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Invited Review

Contact lenses to slow progression of myopia

, PhD MIP BOptom
Pages 432-437 | Received 30 Mar 2017, Accepted 13 Jun 2017, Published online: 15 Apr 2021

REFERENCES

  • Holden BA, Fricke TR, Wilson DA et al. Global prevalence of myopia and high myopia and temporal trends from 2000 through 2050. Ophthalmology 2016; 123: 1036–1042.
  • Tideman JW, Snabel MC, Tedja MS et al. Association of axial length with risk of uncorrectable visual impairment for Europeans with myopia. JAMA Ophthalmol 2016; 134: 1355–1363.
  • Chen SJ, Cheng CY, Li AF et al. Prevalence and associated risk factors of myopic maculopathy in elderly Chinese: the Shihpai eye study. Invest Ophthalmol Vis Sci 2012; 53: 4868–4873.
  • Williams KM, Bertelsen G, Cumberland P et al. Increasing prevalence of myopia in Europe and the impact of education. Ophthalmology 2015; 122: 1489–1497.
  • Barth T, Zeman F, Helbig H, Oberacher‐velten I. Clinical features and outcome of paediatric retinal detachment. Ophthalmologica. 2017; 237: 63–72.
  • MoisseievE, Yiu G. Retinal detachment in severe myopia. Lancet 2017; 389: 1133.
  • Gu YH, Ke GJ, Wang L et al. Risk factors of rhegmatogenous retinal detachment associated with choroidal detachment in Chinese patients. Int J Ophthalmol 2016; 9: 989–993.
  • Jonas JB, Xu L, Wei WB et al. Myopia in China: a population‐based cross‐sectional, histological, and experimental study. Lancet 2016; 388 Suppl 1: S20.
  • Iwase A, Araie M, Tomidokoro A et al. Prevalence and causes of low vision and blindness in a Japanese adult population: the Tajimi Study. Ophthalmology 2006; 113: 1354–1362.
  • Hsu WM, Cheng CY, Liu JH, Tsai SY, Chou P. Prevalence and causes of visual impairment in an elderly Chinese population in Taiwan: the Shihpai Eye Study. Ophthalmology 2004; 111: 62–69.
  • Brennan NA. Projected generational increase in myopic retinopathy in the United States. Invest Ophthal Vis Sci 2014; 55: 3618.
  • Wiesel TN, Raviola E. Myopia and eye enlargement after neonatal lid fusion in monkeys. Nature 1977; 266: 66–68.
  • Wallman J, Turkel J, Trachtman J. Extreme myopia produced by modest change in early visual experience. Science 1978; 201: 1249–1251.
  • Diether S, Schaeffel F. Local changes in eye growth induced by imposed local refractive error despite active accommodation. Vision Res 1997; 37: 659–668.
  • Smith EL 3rd, Hung LF, Huang J, Arumugam B. Effects of local myopic defocus on refractive development in monkeys. Optom Vis Sci 2013; 90: 1176–1186.
  • Schaeffel F, Glasser A, Howland HC. Accommodation, refractive error and eye growth in chickens. Vision Res 1988; 28: 639–657.
  • Arumugam B, Hung LF, To CH, Sankaridurg P, Iii EL. The effects of the relative strength of simultaneous competing defocus signals on emmetropization in infant rhesus monkeys. Invest Ophthalmol Vis Sci 2016; 57: 3949–3960.
  • Benavente‐perez A, Nour A, Troilo D. The effect of simultaneous negative and positive defocus on eye growth and development of refractive state in marmosets. Invest Ophthalmol Vis Sci 2012; 53: 6479–6487.
  • Gwiazda J. Treatment options for myopia. Optom Vis Sci 2009; 86: 624–628.
  • Cheung SW, Cho P, Fan D. Asymmetrical increase in axial length in the two eyes of a monocular orthokeratology patient. Optom Vis Sci 2004; 81: 653–656.
