Evaluation of Ocular Biometric and Optical Coherence Tomography Parameters in Preterm Children Without Retinopathy of Prematurity
01 March 2022
Andrea Lillianne Barr Kumarakulasinghe, Norshamsiah Md Din, Umi Kalthum Mohd Noh, Syed Zulkifli Syed Zakaria, Tin Aung, and Safinaz Mohd Khialdin
Abstract
Purpose:
To evaluate and compare biometric and optical coherence tomography parameters of ocular structures in preterm children without retinopathy of prematurity with term children.
Methods:
A cross-sectional, comparative study was carried out from 2018 to 2019. In this study, 124 eyes of 62 preterm children were compared with 132 eyes of 66 term children aged between 7 and 9 years. Preterm children were born at 28 to 32 weeks with a birth weight of less than 2 kg with no ocular abnormalities, and term children were delivered at 37 or greater weeks and had a birth weight of 2 kg or more. All children had standardized eye examinations, and ocular measurements using the anterior and posterior segment optical coherence tomography and laser interferometry.
Results:
Significant differences were found between the term and preterm children for horizontal corneal diameter: median, 12.2 mm (interquartile range [IQR], 0.4) versus median, 12.1 mm (IQR, 0.6; P < 0.005); axial length median, 23.03 mm (IQR, 1.10 mm) versus median, 22.88 mm (IQR, 1.35 mm; P = 0.017); global retinal nerve fiber layer thickness: mean ± standard deviation, 106.54 ± 10.23 µm versus mean ± standard deviation, 103.65 ± 10.178 µm (P = 0.024); temporal retinal nerve fiber layer thickness: median, 76 µm (IQR, 16 µm) vs median, 74 µm (IQR, 14 µm; P = 0.012); and the angle opening distance at 750 µm nasal: mean ± standard deviation, 0.815 ± 0.23 mm vs mean ± standard deviation, 0.749 ± 0.21 mm (P = 0.016). No significant differences were found for other anterior segment and angle parameters.
Conclusions:
Preterm children with no retinopathy of prematurity have smaller eyes and thinner retinal nerve fiber layers than their term counterparts. The long-term effects of interrupted ocular growth in preterm children should be further studied into adulthood.
Translational Relevance:
Preterm children maybe more predisposed to certain eye conditions because they have smaller eyes, and thus should be further monitored clinically.
Reference
- World Health Organization. (2018). Preterm birth. https://www.who.int/news-room/fact-sheets/detail/preterm-birth
- Blencowe, H., Cousens, S., Chou, D., Oestergaard, M., Say, L., Moller, A.-B., Kinney, M., Lawn, J., & Born Too Soon Preterm Birth Action Group. (2013). Born too soon: The global epidemiology of 15 million preterm births. Reproductive Health, 10(Suppl 1), Article S2. https://doi.org/10.1186/1742-4755-10-S1-S2
- Mundey, K., Chaudhry, M., & Sethi, S. (2015). Long term ophthalmic sequelae of prematurity. Journal of Clinical Ophthalmology and Research, 3(1), 3–7. https://doi.org/10.4103/2320-3897.149219
- Kirwan, C., O'Keefe, M., & Fitzsimon, S. (2005). Central corneal thickness and corneal diameter in premature infants. Acta Ophthalmologica Scandinavica, 83(6), 751–753. https://doi.org/10.1111/j.1600-0420.2005.00569.x
- O'Connor, A. R., Wilson, C. M., & Fielder, A. R. (2007). Ophthalmological problems associated with preterm birth. Eye, 21(10), 1254–1260. https://doi.org/10.1038/sj.eye.6702838
- Samarawickrama, C., Huynh, C., Liew, G., Burlustky, G., & Mitchell, P. (2009). Birth weight and optic nerve head parameters. Ophthalmology, 116(6), 1112–1118. https://doi.org/10.1016/j.ophtha.2009.01.012
- Uva, M. G., Reibaldi, M., Longo, A., Avitabile, T., Gagliano, C., Scollo, D., Liong, S. S., & Reibaldi, A. (2011). Intraocular pressure and central corneal thickness in premature and full-term newborns. Journal of AAPOS, 15(4), 367–369. https://doi.org/10.1016/j.jaapos.2011.03.016
- Nongpiur, M. E., He, M., Amerasinghe, N., Friedman, D. S., Tay, W.-T., Baskaran, M., Smith, S. D., Wong, T.Y., & Aung, T. (2011). Lens vault, thickness, and position in Chinese subjects with angle closure. Ophthalmology, 118(3), 474–479. https://doi.org/10.1016/j.ophtha.2010.07.007
- Hansson, H.-A., & Jerndal, T. (1911). Scanning electron microscopic studies on the development of the iridocorneal angle in human eyes. Investigative Ophthalmology, 10(4), 252–265.
