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Identification and targeted management of a neurodegenerative disorder caused by biallelic mutations in SLC5A6
Alicia B Byrne1,2, Peer Arts1, Steven W Polyak2,3
11Genetics and Molecular Pathology Research Laboratory, Centre for Cancer Biology, An alliance between SA Pathology and the University of South Australia, Adelaide, SA Australia.
Insights
Genetic variants in SLC5A6 cause a rare neurodegenerative disorder. Early diagnosis and triple vitamin therapy (biotin, pantothenate, lipoate) improve neurocognitive and neuromotor function in affected children.
Area of Science:
- Genetics
- Neuroscience
- Biochemistry
Background:
- Early infantile-onset neurodegenerative disorders present significant diagnostic challenges.
- Genetic mutations affecting nutrient transport can lead to severe neurological phenotypes.
Observation:
- A sibling pair presented with progressive neurodegeneration, developmental delay, and epileptic encephalopathy from 12-14 months of age.
- Whole exome sequencing identified compound heterozygous variants in SLC5A6, encoding the sodium-dependent multivitamin transporter (SMVT).
Findings:
- Mutations in SLC5A6 impair the uptake of biotin, pantothenate, and lipoate, essential B-group vitamins.
- Demonstrated impaired biotin uptake by mutant SMVT confirmed variant pathogenicity.
- This is the second report linking biallelic SLC5A6 mutations to this neurodegenerative disorder.
Implications:
- Identifying SLC5A6 mutations enables targeted therapeutic intervention with triple vitamin replacement therapy.
- Early diagnosis and treatment with biotin, pantothenate, and lipoate can significantly improve neurocognitive and neuromotor outcomes.
- This study highlights the critical role of SMVT in brain development and function.
Abstract:
We describe a sibling pair displaying an early infantile-onset, progressive neurodegenerative phenotype, with symptoms of developmental delay and epileptic encephalopathy developing from 12 to 14 months of age. Using whole exome sequencing, compound heterozygous variants were identified in SLC5A6, which encodes the sodium-dependent multivitamin transporter (SMVT) protein. SMVT is an important transporter of the B-group vitamins biotin, pantothenate, and lipoate. The protein is ubiquitously expressed and has major roles in vitamin uptake in the digestive system, as well as transport of these vitamins across the blood-brain barrier. Pathogenicity of the identified variants was demonstrated by impaired biotin uptake of mutant SMVT. Identification of this vitamin transporter as the genetic basis of this disorder guided targeted therapeutic intervention, resulting clinically in improvement of the patient's neurocognitive and neuromotor function. This is the second report of biallelic mutations in SLC5A6 leading to a neurodegenerative disorder due to impaired biotin, pantothenate and lipoate uptake. The genetic and phenotypic overlap of these cases confirms mutations in SLC5A6 as the genetic cause of this disease phenotype. Recognition of the genetic disorder caused by SLC5A6 mutations is essential for early diagnosis and to facilitate timely intervention by triple vitamin (biotin, pantothenate, and lipoate) replacement therapy.
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