  • Kelly TS, Chatfield C, Tustin G. Clinical assessment of the arrest of myopia. Br J Ophthalmol 1975; 59: 529–538.
  • Grosvenor T, Perrigin D, Perrigin J, Quintero S. Rigid gas‐permeable contact lenses for myopia control: effects of discontinuation of lens wear. Optom Vis Sci 1991; 68: 385–389.
  • Katz J, Schein OD, Levy B et al. A randomized trial of rigid gas permeable contact lenses to reduce progression of children's myopia. Am J Ophthalmol 2003; 136: 82–90.
  • Walline JJ, Jones LA, Mutti DO, Zadnik K. A randomized trial of the effects of rigid contact lenses on myopia progression. Arch Ophthalmol 2004; 122: 1760–1766.
  • Blacker A, Mitchell GL, Bullimore MA et al. Myopia progression during three years of soft contact lens wear. Optom Vis Sci 2009; 86: 1150–1153.
  • Dumbleton KA, Chalmers RL, Richter DB, Fonn D. Changes in myopic refractive error with nine months' extended wear of hydrogel lenses with high and low oxygen permeability. Optom Vis Sci 1999; 76: 845–849.
  • Jalbert I, Stretton S, Naduvilath T, Holden B, Keay L, Sweeney D. Changes in myopia with low‐Dk hydrogel and high‐Dk silicone hydrogel extended wear. Optom Vis Sci 2004; 81: 591–596.
  • Harris MG, Sarver MD, Polse KA. Corneal curvature and refractive error changes associated with wearing hydrogel contact lenses. Am J Optom Physiol Opt 1975; 52: 313–319.
  • Horner DG, Soni PS, Salmon TO, Swartz TS. Myopia progression in adolescent wearers of soft contact lenses and spectacles. Optom Vis Sci 1999; 76: 474–479.
  • Walline JJ, Jones LA, Sinnott L et al. A randomized trial of the effect of soft contact lenses on myopia progression in children. Invest Ophthalmol Vis Sci 2008; 49: 4702–4706.
  • Kwok E, Patel B, Backhouse S, Phillips JR. Peripheral refraction in high myopia with spherical soft contact lenses. Optom Vis Sci 2012; 89: 263–270.
  • Shen J, Clark CA, Soni PS, Thibos LN. Peripheral refraction with and without contact lens correction. Optom Vis Sci 2010; 87: 642–655.
  • Wagner S, Conrad F, Bakaraju RC, Fedtke C, Ehrmann K, Holden BA. Power profiles of single vision and multifocal soft contact lenses. Cont Lens Anterior Eye 2015; 38: 2–14.
  • de la Jara PL, Sankaridurg P, Ehrmann K, Holden BA. Influence of contact lens power profile on peripheral refractive error. Optom Vis Sci 2014; 91: 642–649.
  • de la Jara PL, Sankaridurg P, Ho A et al. A silicone hydrogel contact lens produced less myopia progression than single vision spectacles in Chinese children over a 6 month period. Invest Ophthal Vis Sci 2010; 51: 2198.
  • Aller TA, Wildsoet C. Bifocal soft contact lenses as a possible myopia control treatment: a case report involving identical twins. Clin Exp Optom 2008; 91: 394–399.
  • Turnbull PR, Munro OJ, Phillips RJ. Contact lens methods for clinical myopia control. Optom Vis Sci 2016; 93: 1120–1126.
  • Anstice NS, Phillips JR. Effect of dual‐focus soft contact lens wear on axial myopia progression in children. Ophthalmology 2011; 118: 1152–1161.
  • Sankaridurg P, Holden B, Smith E 3rd et al. Decrease in rate of myopia progression with a contact lens designed to reduce relative peripheral hyperopia: one‐year results. Invest Ophthalmol Vis Sci 2011; 52: 9362–9367.
  • Lam CS, Tang WC, Tse DY, Tang YY, To CH. Defocus Incorporated Soft Contact (DISC) lens slows myopia progression in Hong Kong Chinese schoolchildren: a 2‐year randomised clinical trial. Br J Ophthalmol 2014; 98: 40–45.
