A PAK1 Mutational Hotspot Within the Regulatory CRIPaK Domain is Associated With Severe Neurodevelopmental Disorders
Giovanna Scorrano1, Gianluca D'Onofrio2, Andrea Accogli3
1Department of Pediatrics, University of Chieti-Pescara, Chieti, Italy; Department of Biotechnological and Applied Clinical Sciences, University of L'Aquila, L'Aquila, Italy.
Insights
New variants in the PAK1 gene cause rare pediatric neurodevelopmental disorders, including epilepsy and macrocephaly. These findings point to potential therapeutic targets within the PAK1 protein.
Area of Science:
- Genetics
- Neuroscience
- Biochemistry
Background:
- P-21-activated kinases (PAKs) are key regulators in the RAS/mitogen-activated protein kinase pathway.
- PAK1, highly expressed in the central nervous system, is vital for neuronal development.
- Recent studies link de novo heterozygous PAK1 variants to rare pediatric neurodevelopmental disorders.
Purpose of the Study:
- To investigate the genetic basis of neurodevelopmental disorders characterized by postnatal macrocephaly and epilepsy.
- To identify and characterize novel variants in the PAK1 gene associated with these conditions.
Main Methods:
- Whole-exome sequencing was used to identify genetic variants in affected children.
- Electroencephalography (EEG) and video-EEG monitoring were conducted to assess epilepsy.
- Computational studies were performed to evaluate the functional impact of identified PAK1 variants.
Main Results:
- Three novel de novo variants in PAK1 (p.Met143Val, p.Met143Thr, p.Met143Lys) were identified as the cause of disease in three families.
- All variants affected the conserved Met143 residue in the cysteine-rich inhibitor of PAK1 (CRIPaK) domain.
- Computational analysis suggested impaired PAK1 autoregulation due to defective autoinhibition.
Conclusions:
- The study delineates the electroclinical phenotypes of PAK1-related neurological disorders.
- A novel mutational hotspot in the PAK1 CRIPaK domain, potentially affecting PAK1-CRIPaK interaction, is highlighted.
- Findings suggest therapeutic strategies targeting the CRIPaK domain to modulate PAK1 activity.
Background:
P-21-activated kinases (PAKs) are protein serine/threonine kinases, part of the RAS/mitogen-activated protein kinase pathway. PAK1 is highly expressed in the central nervous system and crucially involved in neuronal migration and brain developmental processes. Recently, de novo heterozygous missense variants in PAK1 have been identified as an ultrarare cause of pediatric neurodevelopmental disorders.
Methods:
We report a series of children affected with postnatal macrocephaly, neurodevelopmental impairment, and drug-resistant epilepsy. Repeated electroencephalographic (EEG) and video-EEG evaluations were performed over a two- to 10-year period during follow-up to delineate electroclinical histories. Genetic sequencing studies and computational evaluation of the identified variants were performed in our patient cohort.
Results:
We identified by whole-exome sequencing three novel de novo variants in PAK1 (NM_001128620: c.427A>G, p.Met143Val; c.428T>C, p.Met143Thr; c.428T>A, p.Met143Lys) as the underlying cause of the disease in our families. The three variants affected the same highly conserved Met143 residue within the cysteine-rich inhibitor of PAK1 (CRIPaK) domain, which was identified before as a PAK1 inhibitor target. Computational studies suggested a defective autoinhibition presumably due to impaired PAK1 autoregulation as a result of the recurrent substitution.
Conclusions:
We delineated the electroclinical phenotypes of PAK1-related neurological disorders and highlight a novel mutational hotspot that may involve defective autoinhibition of the PAK1 protein. The three novel variants affecting the same hotspot residue within the CRIPaK domain highlight potentially impaired PAK1-CRIPaK interaction as a novel disease mechanism. These findings shed light on possible future treatments targeted at the CRIPaK domain, to modulate PAK1 activity and function.
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