- Saunders, K. J., McCulloch, D. L., Shepherd, A. J., & Westall, C. A. (2002). Emmetropisation following preterm birth. British Journal of Ophthalmology, 86(9), 1035–1040. https://doi.org/10.1136/bjo.86.9.1035
- Carl Zeiss Meditec. (2012). Visante OCT model 1000 system software version 3.0 user manual (1st ed.).
- Augusteyn, R. C., Nankivil, D., Mohamed, A., Maceo, B., Pierre, F., & Parel, J. M. (2012). Human ocular biometry. Experimental Eye Research, 102, 70–75. https://doi.org/10.1016/j.exer.2012.06.009
- Harayama, K., Amemiya, T., & Nishimura, H. (1981). Development of the eyeball during fetal life. Journal of Pediatric Ophthalmology and Strabismus, 18(4), 37–40. https://doi.org/10.3928/01913913-19810701-08
- Ronneburger, A., Basarab, J., & Howland, H. C. (2006). Growth of the cornea from infancy to adolescence. Ophthalmic and Physiological Optics, 26(1), 80–87. https://doi.org/10.1111/j.1475-1313.2005.00330.x
- Tucker, S. M., Enzenauer, R. W., Levin, A. V., Morin, J. D., & Hellmann, J. (1992). Corneal diameter, axial length, and intraocular pressure in premature infants. Ophthalmology, 99(8), 1296–1300. https://doi.org/10.1016/s0161-6420(92)31811-1
- Vazquez, L. E., & Huang, L.Y. (2016). RNFL analysis in the diagnosis of glaucoma – measuring peripapillary retinal nerve fiber layer thickness with spectral-domain optical coherence tomography provides an objective and reliable estimate of glaucomatous optic nerve damage. Glaucoma Today, 47–48.
- Leung, M. M. P., Huang, R.Y. C., & Lam, A. K. C. (2010). Retinal nerve fiber layer thickness in normal Hong Kong Chinese children measured with optical coherence tomography. Journal of Glaucoma, 19(2), 95–99. https://doi.org/10.1097/IJG.0b013e3181a2fc72
- Wang, J., Spencer, R., Leffler, J. N., & Birch, E. E. (2012). Characteristics of peripapillary retinal nerve fiber layer in preterm children. American Journal of Ophthalmology, 153(5), 850–855. https://doi.org/10.1016/j.ajo.2011.10.016
- Åkerblom, H., Holmström, G., Eriksson, U., & Larsson, E. (2012). Retinal nerve fibre layer thickness in school-aged prematurely-born children compared to children born at term. British Journal of Ophthalmology, 96(7), 956–960. https://doi.org/10.1136/bjophthalmol-2011-301135
- Rothman, A. L., Sevilla, M. B., Mangalesh, S., Gustafson, K. E., Edwards, L., Cotten, C. M., ... & Toth, C. A. (2015). Thinner retinal nerve fiber layer in very preterm versus term infants and relationship to brain anatomy and neurodevelopment. American Journal of Ophthalmology, 160(6), 1296–1308.e2. https://doi.org/10.1016/j.ajo.2015.08.035
- Maruyama, Y., Mori, K., Ikeda, Y., Ueno, M., & Kinoshita, S. (2014). Morphological analysis of age related iridocorneal angle changes in normal and glaucomatous cases using anterior segment optical coherence tomography. Clinical Ophthalmology, 8, 113–118. https://doi.org/10.2147/OPTH.S53814
- Campa, C., Pierro, L., Bettin, P., & Bandello, F. (2011). Anterior chamber angle assessment techniques. In T. Rumelt (Ed.), Glaucoma: Basic and clinical concepts (pp. 71–90). InTech. https://doi.org/10.5772/23616
- Kim, D.Y., Sung, K. R., Kang, S.Y., Cho, J. W., Lee, K. S., Park, S. B., ... & Kook, M. S. (2011). Characteristics and reproducibility of anterior chamber angle assessment by anterior‐segment optical coherence tomography. Acta Ophthalmologica, 89(5), 435–441. https://doi.org/10.1111/j.1755-3768.2009.01713.x
- Leung, C. K., Palmiero, P.-M., Weinreb, R. N., Li, H., Sbeity, Z., Dorairaj, S., ... & Ritch, R. (2010). Comparisons of anterior segment biometry between Chinese and Caucasians using anterior segment optical coherence tomography. British Journal of Ophthalmology, 94(9), 1184–1189. https://doi.org/10.1136/bjo.2009.171811
Cite
Andrea Lillianne Barr Kumarakulasinghe, Norshamsiah Md Din, Umi Kalthum Mohd Noh, Syed Zulkifli Syed Zakaria, Tin Aung, Safinaz Mohd Khialdin; Evaluation of Ocular Biometric and Optical Coherence Tomography Parameters in Preterm Children Without Retinopathy of Prematurity. Trans. Vis. Sci. Tech. 2022;11(3):8. https://doi.org/10.1167/tvst.11.3.8.


