The relation between birth size and the results of refractive error and biometry measurements in children

S-M Saw1, L Tong, K-S Chia

  • 1Department of Community, Occupational and Family Medicine, National University of Singapore, 16 Medical Drive, Singapore 117597.

Insights

Infant birth size and maturity correlate with longer axial eye length and deeper vitreous chambers in Singaporean children. However, these birth parameters do not significantly impact refractive error by age 7-9.

Area of Science:

  • Ophthalmology
  • Pediatric Ophthalmology
  • Human Growth and Development

Background:

  • Birth parameters are potential early indicators of ocular development.
  • Understanding these associations can inform early identification of visual development trends.

Purpose of the Study:

  • To investigate the relationship between birth parameters (birth weight, head circumference, birth length, gestational age) and ocular biometry (axial length, vitreous chamber depth, lens thickness, anterior chamber depth) and refraction in Singaporean schoolchildren aged 7-9 years.

Main Methods:

  • A cohort of 1413 Singaporean Chinese children aged 7-9 years was recruited.
  • Birth data were obtained from hospital records; ocular biometry and refraction were measured using cycloplegic autorefraction, keratometry, and biometry.
  • Statistical analyses controlled for age, sex, school, height, and parental myopia.

Main Results:

  • Higher birth weight, larger head circumference, longer birth length, and greater gestational age were associated with longer axial lengths and deeper vitreous chambers.
  • Specifically, birth weights >= 4.0 kg correlated with longer axial lengths compared to birth weights < 2.5 kg.
  • Increases in head circumference, birth length, and gestational age were all linked to increased axial length.

Conclusions:

  • Infants born with higher birth weight, larger head circumference, greater length, or higher gestational age exhibit longer axial lengths and deeper vitreous chambers by school age.
  • Despite biometric differences, no significant associations were found with refractive error, suggesting compensatory mechanisms like corneal flattening.
Abstract

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