Bi-allelic loss-of-function variants in PPFIBP1 cause a neurodevelopmental disorder with microcephaly, epilepsy, and
Erik Rosenhahn1, Thomas J O'Brien2, Maha S Zaki3
1Institute of Human Genetics, University of Leipzig Medical Center, 04103 Leipzig, Germany.
Abstract:
PPFIBP1 encodes for the liprin-β1 protein, which has been shown to play a role in neuronal outgrowth and synapse formation in Drosophila melanogaster. By exome and genome sequencing, we detected nine ultra-rare homozygous loss-of-function variants in 16 individuals from 12 unrelated families. The individuals presented with moderate to profound developmental delay, often refractory early-onset epilepsy, and progressive microcephaly. Further common clinical findings included muscular hyper- and hypotonia, spasticity, failure to thrive and short stature, feeding difficulties, impaired vision, and congenital heart defects. Neuroimaging revealed abnormalities of brain morphology with leukoencephalopathy, ventriculomegaly, cortical abnormalities, and intracranial periventricular calcifications as major features. In a fetus with intracranial calcifications, we identified a rare homozygous missense variant that by structural analysis was predicted to disturb the topology of the SAM domain region that is essential for protein-protein interaction. For further insight into the effects of PPFIBP1 loss of function, we performed automated behavioral phenotyping of a Caenorhabditis elegans PPFIBP1/hlb-1 knockout model, which revealed defects in spontaneous and light-induced behavior and confirmed resistance to the acetylcholinesterase inhibitor aldicarb, suggesting a defect in the neuronal presynaptic zone. In conclusion, we establish bi-allelic loss-of-function variants in PPFIBP1 as a cause of an autosomal recessive severe neurodevelopmental disorder with early-onset epilepsy, microcephaly, and periventricular calcifications.
Insights
Loss-of-function variants in PPFIBP1 cause a severe neurodevelopmental disorder. This condition is characterized by developmental delay, epilepsy, microcephaly, and brain abnormalities, impacting neuronal development.
Area of Science:
- Genetics
- Neuroscience
- Developmental Biology
Background:
- PPFIBP1 encodes liprin-β1, a protein crucial for neuronal development and synapse formation.
- Liprin-β1's role in human neurodevelopmental disorders remains largely unexplored.
Purpose of the Study:
- To investigate the genetic basis of a severe neurodevelopmental disorder.
- To identify the role of PPFIBP1 loss-of-function in human disease.
Main Methods:
- Exome and genome sequencing to identify genetic variants.
- Clinical and neuroimaging assessments of affected individuals.
- Caenorhabditis elegans knockout model for functional studies.
Main Results:
- Nine ultra-rare homozygous loss-of-function PPFIBP1 variants identified in 16 individuals from 12 families.
- Affected individuals presented with moderate to profound developmental delay, early-onset epilepsy, progressive microcephaly, and brain abnormalities including leukoencephalopathy and periventricular calcifications.
- A PPFIBP1 knockout model in C. elegans showed behavioral defects, suggesting presynaptic neuronal dysfunction.
Conclusions:
- Bi-allelic loss-of-function variants in PPFIBP1 are a newly identified cause of autosomal recessive severe neurodevelopmental disorder.
- The disorder is characterized by early-onset epilepsy, microcephaly, and intracranial calcifications.
- PPFIBP1 is essential for normal human neurodevelopment.
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