In silico Analysis of CHD4 Mutations Reveals Domain-Specific Impacts on Cardiovascular Disorders Among Patients With

Apolonia Novillo1,2, Marta Ysbert3, Rocío Brea3

  • 1Department of Cell Biology and Histology, Faculty of Medicine, Complutense University of Madrid, Madrid, Spain, ucm.es.

Human Mutation
|February 27, 2026
PubMed

Insights

Chromodomain-helicase-DNA-binding protein 4 (CHD4) mutations cause rare cardiovascular diseases. This study links 36 CHD4 mutations to heart and vascular defects, identifying domain-specific impacts and aiding future diagnostics.

Area of Science:

  • Genetics
  • Molecular Biology
  • Cardiovascular Biology

Background:

  • Chromodomain-helicase-DNA-binding protein 4 (CHD4) is crucial for cardiovascular development and function.
  • Pathogenic CHD4 mutations are associated with severe cardiac and vascular anomalies, but variant classification is challenging due to unique mutations.

Purpose of the Study:

  • To connect recent CHD4 structure-function insights with 36 pathogenic mutations found in rare diseases.
  • To classify CHD4 variants using ACMG guidelines and integrated evidence.
  • To investigate genotype-phenotype correlations and domain-specific roles in cardiovascular disease.

Main Methods:

  • Collected data on 36 pathogenic CHD4 mutations from rare disease cases.
  • Classified variants (missense, insertion, deletion, splice-site) using ACMG guidelines, clinical, functional, population, and in silico (REVEL) data.
  • Cross-referenced variants with the ClinVar database.
  • Analyzed variant enrichment in specific domains (e.g., ATPase/helicase) and correlated with phenotypes.

Main Results:

  • Classified 36 CHD4 variants: 7 pathogenic, 19 likely pathogenic, 1 likely benign, 6 VUS.
  • Identified pathogenic/likely pathogenic variants enriched in the ATPase/helicase domain, suggesting impaired motor activity.
  • Observed domain-specific associations: ATPase/helicase domain variants linked to congenital heart defects, while N- and C-terminal variants associated with vascular phenotypes.
  • Linked specific variants (e.g., C467Y, M202I, Y1345D) to severe heart malformations.

Conclusions:

  • CHD4 is a key regulator of cardiovascular pathophysiology.
  • Variant location within CHD4 influences the type of cardiovascular defect (heart vs. vascular).
  • Further functional studies are needed to fully elucidate CHD4's molecular mechanisms for diagnostic and therapeutic advancements.

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