212
Views
0
CrossRef citations to date
0
Altmetric
ORIGINAL RESEARCH

Optical Biometry Changes Throughout Childhood and Adolescence in Patients Wearing Ortho-K Lenses

, , , & ORCID Icon
Pages 1919-1927 | Received 11 Apr 2023, Accepted 08 Jun 2023, Published online: 04 Jul 2023

References

  • Fledelius HC, Christensen AS, Fledelius C. Juvenile eye growth, when completed? An evaluation based on IOL-Master axial length data, cross-sectional and longitudinal. Acta Ophthalmol. 2014;92(3):259–264. doi:10.1111/aos.12107
  • Read SA. Ocular and environmental factors associated with eye growth in childhood. Optom Vis Sci. 2016;93:1031–1041. doi:10.1097/OPX.0000000000000915
  • Saw SM, Chua WH, Gazzard G, Koh D, Tan DTH, Stone RA. Eye growth changes in myopic children in Singapore. Br J Ophthalmol. 2005;89(11):1489–1494. doi:10.1136/bjo.2005.071118
  • Rudnicka AR, Kapetanakis V, Wathern AK, et al. Global variations and time trends in the prevalence of childhood myopia, a systematic review and quantitative meta-analysis: implications for aetiology and early prevention. Br J Ophthalmol. 2016;100(7):882–890. doi:10.1136/BJOPHTHALMOL-2015-307724
  • Rose KA, Morgan IG, Ip J, et al. Outdoor activity reduces the prevalence of myopia in children. Ophthalmology. 2008;115(8):1279–1285. doi:10.1016/J.OPHTHA.2007.12.019
  • Gajjar S, Ostrin LA. A systematic review of near work and myopia: measurement, relationships, mechanisms and clinical corollaries. Acta Ophthalmol. 2022;100(4):376–387. doi:10.1111/AOS.15043
  • Huang HM, Chang DST, Wu PC. The association between near work activities and myopia in children—A systematic review and meta-analysis. PLoS One. 2015;10(10):e0140419. doi:10.1371/JOURNAL.PONE.0140419
  • Mirshahi A, Ponto KA, Hoehn R, et al. Myopia and level of education: results from the Gutenberg Health Study. Ophthalmology. 2014;121(10):2047–2052. doi:10.1016/J.OPHTHA.2014.04.017
  • VanderVeen DK, Kraker RT, Pineles SL, et al. Use of orthokeratology for the prevention of myopic progression in children: a report by the American Academy of Ophthalmology. Ophthalmology. 2019;126(4):623–636. doi:10.1016/J.OPHTHA.2018.11.026
  • Lipson MJ, Brooks MM, Koffler BH. The role of orthokeratology in myopia control: a review. Eye Contact Lens. 2018;44(4):224–230. doi:10.1097/ICL.0000000000000520
  • Rauscher FG, Francke M, Hiemisch A, Kiess W, Michael R. Ocular biometry in children and adolescents from 4 to 17 years: a cross-sectional study in central Germany. Ophthalmic Physiol Opt. 2021;41(3):496–511. doi:10.1111/opo.12814
  • Flitcroft DI. The complex interactions of retinal, optical and environmental factors in myopia aetiology. Prog Retin Eye Res. 2012;31(6):622–660. doi:10.1016/J.PRETEYERES.2012.06.004
  • Pineles SL, Kraker RT, VanderVeen DK, et al. Atropine for the prevention of myopia progression in children: a report by the American Academy of Ophthalmology. Ophthalmology. 2017;124(12):1857–1866. doi:10.1016/J.OPHTHA.2017.05.032
  • Charm J, Cho P. High myopia-partial reduction ortho-k: a 2-year randomized study. Optom Vis Sci. 2013;90(6):530–539. doi:10.1097/OPX.0B013E318293657D
  • Zhu MJ, Feng HY, He XG, Zou HD, Zhu JF. The control effect of orthokeratology on axial length elongation in Chinese children with myopia. BMC Ophthalmol. 2014;14(1):1–9. doi:10.1186/1471-2415-14-141/FIGURES/3
  • Swarbrick HA, Alharbi A, Watt K, Lum E, Kang P. Myopia control during orthokeratology lens wear in children using a novel study design. Ophthalmology. 2015;122(3):620–630. doi:10.1016/J.OPHTHA.2014.09.028
  • Wang Z, Meng Y, Wang Z, et al. Crystalline lens thickness change is associated with axial length elongation and myopia progression in orthokeratology. Contact Lens Anterior Eye. 2021;45:101534. doi:10.1016/J.CLAE.2021.101534
