Application of Chromosomal Microarray for Evaluation of Idiopathic Short Stature in Asian Indian Children: A Pilot

Hema Singh1, Pradeep Tiwari1,2, Vijay Bhavi1

  • 1Department of Endocrinology, SMS Medical College, Jaipur, India.

Insights

Chromosomal microarray (CMA) effectively identifies genetic causes of idiopathic short stature (ISS). This advanced tool reveals copy-number variants (CNVs) and potential novel height-regulating genes, offering new therapeutic insights.

Area of Science:

  • Genetics
  • Human Physiology

Background:

  • Human height is a complex polygenic trait with limited understanding of phenotypic variation.
  • Idiopathic short stature (ISS) affects a significant percentage of children evaluated in pediatric and endocrinology clinics.

Purpose of the Study:

  • To identify chromosomal alterations contributing to idiopathic short stature (ISS).
  • To investigate short stature with dysmorphic features unrelated to known genetic syndromes.

Main Methods:

  • Chromosomal microarray (CMA) analysis was performed on 19 patients with short stature (<2 standard deviation scores).
  • Patients with nutritional, systemic, endocrine, or syndromic causes were excluded prior to CMA.

Main Results:

  • Sixty-one copy-number variants (CNVs) and polymorphs were identified, including 33 gains, 11 losses, and 17 gain-mosaics.
  • SHOX gene alterations (haploinsufficiency or gain-mosaic) were found in three patients with normal karyotypes.
  • A deletion in PAX3 was observed in one patient, potentially explaining short stature and intellectual impairment. KIAA0125 and ADAM6 were found in 18/19 patients.

Conclusions:

  • CMA is a powerful tool for detecting pathogenic CNVs in ISS patients.
  • The study suggests novel genes and regulatory elements (lncRNA KIAA0125, pseudogene ADAM6) involved in height regulation.
  • Findings may lead to new therapeutic targets for ISS by elucidating underlying pathophysiological mechanisms.
Abstract

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