Quantifying child growth effects using height-age instead of height-for-age z-scores in a meta-analysis of

Kelly M Watson1,2, Alison S B Dasiewicz1, Diego G Bassani1,3,4

  • 1Centre for Global Child Health, The Hospital for Sick Children, 686 Bay St, Toronto, ON, M5G 0A4, Canada.

Scientific Reports
|October 22, 2025
PubMed

Insights

Height-age, a novel metric, offers clearer insights into intervention effects on child growth compared to length-for-age z-scores (LAZ). This study shows small-quantity lipid-based nutrient supplements (SQ-LNS) achieved 11% of optimal growth potential.

Area of Science:

  • Pediatric Nutrition
  • Growth Monitoring
  • Public Health Interventions

Background:

  • Linear growth faltering in children is a significant global health issue, particularly in low- and middle-income countries (LMICs).
  • Conventional metrics like length-for-age z-scores (LAZ) are widely used but may lack intuitive interpretability for intervention effects.
  • Height-age offers an alternative expression of linear growth, potentially enhancing understanding of intervention impacts.

Purpose of the Study:

  • To compare the utility of height-age and proportion of maximal benefit (PMB) with LAZ in assessing linear growth outcomes.
  • To evaluate the effectiveness of small-quantity lipid-based nutrient supplements (SQ-LNS) using these different metrics.

Main Methods:

  • A meta-analysis of randomized controlled trials (RCTs) involving SQ-LNS interventions in LMICs was conducted.
  • Height-age and PMB were calculated and compared with conventional LAZ scores.
  • Statistical correlation and heterogeneity analyses were performed across 15 trials.

Main Results:

  • Mean differences (MD) in LAZ and height-age showed a strong correlation (rho = 0.74), indicating consistency between metrics.
  • The pooled PMB indicated that SQ-LNS interventions achieved 11% of optimal growth potential.
  • Significant between-trial heterogeneity (I² = 90%) was observed, highlighting variability in intervention effects.

Conclusions:

  • Height-age provides an alternative, potentially more interpretable, expression of linear growth outcomes compared to LAZ.
  • The PMB metric quantifies intervention effectiveness relative to biological potential, enhancing interpretability.
  • Further research is needed to establish the validity and utility of height-age and PMB for intervention assessment and comparison.

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