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Published on: January 29, 2018
BRF1 mutations in a family with growth failure, markedly delayed bone age, and central nervous system anomalies
Y H Jee1, N Sowada2, T C Markello3
1Section on Growth and Development, Eunice Kennedy Shriver National Institute of Child Health and Human Development, National Institutes of Health, Bethesda, Maryland, USA.
Insights
Genetic mutations in BRF1 cause cerebellar-facial-dental syndrome, leading to significant linear growth failure and delayed bone age in affected children. These growth issues can manifest before other neurological symptoms.
Area of Science:
- Genetics
- Pediatrics
- Endocrinology
Background:
- Genetic abnormalities frequently cause linear growth failure, impacting the growth plate and potentially other organs.
- A family presented with two siblings exhibiting distinct clinical manifestations of growth impairment.
Observation:
- A 10-year-old boy showed impaired linear growth, delayed bone age, dysmorphic facies, cognitive impairment, and CNS anomalies.
- His younger brother presented solely with growth failure at 10 months of age.
Findings:
- Exome sequencing revealed compound heterozygous variants in the RNA polymerase III transcription initiation factor 90 kDa subunit (BRF1) gene in both siblings.
- Identified variants included a missense mutation (p.P292R) and a frameshift mutation (p.C184Sfs), with the latter predicted to cause mRNA decay or protein truncation.
- Functional studies showed the p.P292R mutation impaired BRF1's ability to rescue yeast lacking the gene.
Implications:
- These findings confirm BRF1 mutations cause cerebellar-facial-dental syndrome.
- The study highlights that linear growth failure can be an early clinical sign, preceding neurological abnormalities.
- A severely delayed bone age may serve as a crucial diagnostic indicator for this syndrome.
Abstract:
Linear growth failure can be caused by many different genetic abnormalities. In many cases, the genetic defect affects not only the growth plate, causing short stature but also other organs/tissues causing additional clinical abnormalities. A 10-year old boy was evaluated for impaired postnatal linear growth (height 113.3 cm, -4.6 SDS), a bone age that was delayed by 5 years, dysmorphic facies, cognitive impairment, and central nervous system anomalies. His younger brother, presented only with growth failure at 10 months of age. Exome sequencing identified compound heterozygous variants in the gene encoding RNA polymerase III transcription initiation factor 90 kDa subunit (BRF1) in both affected siblings: a missense mutation (c.875 C > G:p.P292R) and a frameshift mutation (c.551delG:p.C184Sfs). The frameshift mutation is expected to lead to nonsense-mediated mRNA decay (NMD) and/or to protein truncation. Expression of BRF1 with the P292R missense mutation failed to rescue yeast lacking BRF1. The findings confirm a previous report showing that biallelic mutations in BRF1 cause cerebellar-facial-dental syndrome. Our findings also help define the growth phenotype, indicating that the linear growth failure can become clinically evident before the neurological abnormalities and that a severely delayed bone age may serve as a diagnostic clue.
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