  • Walline JJ, Greiner KL, McVey Me, Jones‐jordan LA. Multifocal contact lens myopia control. Optom Vis Sci 2013; 90: 1207–1214.
  • Holden BA, Sankaridurg PR, de la Jara PL et al. Decreasing peripheral hyperopia with distance centre relatively plus powered periphery contact lenses reduced the rate of progress of myopia: A 5 year Vision CRC study. Invest Ophthal Vis Sci 2012; 53: 6300.
  • Cheng X, Xu J, Chehab K, Exford J, Brennan N. Soft contact lenses with positive spherical aberration for myopia control. Optom Vis Sci 2016; 93: 353–366.
  • Bakaraju RC, Xu P, Chen X et al. Extended depth of focus contact lenses can slow the rate of progression of myopia. ARVO 2015: abstract no 1728.
  • Aller T, Liu M, Wildsoet CF. Myopia control with bifocal contact lenses: a randomized clinical trial. Optom Vis Sci 2016; 93: 344–352.
  • He M, Xiang F, Zeng Y et al. Effect of time spent outdoors at school on the development of myopia among children in China: a randomized clinical trial. JAMA 2015; 314: 1142–1148.
  • Wu PC, Tsai CL, Wu HL, Yang YH, Kuo HK. Outdoor activity during class recess reduces myopia onset and progression in school children. Ophthalmology 2013; 120: 1080–1085.
  • Shih YF, Chen CH, Chou AC, Ho TC, Lin LL, Hung PT. Effects of different concentrations of atropine on controlling myopia in myopic children. J Ocul Pharmacol Ther 1999; 15: 85–90.
  • Chia A, Chua WH, Cheung YB et al. Atropine for the treatment of childhood myopia: safety and efficacy of 0.5%, 0.1%, and 0.01% doses (Atropine for the Treatment of Myopia 2). Ophthalmology 2012; 119: 347–354.
  • Cho P, Cheung SW. Retardation of myopia in Orthokeratology (ROMIO) study: a 2‐year randomized clinical trial. Invest Ophthalmol Vis Sci 2012; 53: 7077–7085.
  • Hiraoka T, Kakita T, Okamoto F, Takahashi H, Oshika T. Long‐term effect of overnight orthokeratology on axial length elongation in childhood myopia: a 5‐year follow‐up study. Invest Ophthalmol Vis Sci 2012; 53: 3913–3919.
  • Santodomingo‐rubido J, Villa‐collar C, Gilmartin B, Gutiérrez‐ortega R. Myopia control with orthokeratology contact lenses in Spain: refractive and biometric changes. Invest Ophthalmol Vis Sci 2012; 53: 5060–5065.
  • Hasebe S, Jun J, Varnas SR. Myopia control with positively aspherized progressive addition lenses: a 2‐year, multicenter, randomized, controlled trial. Invest Ophthalmol Vis Sci 2014; 55: 7177–7188.
  • Sankaridurg P, Donovan L, Varnas S et al. Spectacle lenses designed to reduce progression of myopia: 12‐month results. Optom Vis Sci 2010; 87: 631–641.
  • Cheng D, Woo GC, Drobe B, Schmid KL. Effect of bifocal and prismatic bifocal spectacles on myopia progression in children: three‐year results of a randomized clinical trial. JAMA Ophthalmol 2014; 132: 258–264.
  • Berntsen DA, Sinnott LT, Mutti DO, Zadnik K. A randomized trial using progressive addition lenses to evaluate theories of myopia progression in children with a high lag of accommodation. Invest Ophthalmol Vis Sci 2012; 53: 640–649.
  • Gwiazda J, Chandler DL, Cotter SA et al. Progressive‐addition lenses versus single‐vision lenses for slowing progression of myopia in children with high accommodative lag and near esophoria. Invest Ophthalmol Vis Sci 2011; 52: 2749–2757.