  • Sanz Diez P, Yang LH, Lu MX, Wahl S, Ohlendorf A. Growth curves of myopia-related parameters to clinically monitor the refractive development in Chinese schoolchildren. Graefes Arch Clin Exp Ophthalmol. 2019;257(5):1045–1053. doi:10.1007/S00417-019-04290-6
  • Lu TL, Wu JF, Ye X, et al. Axial length and associated factors in children: the Shandong Children Eye Study. Ophthalmologica. 2016;235(2):78–86. doi:10.1159/000441900
  • Nilsen NG, Gilson SJ, Pedersen HR, Hagen LA, Knoblauch K, Baraas RC. Seasonal variation in diurnal rhythms of the human eye: implications for continuing ocular growth in adolescents and young adults. Invest Ophthalmol Vis Sci. 2022;63(11):20. doi:10.1167/IOVS.63.11.20
  • Read SA, Collins MJ, Iskander DR. Diurnal variation of axial length, intraocular pressure, and anterior eye biometrics. Invest Ophthalmol Vis Sci. 2008;49(7):2911–2918. doi:10.1167/IOVS.08-1833
  • Truckenbrod C, Meigen C, Brandt M, et al. Longitudinal analysis of axial length growth in a German cohort of healthy children and adolescents. Ophthalmic Physiol Opt. 2021;41(3):532–540. doi:10.1111/opo.12817
  • He X, Sankaridurg P, Naduvilath T, et al. Clinical science Normative data and percentile curves for axial length and axial length/corneal curvature in Chinese children and adolescents aged 4–18 years. Br J Ophthalmol. 2021;2021:1–9. doi:10.1136/bjophthalmol-2021-319431
  • Walline JJ, Jones LA, Sinnott LT. Corneal reshaping and myopia progression. Br J Ophthalmol. 2009;93(9):1181–1185. doi:10.1136/BJO.2008.151365
  • Heng LS, Khoo CY. Can contact lenses control the progression of myopia? Singapore Med J. 1994;35(4):367–370.
  • Cope JR, Collier SA, Schein OD, et al. Acanthamoeba keratitis among rigid gas permeable contact lens wearers in the United States, 2005 through 2011. Ophthalmology. 2016;123(7):1435–1441. doi:10.1016/J.OPHTHA.2016.03.039
  • Van Meter WS, Musch DC, Jacobs DS, Kaufman SC, Reinhart WJ, Udell IJ. Safety of overnight orthokeratology for myopia: a report by the American Academy of Ophthalmology. Ophthalmology. 2008;115(12):2301–2313.e1. doi:10.1016/J.OPHTHA.2008.06.034
  • Young AL, Leung ATS, Cheng LL, Law RWK, Wong AKK, Lam DSC. Orthokeratology lens-related corneal ulcers in children: a case series. Ophthalmology. 2004;111(3):590–595. doi:10.1016/J.OPHTHA.2003.06.003
  • Zadnik K, Mutti DO, Fusaro RE, Adams AJ. Longitudinal evidence of crystalline lens thinning in children. Investig Ophthalmol Vis Sci. 1995;36(8):1581–1587.
  • Cheung SW, Cho P. Validity of axial length measurements for monitoring myopic progression in orthokeratology. Investig Ophthalmol Vis Sci. 2013;54(3):1613–1615. doi:10.1167/iovs.12-10434
  • Muir KW, Duncan L, Enyedi LB, Stinnett SS, Freedman SF. Central corneal thickness in children: stability over time. Am J Ophthalmol. 2006;141(5):955–957. doi:10.1016/j.ajo.2005.11.052
  • Wan K, Yau HT, Cheung SW, Cho P. Corneal thickness changes in myopic children during and after short-term orthokeratology lens wear. Ophthalmic Physiol Opt. 2021;41(4):757–767. doi:10.1111/OPO.12824
  • Li F, Jiang ZX, Hao P, Li X. A meta-analysis of central corneal thickness changes with overnight orthokeratology. Eye Contact Lens. 2016;42(2):141–146. doi:10.1097/ICL.0000000000000132
  • Kim WK, Kim BJ, Ryu IH, Kim JK, Kim SW. Corneal epithelial and stromal thickness changes in myopic orthokeratology and their relationship with refractive change. PLoS One. 2018;13(9):e0203652. doi:10.1371/JOURNAL.PONE.0203652
  • Zhang J, Li J, Li X, Li F, Wang T. Redistribution of the corneal epithelium after overnight wear of orthokeratology contact lenses for myopia reduction. Contact Lens Anterior Eye. 2020;43(3):232–237. doi:10.1016/J.CLAE.2020.02.015
  • Khan MA, Gupta A, Ahluwalia TS, Moulick PS, Gurunadh VS, Gupta S. A prospective interventional study of effect of accelerated orthokeratology on the corneal curvature and refraction among young adults with myopia. Med J Armed Forces India. 2016;72(2):125. doi:10.1016/J.MJAFI.2016.02.016