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March 18, 2026Genes0 citationsOpen Access

From Genomic Diagnosis to Personalized RNA Medicine: Advances in Next-Generation Sequencing and N-of-1 Antisense Oligonucleotide Therapies for Rare Genetic Diseases

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PCParis Rodriguez CarstensHMHidenori MoriyamaTYToshifumi Yokota

Key Points

  • The aim is to explore the intersection of next-generation sequencing and antisense oligonucleotide therapies for rare genetic diseases.
  • Review of next-generation sequencing techniques including targeted panels, whole-exome, and whole-genome sequencing.
  • Discussion of antisense oligonucleotide technologies for customizing therapies.
  • Case studies of Milasen and Atipeksen demonstrating clinical applications.
  • Analysis of challenges in delivery and access to personalized treatments.
  • Integration of AI-driven designs and long-read sequencing techniques.
  • Next-generation sequencing allows comprehensive identification of pathogenic variants.
  • Antisense oligonucleotides show promise for correcting genetic defects in individual cases.
  • Landmark cases suggest feasibility, but also raise ethical complexities for personalized treatments.
  • Emerging technologies may enhance the effectiveness and accessibility of RNA therapeutics.

Abstract

Next-generation sequencing (NGS) and antisense oligonucleotide (ASO) technologies are converging to transform the diagnosis and treatment of rare monogenic disorders. NGS enables comprehensive, single-test molecular diagnoses through targeted panels, whole-exome sequencing, and whole-genome sequencing, which together reveal pathogenic variants across coding, intronic, and structural domains. Integration with transcriptomic analyses, including RNA sequencing, further refines genotype–phenotype correlations and identifies splicing aberrations amenable to correction by ASOs. Therapeutic advances now span RNase H1-dependent gapmers for transcript knockdown, splice-modulating phosphorodiamidate morpholino oligomers (PMOs), and peptide/antibody-conjugated PMOs that enhance muscle and cardiac delivery. These platforms underpin the rise in N-of-1 ASO therapies—customized drugs developed for individual patients with unique pathogenic variants. Landmark cases such as Milasen and Atipeksen illustrate the clinical feasibility and ethical complexities of personalized RNA therapeutics, while updated FDA guidance supports expedited, patient-specific investigational pathways. Despite progress, challenges persist in delivery efficiency, long-term efficacy, and equitable access. Emerging approaches—including long-read sequencing, AI-driven oligo design, and improved delivery—promise to extend ASO precision and reach. This review synthesizes current advances linking genomic diagnosis to individualized RNA-targeted interventions, outlining how integrated NGS-ASO pipelines are reshaping the therapeutic landscape for rare genetic diseases.

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Cite This Study

Carstens et al. (2026) studied this question.

synapsesocial.com/papers/69ba431a4e9516ffd37a3fd9https://doi.org/10.3390/genes17030318
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