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ELFN1 deficiency: The mechanistic basis and phenotypic spectrum of a neurodevelopmental disorder with epilepsy.

Journal articles  - Journal Article
Dore, R; Chang, C-T; Declève, A; Brunori, G; Ludlam, WG; Huang, A; Movahedinia, M; Damseh, NS; Anwar, I; Vahidi Mehrjardi, MY; Ny, A; Alves, C ...
Published in: Genet Med
September 2025

PURPOSE: Synaptic communication deficits are central to many neurodevelopmental disorders. However, for rare monogenic conditions, these disorders remain poorly defined, with limited understanding of their molecular etiology. A homozygous frameshift variant in the synaptic cell adhesion molecule ELFN1 was reported in a family with 3 affected siblings with epileptic encephalopathy, alongside a missense variant of uncertain significance in a cohort study involving a family with intellectual disability. Therefore, we sought to evaluate the role and mechanism of biallelic ELFN1 variants in disease pathogenesis. METHODS: We describe 8 newly identified individuals from 5 unrelated families, all carrying homozygous ELFN1 variants, including frameshift and in-frame deletions. By integrating data from these cases with clinical details from 6 previously reported individuals, we delineate the phenotypic spectrum associated with ELFN1 variants. RESULTS: Clinical features include varying degrees of developmental delay/intellectual disability, epilepsy, and movement disorders. Molecular investigations reveal that these variants disrupt ELFN1 protein trafficking to the cell surface, resulting in loss of function. Functional modeling in mice and zebrafish demonstrates the role of Elfn1 loss in motor activity abnormalities and seizures. CONCLUSION: Our findings establish ELFN1 deficiency as the cause of a distinct, rare neurodevelopmental disorder, providing a foundation for future investigations into its pathophysiology and therapeutic strategies.

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Published In

Genet Med

DOI

EISSN

1530-0366

Publication Date

September 2025

Volume

27

Issue

9

Start / End Page

101506

Location

United States

Related Subject Headings

  • Zebrafish
  • Phenotype
  • Pedigree
  • Neurodevelopmental Disorders
  • Nerve Tissue Proteins
  • Mice
  • Male
  • Intellectual Disability
  • Humans
  • Homozygote
 

Citation

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Dore, R., Chang, C.-T., Declève, A., Brunori, G., Ludlam, W. G., Huang, A., … Maroofian, R. (2025). ELFN1 deficiency: The mechanistic basis and phenotypic spectrum of a neurodevelopmental disorder with epilepsy. Genet Med, 27(9), 101506. https://doi.org/10.1016/j.gim.2025.101506
Dore, Rhys, Chu-Ting Chang, Amber Declève, Gloria Brunori, W Grant Ludlam, Alden Huang, Mojtaba Movahedinia, et al. “ELFN1 deficiency: The mechanistic basis and phenotypic spectrum of a neurodevelopmental disorder with epilepsy.Genet Med 27, no. 9 (September 2025): 101506. https://doi.org/10.1016/j.gim.2025.101506.
Dore R, Chang C-T, Declève A, Brunori G, Ludlam WG, Huang A, et al. ELFN1 deficiency: The mechanistic basis and phenotypic spectrum of a neurodevelopmental disorder with epilepsy. Genet Med. 2025 Sep;27(9):101506.
Dore, Rhys, et al. “ELFN1 deficiency: The mechanistic basis and phenotypic spectrum of a neurodevelopmental disorder with epilepsy.Genet Med, vol. 27, no. 9, Sept. 2025, p. 101506. Pubmed, doi:10.1016/j.gim.2025.101506.
Dore R, Chang C-T, Declève A, Brunori G, Ludlam WG, Huang A, Movahedinia M, Damseh NS, Anwar I, Vahidi Mehrjardi MY, Ny A, Khorrami M, Kheirollahi M, Frederiksen H, Eghbal F, Mirjalili MR, Dehghani M, Karimiani EG, Oreshkov S, Alves C, Striano P, Suri M, Martinez-Agosto J, Ansar M, Zahid M, Akram S, Nelson SF, Undiagnosed Diseases Network, Antonarakis SE, Houlden H, Copmans D, Martemyanov KA, Maroofian R. ELFN1 deficiency: The mechanistic basis and phenotypic spectrum of a neurodevelopmental disorder with epilepsy. Genet Med. 2025 Sep;27(9):101506.

Published In

Genet Med

DOI

EISSN

1530-0366

Publication Date

September 2025

Volume

27

Issue

9

Start / End Page

101506

Location

United States

Related Subject Headings

  • Zebrafish
  • Phenotype
  • Pedigree
  • Neurodevelopmental Disorders
  • Nerve Tissue Proteins
  • Mice
  • Male
  • Intellectual Disability
  • Humans
  • Homozygote