Introducing
Abilitiâ„¢ Overnight Therapeutic Lenses for Myopia Management
Abiliti™ Overnight lenses are approved in EU for myopia control and have been shown to reduce axial elongation in myopic children by 0.28mm, on average, over a 2-year period.*,1-4 Worn overnight, these lenses temporarily reshape the cornea5-8, and allow patients to see clearly the next day after being worn overnight.**,9 Each lens is specifically designed to fit your child’s eye based on its unique corneal shape and prescription.10 Abiliti™ Overnight lenses can help manage the progression of your child's myopia.
*Compared to single vision spectacles. Generally speaking, 0.18mm corresponds to approximately 0.50D of myopia control.
**Reducing refractive error up to 4.00D and up to 2.50D of astigmatism
**Reducing refractive error up to 4.00D and up to 2.50D of astigmatism
Why treat myopia with Abilitiâ„¢ Overnight lenses?
Daytime freedom from glasses and contacts
A great option for those active in athletics & water activities. In addition, children reported that these lenses subjectively improve appearance and social self-perception versus wearing glasses2
Improved vision related quality of life
Significant improvement in vision-related quality of life for patients, compared to single vision spectacles11
Greater parental control
Parents can help with insertion & removal at home, making this a good option for younger children
Astigmatism coverage
Corrects corneal astigmatism up to 2.50D9
Introducing SeeAbilitiâ„¢ app as part of our comprehensive treatment approach with the Abilitiâ„¢ portfolio:
We offer a digital companion app to help you at every step of the myopia management journey. With the latest resources, treatment support, and personalized tracking, the SeeAbilitiâ„¢ app helps sustain behavioural change and partnership with your eye care professional to potentially improve myopia management outcomes.
Make an appointment today to learn more about Abilitiâ„¢ Portfolio
REFERENCES
1. Cho P, Cheung SW. Retardation of myopia in Orthokeratology (ROMIO) study: a 2-year randomized clinical trial. Invest Ophthalmol Vis Sci [Internet]. 2012/09/13. 2012;53(11):7077– 85.
2. 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(8).
3. Chen C, Cheung SW, Cho P. Myopia control using toric orthokeratology (TO-SEE study). Invest Ophthalmol Vis Sci [Internet]. 2013/09/05. 2013;54(10):6510–7.
4. Walline JJ, Robboy MW, Hilmantel G, Tarver ME, Afshari NA, Dhaliwal DK, Morse CL, Quinn CJ, Repka MX, Eydelman MB. Food and Drug Administration, American Academy of Ophthalmology, American Academy of Optometry, American Association for Pediatric Ophthalmology and Strabismus, American Optometric Association, American Society of Cataract and Refractive Surgery, and Contact Lens Association of Ophthalmologists Co- Sponsored Workshop: Controlling the Progression of Myopia: Contact Lenses and Future Medical Devices. Eye Contact Lens.
5. Santodomingo-Rubido J, Villa-Collar C, Gilmartin B, Gutiérrez- Ortega R. Short-term changes in ocular biometry and refraction after discontinuation of long-term orthokeratology. Eye Contact Lens. 2014;40(2).
6. Cho P, Cheung SW. Discontinuation of orthokeratology on eyeball elongation (DOEE). Cont Lens Anterior Eye [Internet]. 2017/01/01. 2017;40(2):82–7.
7. Lau JK, Vincent SJ, Cheung SW, Cho P. The influence of orthokeratology compression factor on ocular higher-order aberrations. Clin Exp Optom. 2020 Jan; 103(1):123-128.
8. Wan K, Lau JK kit, Cheung SW, Cho P. Refractive and corneal responses of young myopic children to short-term orthokeratology treatment with different compression factors. Contact Lens Anterior Eye. 2020;43(1):65-72.
9. Data on File 2021. Menicon CE technical file.
10. Data on File 2021 Menicon Design History file.
11. Santodomingo-Rubido J, Villa-Collar C, Gilmartin B, Gutiérrez- Ortega R. Myopia control with orthokeratology contact lenses in Spain: A comparison of vision-related quality-of-life measures between orthokeratology contact lenses and single-vision spectacles. Eye & Contact Lens. 2013;39(2).
HKM20220216_004
2. 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(8).
3. Chen C, Cheung SW, Cho P. Myopia control using toric orthokeratology (TO-SEE study). Invest Ophthalmol Vis Sci [Internet]. 2013/09/05. 2013;54(10):6510–7.
4. Walline JJ, Robboy MW, Hilmantel G, Tarver ME, Afshari NA, Dhaliwal DK, Morse CL, Quinn CJ, Repka MX, Eydelman MB. Food and Drug Administration, American Academy of Ophthalmology, American Academy of Optometry, American Association for Pediatric Ophthalmology and Strabismus, American Optometric Association, American Society of Cataract and Refractive Surgery, and Contact Lens Association of Ophthalmologists Co- Sponsored Workshop: Controlling the Progression of Myopia: Contact Lenses and Future Medical Devices. Eye Contact Lens.
5. Santodomingo-Rubido J, Villa-Collar C, Gilmartin B, Gutiérrez- Ortega R. Short-term changes in ocular biometry and refraction after discontinuation of long-term orthokeratology. Eye Contact Lens. 2014;40(2).
6. Cho P, Cheung SW. Discontinuation of orthokeratology on eyeball elongation (DOEE). Cont Lens Anterior Eye [Internet]. 2017/01/01. 2017;40(2):82–7.
7. Lau JK, Vincent SJ, Cheung SW, Cho P. The influence of orthokeratology compression factor on ocular higher-order aberrations. Clin Exp Optom. 2020 Jan; 103(1):123-128.
8. Wan K, Lau JK kit, Cheung SW, Cho P. Refractive and corneal responses of young myopic children to short-term orthokeratology treatment with different compression factors. Contact Lens Anterior Eye. 2020;43(1):65-72.
9. Data on File 2021. Menicon CE technical file.
10. Data on File 2021 Menicon Design History file.
11. Santodomingo-Rubido J, Villa-Collar C, Gilmartin B, Gutiérrez- Ortega R. Myopia control with orthokeratology contact lenses in Spain: A comparison of vision-related quality-of-life measures between orthokeratology contact lenses and single-vision spectacles. Eye & Contact Lens. 2013;39(2).
REFERENCES