Whole-exome Sequencing Identifies Novel Candidate PCNT Variants in a Child With Overlapping MOPD II Features: A Case

Enhuan Yi1, Huali Qin1, Ling Che1

  • 1Hunan Provincial Key Laboratory of Regional Hereditary Birth Defects Prevention and Control, Changsha Hospital for Maternal & Child Health Care Affiliated to Hunan Normal University.

Insights

Whole-exome sequencing identified novel PCNT gene variants in a child with severe growth failure and developmental delay, suggesting a role in atypical primordial dwarfism. Further evaluation is needed for a definitive diagnosis.

Area of Science:

  • Genetics
  • Pediatrics
  • Endocrinology

Background:

  • Severe postnatal growth failure and global developmental delay present diagnostic challenges.
  • Primordial dwarfism, particularly Microcephalic Osteodysplastic Primordial Dwarfism Type II (MOPD II), involves complex genetic factors.
  • Atypical presentations necessitate advanced molecular techniques for diagnosis.

Purpose of the Study:

  • To investigate the genetic basis of severe growth failure and developmental delay in a pediatric patient.
  • To identify potential novel genetic variants associated with an atypical primordial dwarfism phenotype.
  • To assess the utility of whole-exome sequencing in diagnosing genetically heterogeneous growth disorders.

Main Methods:

  • Whole-exome sequencing (WES) was performed on a 7-year-old boy with severe growth failure and developmental delay.
  • Identified variants were filtered against population databases (gnomAD, ExAC, 1000 Genomes) and Chinese population databases.
  • Phenotypic features were compared with known genetic syndromes, including MOPD II.

Main Results:

  • Two novel missense variants, c.5675A>G (p.Glu1892Gly) and c.9734G>T (p.Arg3245Ile), were identified in the PCNT gene.
  • Both variants were absent in population databases, meeting ACMG criterion PM2.
  • The patient exhibited dysmorphic features and growth failure, with partial overlap with MOPD II, but parental segregation data was unavailable.

Conclusions:

  • Novel PCNT variants are potential candidates for an atypical primordial dwarfism phenotype.
  • Whole-exome sequencing is valuable for generating hypotheses in complex genetic growth disorders.
  • Further clinical evaluation and functional studies are required for definitive molecular diagnosis and understanding the borderline QTc finding.

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