Fourier-domain optical coherence tomography-guided phototherapeutic keratectomy for the treatment of anterior corneal scarring
Author:
Corresponding Author:

Yong Liu. Southwest Hospital/Southwest Eye Hospital, Third Military Medical University (Army Medical University), Chongqing 400038, China. liuyy99@163.com

Fund Project:

Supported by Grants from National Natural Science Foundation of China (No.81900830); National Key Research & Development Intensification Key Project (No.2016YFC1101103; No.2018YFA0107302); Basic Science and Frontier Technology Project in Chongqing Science and Technology Commission (No.cstc2016jcyjA0297).

  • Article
  • | |
  • Metrics
  • |
  • Reference [29]
  • |
  • Related [20]
  • | | |
  • Comments
    Abstract:

    AIM: To evaluate the safety, visual and anatomic outcomes of fourier-domain optical coherence tomography (FD-OCT)-guided excimer laser phototherapeutic keratectomy (PTK) combined with photorefractive keratectomy (PRK) surgery in treating anterior corneal scarring. METHODS: Clinical data of 23 eyes of 21 patients with anterior corneal scarring underwent FD-OCT-guided PTK and PRK from Dec. 2014 to Jul. 2016 were reviewed. Patients were assessed for preoperative and postoperative uncorrected visual acuity (UCVA), best spectacle-corrected visual acuity (BSCVA), contrast sensitivity (CS), FD-OCT, corneal topography and colour figures of anterior segments. RESULTS: The preoperative corneal pathologic conditions included viral keratitis (7 patients, 7 eyes), band keratopathy (2 patients, 4 eyes), corneal dystrophy (4 patients, 4 eyes), traumatic corneal disease (2 patients, 2 eyes) and corneal chemical injury (6 patients, 6 eyes). Mean follow-up time was 10.65 (range, 3-19)mo. UCVA (in logMAR) improved from a mean of 0.79 (95%CI, 0.28-1.29) preoperatively to a mean of 0.45 (95%CI, 0.29-0.62) postoperatively (P=0.021). BSCVA (in logMAR) improved from 0.57 (95%CI, 0.27-0.88) preoperatively to a mean of 0.28 (95%CI, 0.15-0.41) postoperatively (P=0.001). Corneal topographic indices postoperatively showed significant improvement in corneal cylinder (P=0.009), the surface regularity index (P=0.007) and surface asymmetry index (P=0.00). Postoperative spherical equivalent averaged -0.53 diopters (-1.49 to 0.42). No complications were associated with the treatment. CONCLUSION: FD-OCT-guided PTK combined with PRK is safe and effective for the treatment of anterior corneal scarring by eliminating or reducing corneal opacities.

