Novel mutations in the CDKL5 gene, predicted effects and associated phenotypes

S Russo1, M Marchi, F Cogliati

  • 1Molecular Genetics Laboratory, Istituto Auxologico Italiano, Via Zucchi 18-20095 Cusano Milanino (MI), Milan, Italy. s.russo@auxologico.it

Neurogenetics
|February 26, 2009
PubMed

Insights

CDKL5 gene mutations cause early-onset epilepsy. Novel mutations were identified in patients with Rett and Angelman syndromes, with altered proteins linked to severe phenotypes, expanding the CDKL5 mutational repertoire.

Area of Science:

  • Genetics
  • Molecular Biology
  • Neurology

Background:

  • Cyclin-dependent kinase-like 5 (CDKL5) gene mutations are linked to early-onset epilepsy and treatment-resistant seizures.
  • Rett syndrome and Angelman syndrome are neurodevelopmental disorders with overlapping clinical features.
  • Understanding CDKL5 mutations is crucial for diagnosing and managing these complex conditions.

Purpose of the Study:

  • To identify novel CDKL5 mutations in patients with Rett syndrome, Angelman syndrome, and idiopathic autism.
  • To correlate specific CDKL5 mutations with clinical phenotypes, including seizure severity and developmental milestones.
  • To expand the known mutational repertoire of the CDKL5 gene.

Main Methods:

  • Screening of 92 patients with Rett syndrome, 17 with Angelman syndrome, and 6 with idiopathic autism for CDKL5 mutations and exon deletions.
  • Utilizing multiplex ligation-dependent probe amplification (MLPA) for mutation detection.
  • RNA characterization to determine the impact of identified mutations on transcript integrity.

Main Results:

  • Seven novel CDKL5 mutations were identified: six in the Rett syndrome cohort and one in an Angelman syndrome patient.
  • A mild clinical presentation was associated with an exon 11 insertion (c.903_904 dupGA), while severe phenotypes correlated with de novo missense changes (c.215 T > C, c.380A > G) and truncating mutations.
  • RNA analysis confirmed aberrant transcripts for missense and truncating mutations, suggesting altered protein function over haploinsufficiency.

Conclusions:

  • The study expands the known spectrum of CDKL5 mutations, particularly in patients with phenotypes overlapping Rett syndrome.
  • Altered CDKL5 protein function, rather than simple haploinsufficiency, appears to contribute to a more severe clinical presentation.
  • Genetic screening in broader patient populations is essential for comprehensive CDKL5 mutation discovery.

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