  • Gwiazda J, Hyman L, Hussein M et al. A randomized clinical trial of progressive addition lenses versus single vision lenses on the progression of myopia in children. Invest Ophthalmol Vis Sci 2003; 44: 1492–1500.
  • Yang Z, Lan W, Ge J et al. The effectiveness of progressive addition lenses on the progression of myopia in Chinese children. Ophthalmic Physiol Opt 2009; 29: 41–48.
  • Edwards MH, Li RW, Lam CS, Lew JK, Yu BS. The Hong Kong progressive lens myopia control study: study design and main findings. Invest Ophthalmol Vis Sci 2002; 43: 2852–2858.
  • Leung JT, Brown B. Progression of myopia in Hong Kong Chinese schoolchildren is slowed by wearing progressive lenses. Optom Vis Sci 1999; 76: 346–354.
  • Cho P, Cheung SW, Edwards M. The longitudinal orthokeratology research in children (LORIC) in Hong Kong: a pilot study on refractive changes and myopic control. Curr Eye Res 2005; 30: 71–80.
  • Walline JJ, Jones LA, Sinnott LT. Corneal reshaping and myopia progression. Br J Ophthalmol 2009; 93: 1181–1185.
  • Chua WH, Balakrishnan V, Chan YH et al. Atropine for the treatment of childhood myopia. Ophthalmology 2006; 113: 2285–2291.
  • Back A, Chamberlain P, Logan N et al. Clinical evaluation of a dual‐focus myopia control 1 day soft contact lens ‐ 2‐year results. 2016. [Cited 3 July 2017.] Available at: http://www.aaopt.org/clinical‐evaluation‐dual‐focus‐myopia‐control‐1‐day‐soft‐contact‐lens‐2‐year‐results
  • Walline JJ, Gaume A, Jones LA et al. Benefits of contact lens wear for children and teens. Eye Contact Lens 2007; 33: 317–321.
  • Plowright AJ, Maldonado‐Codina C, Howarth GF, Kern J, Morgan PB. Daily disposable contact lenses versus spectacles in teenagers. Optom Vis Sci 2015; 92: 44–52.
  • Li L, Moody K, Tan DT, Yew KC, Ming PY, Long QB. Contact lenses in pediatrics study in Singapore. Eye Contact Lens 2009; 35: 188–195.
  • Sankaridurg P, Chen X, Naduvilath T et al. Adverse events during 2 years of daily wear of silicone hydrogels in children. Optom Vis Sci, 2013: 90: 961–969.
  • Chalmers RL, Hickson‐curran SB, Keay L, Gleason WJ, Albright R. Rates of adverse events with hydrogel and silicone hydrogel daily disposable lenses in a large postmarket surveillance registry: the TEMPO Registry. Invest Ophthalmol Vis Sci 2015; 56: 654–663.
  • Chalmers RL, Wagner H, Mitchell GL et al. Age and other risk factors for corneal infiltrative and inflammatory events in young soft contact lens wearers from the Contact Lens Assessment in Youth (CLAY) study. Invest Ophthalmol Vis Sci 2011; 52: 6690–6696.
  • Sulley A, Young G, Hunt C. Factors in the success of new contact lens wearers. Cont Lens Anterior Eye 2017; 40: 15–24.
  • Kollbaum PS, Jansen ME, Tan J, Meyer DM, Rickert ME. Vision performance with a contact lens designed to slow myopia progression. Optom Vis Sci 2013; 90: 205–214.
  • Fedtke C, Bakaraju RC, Ehrmann K, Chung J, Thomas V, Holden BA. Visual performance of single vision and multifocal contact lenses in non‐presbyopic myopic eyes. Cont Lens Anterior Eye 2016; 39: 38–46.
  • Chakraborty R., Read SA, Collins MJ. Monocular myopic defocus and daily changes in axial length and choroidal thickness of human eyes. Exp Eye Res 2012; 103: 47–54.
  • 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: 620–630.

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