    Reference
    1 Lyall DA, Tarafdar S, Gilhooly MJ, Roberts F, Ramaesh K. Long term visual outcomes, graft survival and complications of deep anterior lamellar keratoplasty in patients with herpes simplex related corneal scarring. Br J Ophthalmol 2012;96(9):1200-1203.
    2 Nagpal R, Maharana PK, Roop P, Murthy SI, Rapuano CJ, Titiyal JS, Vajpayee RB, Sharma N. Phototherapeutic keratectomy. Surv Ophthalmol 2020;65(1):79-108.
    3 Fagerholm P. Phototherapeutic keratectomy: 12y of experience. Acta Ophthalmol Scand 2003;81(1):19-32.
    4 Jun I, Jung JW, Choi YJ, Kim TI, Seo KY, Kim EK. Long-term clinical outcomes of phototherapeutic keratectomy in corneas with granular corneal dystrophy type 2 exacerbated after LASIK. J Refract Surg 2018;34(2):132-139.
    5 Dogru M, Katakami C, Yamanaka A. Refractive changes after excimer laser phototherapeutic keratectomy. J Cataract Refract Surg 2001;27(5):686-692.
    6 Rush SW, Rush RB. Optical coherence tomography-guided transepithelial phototherapeutic keratectomy for central corneal opacity in the pediatric population. J Ophthalmol 2018;2018:3923617.
    7 Siebelmann S, Horstmann J, Scholz P, Bachmann B, Matthaei M, Hermann M, Cursiefen C. Intraoperative changes in corneal structure during excimer laser phototherapeutic keratectomy (PTK) assessed by intraoperative optical coherence tomography. Graefes Arch Clin Exp Ophthalmol 2018;256(3):575-581.
    8 Salze JJ. Corneal laser surgery. UK: Mosby-Year Book Inc; 1995:213.
    9 Stark WJ, Chamon W, Kamp MT, Enger CL, Rencs EV, Gottsh JD. Clinical follow-up of 193-nm ArF excimer laser photokeratectomy. Ophthalmology 1992;99(5):805-812.
    10 Lewis DR, Price MO, Feng MT, Price FW Jr. Recurrence of granular corneal dystrophy type 1 after phototherapeutic keratectomy, lamellar keratoplasty, and penetrating keratoplasty in a single population. Cornea 2017;36(10):1227-1232.
    11 Hafner A, Langenbucher A, Seitz B. Long-term results of phototherapeutic keratectomy with 193-nm excimer laser for macular corneal dystrophy. Am J Ophthalmol 2005;140(3):392-396.
    12 Rapuano CJ. Excimer laser phototherapeutic keratectomy. Int Ophthalmol Clin 1996;36(4):127-136.
    13 Lee J, Kim JH, Lee D, Chang JW, Shin JY, Seo JW, Seo MH, Moon NJ. Long-term clinical outcome of femtosecond laser-assisted lamellar keratectomy with phototherapeutic keratectomy in anterior corneal stromal dystrophy. Br J Ophthalmol 2018;102(1):31-36.
    14 Ghanem VC, Passos ML, Piccinini AL, Ghanem RC. Focal phototherapeutic keratectomy for the treatment of apical leucoma syndrome. Arq Bras Oftalmol 2018;81(4):344-347.
    15 Lee WS, Lam CK, Manche EE. Phototherapeutic keratectomy for epithelial basement membrane dystrophy. Clin Ophthalmol 2017;11:15-22.
    16 Wilson SE, Marino GK, Medeiros CS, Santhiago MR. Phototherapeutic keratectomy: science and art. J Refract Surg 2017;33(3):203-210.
    17 Kepez Yildiz B, Urvasizoglu S, Yildirim Y, Agca A, K Besek N, Fazil K, Eris E, Aygit ED, Taskapili M, Demirok A. Changes in higher-order aberrations after phototherapeutic keratectomy for subepithelial corneal infiltrates after epidemic keratoconjunctivitis. Cornea 2017;36(10):1233-1236.
    18 Li Y, Yokogawa H, Tang ML, Chamberlain W, Zhang XB, Huang D. Guiding flying-spot laser transepithelial phototherapeutic keratectomy with optical coherence tomography. J Cataract Refract Surg 2017;43(4):525-536.
    19 Cleary C, Li Y, Tang ML, Samy El Gendy NM, Huang D. Predicting transepithelial phototherapeutic keratectomy outcomes using Fourier domain optical coherence tomography. Cornea 2014;33(3):280-287.
    20 Ventura BV, Moraes HV Jr, Kara-Junior N, Santhiago MR. Role of optical coherence tomography on corneal surface laser ablation. J Ophthalmol 2012;2012:676740.
    21 Rush SW, Han DY, Rush RB. Optical coherence tomography-guided transepithelial phototherapeutic keratectomy for the treatment of anterior corneal scarring. Am J Ophthalmol 2013;156(6):1088-1094.
    22 Rapuano CJ. Excimer laser phototherapeutic keratectomy in eyes with anterior corneal dystrophies: short-term clinical outcomes with and without an antihyperopia treatment and poor effectiveness of ultrasound biomicroscopic evaluation. Cornea 2005;24(1):20-31.
    23 Sharma N, Prakash G, Sinha R, Tandon R, Titiyal JS, Vajpayee RB. Indications and outcomes of phototherapeutic keratectomy in the developing world. Cornea 2008;27(1):44-49.
    24 Mori H, Miura M, Iwasaki T, Goto H, Sakurai Y, Watanabe Y, Yasuno Y. Three-dimensional optical coherence tomography-guided phototherapeutic keratectomy for granular corneal dystrophy. Cornea 2009;28(8):944-947.
    25 Kim TI, Hong JP, Ha BJ, Stulting RD, Kim EK. Determination of treatment strategies for granular corneal dystrophy type 2 using Fourier-domain optical coherence tomography. Br J Ophthalmol 2010;94(3):341-345.
    26 Fountain TR, de la Cruz Z, Green WR, Stark WJ, Azar DT. Reassembly of corneal epithelial adhesion structures after excimer laser keratectomy in humans. Arch Ophthalmol 1994;112(7):967-972.
    27 van Setten GB, Koch JW, Tervo K, Lang GK, Tervo T, Naumann GO, Kolkmeier J, Virtanen I, Tarkkanen A. Expression of tenascin and fibronectin in the rabbit cornea after excimer laser surgery. Graefes Arch Clin Exp Ophthalmol 1992;230(2):178-183.
    28 SundarRaj N, Geiss MJ 3rd, Fantes F, Hanna K, Anderson SC, Thompson KP, Thoft RA, Waring GO 3rd. Healing of excimer laser ablated monkey corneas. An immunohistochemical evaluation. Arch Ophthalmol 1990;108(11):1604-1610.
    29 Rush SW, Matulich J, Rush RB. Long-term outcomes of optical coherence tomography-guided transepithelial phototherapeutic keratectomy for the treatment of anterior corneal scarring. Br J Ophthalmol 2014;98(12):1702-1706.
    Cited by
    Comments
    Comments
    分享到微博
    Submit
Get Citation

Yu-Li Yang, Qian Jian, Bo Liu,/et al.Fourier-domain optical coherence tomography-guided phototherapeutic keratectomy for the treatment of anterior corneal scarring. Int J Ophthalmol, 2020,13(11):1720-1726

Copy
Share
Article Metrics
  • Abstract:1006
  • PDF: 738
  • HTML: 0
  • Cited by: 0
Publication History
  • Received:August 05,2019
  • Revised:October 25,2019
  • Online: September 17,2020