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ALG13-CDG with Infantile Spasms in a Male Patient Due to a De Novo ALG13 Gene Mutation
Wienke H Galama1, Sandra L J Verhaagen-van den Akker2, Dirk J Lefeber3
1Department of Neurology/Pediatric Neurology, Canisius Wilhelmina Hospital, Nijmegen, The Netherlands. w.galama@cwz.nl.
Insights
This study reports the first boy with epileptic encephalopathy due to an ALG13 gene mutation, previously thought lethal in males. Early diagnosis requires genetic testing, as standard glycosylation studies may appear normal.
Area of Science:
- Genetics
- Neurology
- Biochemistry
Background:
- Congenital disorders of glycosylation (CDG) are a group of inherited metabolic diseases.
- ALG13 gene mutations are associated with CDG type I (CDG-I), typically presenting in females.
- The specific c.320A>G mutation in ALG13 was previously considered lethal in males.
Purpose of the Study:
- To report the first documented case of a male infant with epileptic encephalopathy caused by the c.320A>G mutation in the ALG13 gene.
- To highlight the diagnostic challenges and the importance of genetic testing in suspected CDG-I cases with atypical presentation.
Main Methods:
- Clinical case presentation of a male infant with developmental delay and infantile spasms.
- Neurological examinations, electroencephalogram (EEG), and cerebral magnetic resonance imaging (MRI).
- Comprehensive metabolic screening, transferrin isoelectric focusing, mass spectrometry, and whole-exome sequencing.
Main Results:
- The patient presented with severe developmental delay, infantile spasms, hypotonia, and dysmorphic features.
- Whole-exome sequencing identified a de novo c.320A>G mutation in the X-chromosome-linked ALG13 gene.
- Transferrin mass spectrometry showed only minor glycosylation abnormalities, and initial glycosylation studies were normal.
Conclusions:
- This case expands the known phenotype of ALG13-CDG to include males with epileptic encephalopathy.
- The c.320A>G mutation can cause severe neurological symptoms in males, contrary to previous assumptions.
- Genetic analysis is crucial for diagnosing ALG13-CDG, especially when glycosylation studies yield near-normal results.
Abstract:
A boy presented at the age of 3.5 months with a developmental delay. He developed infantile spasms with hypsarrhytmia on EEG 1 month later. Additional symptoms were delayed visual development, asymmetrical hearing loss, hypotonia, and choreoathetoid movements. He also had some dysmorphic features and was vulnerable for infections. He was treated successively with vigabatrin, prednisolone, valproic acid, nitrazepam, and lamotrigine without a lasting clinical effect, but showed a treatment response to levetiracetam. Cerebral MRI showed hypoplasia of the corpus callosum and a mild delay in myelination. Further investigations including metabolic screening and glycosylation studies by transferrin isoelectric focusing were all considered to be normal. Whole-exome sequencing identified a de novo mutation in the ALG13 gene (c.320A>G, p.(Asn107Ser)). Mutations in this gene, which is located on the X-chromosome, are associated with congenital disorders of glycosylation type I (CDG-I). Mass spectrometric analysis of transferrin showed minor glycosylation abnormalities. The c.320A>G mutation in ALG13 has until now only been described in girls and was thought to be lethal for boys. All girls with this specific mutation presented with a similar phenotype of developmental delay and severe early onset epilepsy. In two girls glycosylation studies were performed which showed a normal glycosylation pattern. This is the first boy presenting with an epileptic encephalopathy caused by the c.320A>G mutation in the ALG13 gene. Since glycosylation studies are near-normal in patients with this mutation, the diagnosis of ALG13-CDG can be missed if genetic studies are not performed.
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