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Published on: August 20, 2019
Bi-allelic loss-of-function variants in BCAS3 cause a syndromic neurodevelopmental disorder
Holger Hengel1, Shabab B Hannan1, Sarah Dyack2
1Department of Neurology and Hertie-Institute for Clinical Brain Research, University of Tübingen, 72076 Tübingen, Germany; German Center of Neurodegenerative Diseases, 72076 Tübingen, Germany.
Abstract:
BCAS3 microtubule-associated cell migration factor (BCAS3) is a large, highly conserved cytoskeletal protein previously proposed to be critical in angiogenesis and implicated in human embryogenesis and tumorigenesis. Here, we established BCAS3 loss-of-function variants as causative for a neurodevelopmental disorder. We report 15 individuals from eight unrelated families with germline bi-allelic loss-of-function variants in BCAS3. All probands share a global developmental delay accompanied by pyramidal tract involvement, microcephaly, short stature, strabismus, dysmorphic facial features, and seizures. The human phenotype is less severe compared with the Bcas3 knockout mouse model and cannot be explained by angiogenic defects alone. Consistent with being loss-of-function alleles, we observed absence of BCAS3 in probands' primary fibroblasts. By comparing the transcriptomic and proteomic data based on probands' fibroblasts with those of the knockout mouse model, we identified similar dysregulated pathways resulting from over-representation analysis, while the dysregulation of some proposed key interactors could not be confirmed. Together with the results from a tissue-specific Drosophila loss-of-function model, we demonstrate a vital role for BCAS3 in neural tissue development.
Insights
Loss-of-function variants in BCAS3 cause a neurodevelopmental disorder. This microtubule-associated protein is vital for neural development, impacting global development and brain structure.
Area of Science:
- Genetics
- Neuroscience
- Cell Biology
Background:
- BCAS3 (microtubule-associated cell migration factor) is a conserved cytoskeletal protein.
- Previous research suggested roles in angiogenesis, embryogenesis, and tumorigenesis.
Observation:
- Germline bi-allelic loss-of-function variants in BCAS3 were identified in 15 individuals across eight families.
- Probands presented with global developmental delay, pyramidal tract involvement, microcephaly, short stature, strabismus, dysmorphic features, and seizures.
Findings:
- Absence of BCAS3 protein confirmed loss-of-function in probands' fibroblasts.
- Transcriptomic and proteomic analyses revealed dysregulated pathways in human fibroblasts and a Bcas3 knockout mouse model.
- A Drosophila model further supported BCAS3's crucial role in neural tissue development.
Implications:
- BCAS3 variants are causative for a novel neurodevelopmental disorder.
- The findings highlight BCAS3's essential function in human neural development, distinct from its previously proposed angiogenic roles.
- This study expands the understanding of genetic factors contributing to neurodevelopmental disorders.
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