Natural course of neonatal progeroid syndrome

Jia-Woei Hou1

  • 1Division of Medical Genetics, Department of Pediatrics, Chang Gung Memorial Hospital, Taoyuan, Taiwan. houjw4876@gmail.com

Insights

Neonatal progeroid syndrome (NPS) involves severe growth retardation and distinctive physical features. Increased chromosomal breakage suggests DNA repair defects, but the exact cause and pathogenesis remain unclear.

Area of Science:

  • Genetics and Molecular Biology
  • Pediatric Endocrinology
  • Rare Diseases

Background:

  • Neonatal progeroid syndrome (NPS), also known as Wiedemann-Rautenstrauch syndrome, is characterized by premature aging signs from birth.
  • This study reports on five patients exhibiting severe intrauterine and postnatal growth retardation and specific craniofacial features suggestive of NPS.
  • Understanding the natural course and underlying mechanisms of NPS is crucial for potential interventions.

Purpose of the Study:

  • To describe the clinical presentation and natural history of neonatal progeroid syndrome (NPS) in five affected individuals.
  • To investigate potential genetic and metabolic factors contributing to the syndrome's pathogenesis.
  • To explore the relationship between clinical findings and chromosomal instability in NPS.

Main Methods:

  • Comprehensive assessments including anthropometry, imaging, dual-energy X-ray absorptiometry, and endocrine evaluations were performed.
  • Metabolic complications such as hyperinsulinemia and dyslipidemia were investigated.
  • Genetic analyses included screening for inborn errors, karyotyping, chromosomal breakage rate assessment, and direct sequencing of LMNA, ERCC8, and ZMPSTE24 genes.

Main Results:

  • Patients presented with generalized lipodystrophy (sparing cheeks, hands, feet), failure to thrive, microcephaly, and multiple congenital anomalies.
  • Key findings included delayed bone age, low IGF-I, relative hypolipidemia, progressive skeletal issues (kyphoscoliosis, osteoporosis), and neurological abnormalities (ventriculomegaly, basal ganglia calcification).
  • Despite increased chromosomal breakage in four patients, no mutations in LMNA, ERCC8, or ZMPSTE24 were identified, and hyperinsulinemia/dyslipidemia were absent. Four patients died from sepsis or pneumonia.

Conclusions:

  • Increased chromosomal breakage and basal ganglia calcification suggest a role for DNA repair defects in NPS pathogenesis.
  • NPS is a rare disorder with complex, largely unknown etiology and pathogenesis.
  • Clinical variability indicates that more than one underlying disease process may contribute to the spectrum of NPS.
Abstract

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