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ORIGINAL RESEARCH

Evaluation of Visual Outcomes and 3-Month Refractive Stability of a New Hydrophobic Acrylic Intraocular Lens

Pages 1859-1864 | Received 02 Apr 2023, Accepted 22 Jun 2023, Published online: 03 Jul 2023

References

  • Schallhorn JM. Multifocal and extended depth of focus intraocular lenses: a comparison of data from the United States food and drug administration premarket approval trials. J Refract Surg. 2021;37:98–104. doi:10.3928/1081597X-20201111-02
  • Cao K, Friedman DS, Jin S, et al. Multifocal versus monofocal intraocular lenses for age-related cataract patients: a system review and meta-analysis based on randomized controlled trials. Surv Ophthalmol. 2019;64:647–658. doi:10.1016/j.survophthal.2019.02.012
  • Pedrotti E, Carones F, Aiello F, et al. Comparative analysis of visual outcomes with 4 intraocular lenses: monofocal, multifocal, and extended range of vision. J Cataract Refract Surg. 2018;44:156–167. doi:10.1016/j.jcrs.2017.11.011
  • Pedrotti E, Carones F, Talli P, et al. Comparative analysis of objective and subjective outcomes of two different intraocular lenses: trifocal and extended range of vision. BMJ Open Ophthalmol. 2020;5:e000497. doi:10.1136/bmjophth-2020-000497
  • Wan KH, Au ACK, Kua WN, et al. Enhanced monofocal versus conventional monofocal intraocular lens in cataract surgery: a meta-analysis. J Refract Surg. 2022;38:538–546. doi:10.3928/1081597X-20220707-01
  • MacRae S, Holladay JT, Glasser A, et al. Special report: American Academy of Ophthalmology task force consensus statement for extended depth of focus intraocular lenses. Ophthalmology. 2017;124:139–141. doi:10.1016/j.ophtha.2016.09.039
  • Maxwell A, Suryakumar R. Long-term effectiveness and safety of a three-piece acrylic hydrophobic intraocular lens modified with hydroxyethyl-methacrylate: an open-label, 3-year follow-up study. Clin Ophthalmol. 2018;12:2031–2037. doi:10.2147/OPTH.S175060
  • Ballin N. Glistenings in injection-molded lens. J Am Intraocul Implant Soc. 1984;10:473. doi:10.1016/S0146-2776(84)80052-X
  • Kato K, Nishida M, Yamane H, Nakamae K, Tagami Y, Tetsumoto K. Glistening formation in an AcrySof lens initiated by spinodal decomposition of the polymer network by temperature change. J Cataract Refract Surg. 2001;27:1493–1498. doi:10.1016/S0886-3350(01)00895-1
  • Hayashi K, Hirata A, Yoshida M, Yoshimura K, Hayashi H. Long-term effect of surface light scattering and glistenings of intraocular lenses on visual function. Am J Ophthalmol. 2012;154(2):240–251 e242. doi:10.1016/j.ajo.2012.03.011
  • Stanojcic N, O’Brart D, Hull C, et al. Visual and refractive outcomes and glistenings occurrence after implantation of 2 hydrophobic acrylic aspheric monofocal IOLs. J Cataract Refract Surg. 2020;46:986–994. doi:10.1097/j.jcrs.0000000000000201
  • Lehmann R, Maxwell A, Lubeck DM, Fong R, Walters TR, Fakadej A. Effectiveness and safety of the Clareon monofocal intraocular lens: outcomes from a 12-month single-arm clinical study in a large sample. Clin Ophthalmol. 2021;15:1647–1657. doi:10.2147/OPTH.S295008
  • Oshika T, Sasaki N; Clinical Study Group on New Intraocular L, Delivery S. One-year multicenter evaluation of a new hydrophobic acrylic intraocular lens with hydroxyethyl methacrylate in an automated preloaded delivery system. J Cataract Refract Surg. 2022;48(3):275–279. doi:10.1097/j.jcrs.0000000000000746
  • Negishi K, Masui S, Torii H, Nishi Y, Tsubota K, Mohan RR. Refractive stability of a new single-piece hydrophobic acrylic intraocular lens and corneal wound repair after implantation using a new automated intraocular lens delivery system. PLoS One. 2020;15:e0238366. doi:10.1371/journal.pone.0238366
  • Nuijts R, Bhatt U, Nanavaty MA, Roberts TV, Peterson R, Teus MA. Three-year multinational clinical study on an aspheric hydrophobic acrylic intraocular lens. J Cataract Refract Surg. 2023. doi:10.1097/j.jcrs.0000000000001173
  • McCabe C, Berdahl J, Reiser H, et al. Clinical outcomes in a United States registration study of a novel extended depth of focus intraocular lens with a nondiffractive design. J Cataract Refract Surg. 2022;48(11):1297–1304. doi:10.1097/j.jcrs.0000000000000978
  • Huh J, Eom Y, Yang SK, Choi Y, Kim HM, Song JS. A comparison of clinical outcomes and optical performance between monofocal and new monofocal with enhanced intermediate function intraocular lenses: a case-control study. BMC Ophthalmol. 2021;21:365. doi:10.1186/s12886-021-02124-w
  • Lopes D, Loureiro T, Carreira R, et al. Comparative evaluation of visual outcomes after bilateral implantation of an advanced or conventional monofocal intraocular lens. Eur J Ophthalmol. 2022;32:229–234. doi:10.1177/1120672121995343
  • Nanavaty MA, Ashena Z, Gallagher S, Borkum S, Frattaroli P, Barbon E. Visual acuity, wavefront aberrations, and defocus curves with an enhanced monofocal and a monofocal intraocular lens: a prospective, randomized study. J Refract Surg. 2022;38:10–20. doi:10.3928/1081597X-20211109-02
  • Monaco G, Gari M, Di Censo F, Poscia A, Ruggi G, Scialdone A. Visual performance after bilateral implantation of 2 new presbyopia-correcting intraocular lenses: trifocal versus extended range of vision. J Cataract Refract Surg. 2017;43:737–747. doi:10.1016/j.jcrs.2017.03.037
  • US FDA. AcrySofTM IQ VivityTM extended vision Intraocular Lens (IOL): summary of safety and effectiveness data. Available from: https://www.accessdata.fda.gov/cdrh_docs/pdf/P930014S126B.pdf. Accessed June 23, 2023.
  • US FDA. TECNIS® symfony extended range of vision IOL. Available from: https://www.accessdata.fda.gov/cdrh_docs/pdf/p980040s065d.pdf. Accessed June 23, 2023.