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February 25, 2026European Journal of Human Genetics0 citationsOpen Access

Integrating germline and tumor sequencing to improve hereditary cancer diagnosis and care

RVRicharda M. de VoerLVLaura Valle

Key Points

  • The aim is to explore the integration of tumor molecular data with germline genetic information to improve hereditary cancer management.
  • Reviewed advancements in genome-wide sequencing for hereditary cancers.
  • Assessed features like microsatellite instability and tumor mutational burden in tumors.
  • Evaluated the role of tumor sequencing in identifying germline variants and somatic changes.
  • Identified actionable mutations in oncogenes that can be targeted with therapies.
  • Confirmed that high tumor mutational burden reflects DNA repair deficiencies.
  • Showed that specific mutational signatures can indicate defective DNA repair pathways.

Abstract

Abstract A subset of cancers arises due to inherited germline pathogenic variants in specific genes, known as hereditary cancers. These genes typically include tumor suppressors, DNA repair and replication fidelity genes, and occasionally oncogenes. In most hereditary cancer syndromes, Knudson’s two-hit hypothesis applies, where a second somatic event inactivates the remaining allele of a tumor suppressor or DNA repair gene, leading to tumorigenesis. Advancements in genome-wide sequencing have significantly enhanced our understanding of the mutational processes involved in hereditary cancers. In particular, the assessment of microsatellite instability (MSI), tumor mutational burden (TMB), and mutational signatures has emerged as a powerful tool for the identification of hereditary tumors. Tumors with high or ultra-high TMB often reflect underlying DNA repair deficiencies, while specific mutational signatures can pinpoint the defective pathway. These tumor mutational features are especially informative in syndromes involving mismatch repair (MMR), homologous recombination (HR), base excision repair (BER), nucleotide excision repair (NER), and polymerase proofreading. Moreover, tumor sequencing aids in the interpretation of germline variants, identifies somatic mosaicism, and helps differentiate hereditary from sporadic cancers. Additionally, tumor molecular features associated with DNA repair deficiencies offer insights into personalized therapies, such as the use of PARP inhibitors for BRCA1/2 -deficient tumors and immune checkpoint inhibitors for MMR- and polymerase proofreading-deficient cancers. Tumor profiling also uncovers actionable mutations in oncogenes like RET and VHL , which can be targeted with specific therapies. This review explores the integration of tumor molecular features with germline genetic data to refine diagnosis, risk assessment, and therapeutic strategies in hereditary cancer.

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Cite This Study

Voer et al. (2026) studied this question.

synapsesocial.com/papers/699e91eaf5123be5ed04fc7ahttps://doi.org/10.1038/s41431-026-02046-5
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