore whole-genome long-read sequencing (WGS-LRS). In HA, we resolved 15 partial F8 deletions (from 249 bp to ~0.5 Mb), one tandem duplication, and four complex rearrangements. In HB, we characterized three large F9 deletions (including one partial and two whole-gene deletions, up to >4 Mb) and two pathogenic exonic Alu insertions. In four cases, MLPA calls were incomplete or misleading, whereas WGS-LRS uncovered breakpoints and structures missed by standard workflows. Notably, repetitive elements were present at least one breakpoint in nearly all SVs (22/25), implicating local genomic architecture in SV formation. Breakpoint-junction analysis revealed short microhomologies in most events (F8: 18/20; F9: 3/5), supporting microhomology-mediated end joining or replication-based mechanisms as predominant pathways. WGS-LRS enabled methylation-based assessment of skewed X-inactivation in a carrier with a Xq28 deletion. Inhibitors were reported in 4/16 and 3/4 evaluable HA and HB cases, respectively. Overall, this study provides the first systematic application of nanopore WGS-LRS as a transformative genomic diagnostic approach for comprehensive SV analysis in hemophilia, enabling definitive SV delineation, correcting misclassification by conventional testing, and supporting mechanism-informed interpretation to improve molecular diagnosis and genetic counseling.

Blood Advances
Universitat Autònoma de Barcelona (ES), Hospital Sant Joan de Déu Barcelona (ES), Hospital Universitario Insular de Gran Canaria (ES), Hospital de Sant Pau (ES), Hospital Universitario Nuestra Señora de Candelaria (ES), Vall d'Hebron Institut de Recerca (ES), Hospital Regional Universitario de Málaga (ES), Centro Regional de Hemodonación (ES), Vall d'Hebron Hospital Universitari (ES), Hospital Universitario Central de Asturias (ES), Complexo Hospitalario Universitario A Coruña (ES), Banc de Sang i Teixits (ES), Hospital Universitario Virgen del Rocío (ES), Hospital Universitario de León (ES), Universidad de Murcia (ES)
Openalex Percentile: Top 12%
Hemophilia Treatment and Research
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