A Novel Frameshift Mutation in Abnormal Spindle-Like Microcephaly (ASPM) Gene in an Iranian Patient with Primary
Afsaneh Bazgir1, Mehdi Agha Gholizadeh1, Faezeh Sarvar1
1Department of Medical Genetics, Fardis Central Lab, Alborz, Iran.
Abstract:
Autosomal recessive primary microcephaly (MCPH) is a rare genetic disorder, leading to the defect of neurogenic brain development. Individuals with MCPH reveal reduced head circumference and intellectual disability. Several MCPH loci have been identified from several populations. Genetic heterogeneity of this disorder represents molecular testing challenge. An 8 yr old female, born from consanguineous parents, was attended to Fardis Central Lab, Alborz, Iran. Based on the reduced circumference and intellectual disability, MCPH was diagnosed. Whole exome sequencing of the patient identified a novel homozygous frameshift mutation (c.2738dupT, p.Cys914fs) in exon 9 Abnormal Spindle-like Microcephaly (ASPM) gene. By Sanger sequencing, segregation analysis showed that both parents were heterozygous carriers for this variant. The novel frameshift mutation likely truncates the protein, resulting in loss of normal function ASPM in homozygous mutation carriers. The study might add a new pathogenic variant in mutations of the ASPM gene as a causative variant in patients with MCPH and might be helpful in genetic counseling of consanguineous families.
Insights
Primary microcephaly (MCPH) is a rare genetic disorder causing intellectual disability. A novel ASPM gene mutation was identified in an Iranian family, aiding genetic counseling for affected relatives.
Area of Science:
- Genetics
- Neuroscience
Background:
- Autosomal recessive primary microcephaly (MCPH) is a rare genetic disorder impacting neurodevelopment, characterized by reduced head circumference and intellectual disability.
- Genetic heterogeneity in MCPH presents challenges for molecular diagnostics.
Observation:
- An 8-year-old female from consanguineous parents in Iran was diagnosed with MCPH based on clinical presentation.
- Whole exome sequencing revealed a novel homozygous frameshift mutation (c.2738dupT, p.Cys914fs) in the ASPM gene.
Findings:
- Segregation analysis confirmed parental heterozygosity for the identified ASPM mutation.
- The novel mutation is predicted to cause protein truncation, leading to loss of ASPM function in affected individuals.
Implications:
- This finding adds a new pathogenic variant to the spectrum of ASPM mutations associated with MCPH.
- The identification of this novel mutation can assist in genetic counseling for families with MCPH, particularly those with consanguineous relationships.
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