Growth Hormone Therapy in Children Born Small for Gestational Age with Persistent Short Stature: Lessons Learned from

Sona Samvelyan1, S Faisal Ahmed2,3, Malika Alimussina2,3

  • 1Department of Paediatrics, Second Faculty of Medicine, Charles University, Prague, Czechia, sona.samvelyan800@student.cuni.cz.

Insights

Children born small for gestational age (SGA) with persistent short stature (SGA-SS) can be treated with recombinant human growth hormone (rhGH). Long-term registry data confirm rhGH safety and efficacy, with new genetic insights guiding future personalized treatments.

Area of Science:

  • Pediatrics
  • Endocrinology
  • Genetics

Background:

  • Small for gestational age (SGA) affects 5% of newborns; up to 10% develop persistent short stature (SGA-SS).
  • Recombinant human growth hormone (rhGH) has been used for over 20 years to treat SGA-SS, improving growth outcomes.
  • Treatment response to rhGH is variable due to the diverse causes of SGA-SS, including genetic and epigenetic factors.

Purpose of the Study:

  • To review the long-term safety and efficacy of rhGH in children with SGA-SS.
  • To highlight the role of large international registries in data collection.
  • To explore the impact of genetic diagnoses on future treatment strategies.

Main Methods:

  • Analysis of data from long-term international drug-specific registry programs (KIGS, GeNeSIS, NordiNet IOS, ANSWER, PATRO, NCGS, ECOS).
  • Review of clinical trials and real-world observational studies on rhGH therapy for SGA-SS.
  • Consideration of advancements in next-generation sequencing for genetic diagnoses.

Main Results:

  • rhGH therapy is effective in improving childhood growth and adult height in SGA-SS patients.
  • Registry data show a low incidence of serious adverse events with rhGH, with no increased metabolic or oncological risks.
  • Genetic diagnoses are increasingly identified in SGA-SS, suggesting potential for stratified treatment.

Conclusions:

  • Long-term rhGH treatment is safe and effective for SGA-SS.
  • Understanding the genetic basis of SGA-SS is crucial for personalized treatment approaches.
  • Future research should focus on genotype-specific responses and integrated patient databases for enhanced surveillance.
Abstract

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