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Published on: October 20, 2019
Differential phenotypic expression of a novel PDHA1 mutation in a female monozygotic twin pair
Alejandro Horga1,2, Catherine E Woodward3, Alberto Mills4
1Department of Neuromuscular Diseases, UCL Queen Square Institute of Neurology and The National Hospital for Neurology and Neurosurgery, London, UK.
Insights
Pyruvate dehydrogenase complex (PDC) deficiency in monozygotic twins with the same mutation showed varying severity. X-chromosome inactivation patterns influenced disease expression, correlating with enzyme activity and clinical outcomes in these rare cases.
Area of Science:
- Biochemistry
- Genetics
- Neurology
Background:
- Pyruvate dehydrogenase complex (PDC) deficiency, often caused by PDHA1 mutations, presents with variable symptoms in heterozygous females.
- The pattern of X-chromosome inactivation is hypothesized to influence disease expressivity.
Observation:
- The study reports the first monozygotic twin pair with PDC deficiency due to a novel de novo heterozygous PDHA1 mutation.
- Both twins exhibited similar initial phenotypes but differed in disease severity, residual PDC activity, and E1α subunit levels.
Findings:
- The less affected twin showed skewed X-chromosome inactivation (75:25 ratio), while the more affected twin had a near 50:50 ratio.
- Clinical and biochemical differences correlated with X-chromosome inactivation patterns.
Implications:
- This case provides strong evidence that X-chromosome inactivation influences phenotypic variability in heterozygous females with PDC deficiency.
- The findings broaden the understanding of PDC deficiency's clinical and genetic spectrum.
Abstract:
Pyruvate dehydrogenase complex (PDC) deficiency caused by mutations in the X-linked PDHA1 gene has a broad clinical presentation, and the pattern of X-chromosome inactivation has been proposed as a major factor contributing to its variable expressivity in heterozygous females. Here, we report the first set of monozygotic twin females with PDC deficiency, caused by a novel, de novo heterozygous missense mutation in exon 11 of PDHA1 (NM_000284.3: c.1100A>T). Both twins presented in infancy with a similar clinical phenotype including developmental delay, episodes of hypotonia or encephalopathy, epilepsy, and slowly progressive motor impairment due to pyramidal, extrapyramidal, and cerebellar involvement. However, they exhibited clear differences in disease severity that correlated well with residual PDC activities (approximately 60% and 20% of mean control values, respectively) and levels of immunoreactive E1α subunit in cultured skin fibroblasts. To address whether the observed clinical and biochemical differences could be explained by the pattern of X-chromosome inactivation, we undertook an androgen receptor assay in peripheral blood. In the less severely affected twin, a significant bias in the relative activity of the two X chromosomes with a ratio of approximately 75:25 was detected, while the ratio was close to 50:50 in the other twin. Although it may be difficult to extrapolate these results to other tissues, our observation provides further support to the hypothesis that the pattern of X-chromosome inactivation may influence the phenotypic expression of the same mutation in heterozygous females and broadens the clinical and genetic spectrum of PDC deficiency.
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