Biallelic VPS41 Variants in Autosomal Recessive Spinocerebellar Ataxia 29 Resolved by Long‐Read Sequencing and RNA Analysis

BACKGROUND: Biallelic variants in VPS41, encoding a subunit of the HOPS complex, cause autosomal recessive spinocerebellar ataxia 29 (SCAR29), a rare neurodevelopmental disorder with an incompletely defined phenotypic and molecular spectrum. METHODS: We investigated a 24-year-old man with cerebellar ataxia, hypotonia, and intellectual disability. Exome sequencing identified four candidate VPS41 variants. Because maternal DNA was unavailable, long-read genome sequencing was performed to determine allelic configuration, followed by RNA and protein analyses. RESULTS: In addition to typical SCAR29 features, the patient showed previously unreported findings, including swan-neck deformities and pes cavus. Long-read genome sequencing demonstrated that two VPS41 variants were in trans. RNA analysis revealed distinct splicing consequences: one allele produced an out-of-frame transcript predicted to undergo nonsense-mediated decay, whereas the other generated an in-frame exon-skipped transcript. These complementary defects reduced VPS41 expression at both transcript and protein levels, supporting pathogenicity and variant reclassification. CONCLUSION: Our findings expand the phenotypic spectrum of VPS41-related disease and highlight the value of long-read allelic resolution in clarifying pathogenic mechanisms in rare genetic disorders.

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Journal
Molecular Genetics & Genomic Medicine
Published
2026-08-27
DOI
https://doi.org/10.1002/mgg3.70285
Primary Topic
Genetic Neurodegenerative Diseases
Type
article
Field-Weighted Citation Impact
0.00

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article

Biallelic VPS41 Variants in Autosomal Recessive Spinocerebellar Ataxia 29 Resolved by Long‐Read Sequencing and RNA Analysis

Yu Kobayashi, Jun Tohyama, Tomoo Ogi, Shinji Saitoh et al.
Molecular Genetics & Genomic Medicine
Genetic Neurodegenerative Diseases
article

Biallelic VPS41 Variants in Autosomal Recessive Spinocerebellar Ataxia 29 Resolved by Long‐Read Sequencing and RNA Analysis

Yu Kobayashi, Jun Tohyama, Tomoo Ogi, Shinji Saitoh, Takeshi Ikeuchi, Koyo Tsujikawa, Yosuke Nishio, Hiromi Nyuzuki, Kotaro Tsukada, Yasuyoshi Oka, Natsuki Nakamura, Yuka Nakazawa, Risako Ishioka, Takeshi Ono, Hironobu Morinaga, Mie Inaba, Ai Fukushima, Masaki Miura
article en

Abstract

BACKGROUND: Biallelic variants in VPS41, encoding a subunit of the HOPS complex, cause autosomal recessive spinocerebellar ataxia 29 (SCAR29), a rare neurodevelopmental disorder with an incompletely defined phenotypic and molecular spectrum. METHODS: We investigated a 24-year-old man with cerebellar ataxia, hypotonia, and intellectual disability. Exome sequencing identified four candidate VPS41 variants. Because maternal DNA was unavailable, long-read genome sequencing was performed to determine allelic configuration, followed by RNA and protein analyses. RESULTS: In addition to typical SCAR29 features, the patient showed previously unreported findings, including swan-neck deformities and pes cavus. Long-read genome sequencing demonstrated that two VPS41 variants were in trans. RNA analysis revealed distinct splicing consequences: one allele produced an out-of-frame transcript predicted to undergo nonsense-mediated decay, whereas the other generated an in-frame exon-skipped transcript. These complementary defects reduced VPS41 expression at both transcript and protein levels, supporting pathogenicity and variant reclassification. CONCLUSION: Our findings expand the phenotypic spectrum of VPS41-related disease and highlight the value of long-read allelic resolution in clarifying pathogenic mechanisms in rare genetic disorders.

Molecular Genetics & Genomic MedicineVol. 14(9)
University of Niigata Prefecture (JP), Nagoya City University (JP), Nagoya University Hospital (JP), Niigata University Medical and Dental Hospital (JP), Nishi Niigata Chuo National Hospital (JP), Aichi Developmental Disability Center (JP), Nagoya University (JP), Niigata University (JP)
Japan Agency for Medical Research and Development, Japan Society for the Promotion of Science
Good health and well-being
Openalex Percentile: Top 16%
Genetic Neurodegenerative Diseases
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