32
Views
0
CrossRef citations to date
0
Altmetric
Review

Advances in keratoconus treatment

&
Pages 95-103 | Published online: 09 Jan 2014

References

  • Barraquer JI. Cirurgia Refractiva de La Cornea Instituto Barraquer de America – Bogotá – Tomo I (1989).
  • Barraquer JI. Modification of refraction by means of intracorneal inclusion. Int. Ophth. Clin.6, 53 (1966).
  • Burris TE. Intrastromal corneal ring technology: results and indications. Curr. Opin. Ophthalmol.9, 9–14 (1998).
  • Asbell PA, Uçakhan OO. Long-term follow-up of Intacs from single center. J. Cataract. Refract. Surg.27, 1456–1468 (2001).
  • Schanzlin DJ, Abbot RL, Asbell PA et al. Two-year outcomes of intrastromal corneal ring segments for the correction of myopia. Ophthalmology108, 1688–1694 (2001).
  • Asbell PA. Intacs corneal implants for myopia: an effective refractive alternative with proven efficacy and safety. In: Intracorneal Ring Segments and Alternative Treatments for Corneal Ectatic Diseases. Colin J, Ertan A (Kılıç Uzbek) (Eds). Kudret Göz., Ankara, Turkey, 37–48 (2007).
  • Silvestrini T, Mathis M, Loomas B, Burris T. A geometric model to predict the change in corneal curvature from the intracorneal ring (ICR). Invest. Ophthalmol. Vis. Sci.35, 2023 (1994).
  • Patel S, Marshall J, Fitzke FW III. Model for deriving the optical performance of the myopic eye corrected with an intracorneal ring. J. Refract. Surg.11, 248–252 (>1995).
  • Pokroy R, Levinger S. Intacs adjustment surgery for keratoconus. J. Cataract. Refract. Surg.36(6), 986–992 (2006).
  • Ertan A (Kılıç Uzbek), Kamburoğlu G, Bahadir M. Intacs insertion with the femtosecond laser for the management of keratoconus: one-year results. J. Cataract. Refract. Surg.32(12), 2039–2042 (2006).
  • Stulting RD, Sumers KD, Cavanagh HD et al. Penetrating keratoplasty in children. Ophthalmology91, 1222–1230 (1984).
  • Cowden JW. Penetrating keratoplasty in infants and children. Ophthalmology97, 324–329 (1990).
  • Dana MR, Moves AL, Gomes JA et al. The indications for and outcome in pediatric keratoplasty. Ophthalmology102, 1129–1138 (1995).
  • Alldredge OC, Krachmer JH. Clinical types of corneal rejection: their manisfestations, frequency, preoperative correlates, and treatment. Arch. Ophthalmol.99, 599 (1981).
  • Aasuri MK, Garg P, Gokhle N, Gupta S. Penetrating keratoplasty in children. Cornea19(2), 140–144 (2000).
  • Ertan A (Kılıç Uzbek), Ozkılıc E. Effect of age on outcomes in patients with keratoconus treated by intacs using a femtosecond laser. J. Refract. Surg.24(7), 690–695 (2008).
  • Kanellopoulos AJ, Pe LH, Perry HD, Donnenfeld ED. Modified intracorneal ring implantations (Intacs) for the management of moderate to advanced keratoconus. Efficacy and complications. Cornea25, 29–33 (2006).
  • Colin J. European evaluation: use of Intacs for the treatment of keratoconus. J. Cataract. Refract. Surg.32, 747–755 (2006).
  • Ertan A (Kılıç Uzbek), Kamburoğlu G. Intacs implantation using femtosecond laser for management of keratoconus: comparison of different stages. J. Cataract. Refract. Surg.34, 1521–1526 (2008).
  • Siganos D, Ferrara P, Chatzinikolas K, Bessis N, Papastergiou G. Ferrara intrastromal rings for the correction of keratoconus. J. Cataract. Refract. Surg.28, 1947–1951 (2002).
  • Kymionis GD, Siganos CS, Tsiklis NS et al. Long-term follow-up of Intacs in keratoconus. Am. J. Ophthalmol.143, 236–244 (2007).
  • Miranda D, Sartori M, Francesconi C, Allemann N, Ferrara P, Campos M. Ferrara intrastromal corneal ring segments for severe keratoconus. J. Refract. Surg.19, 645–653 (2003).
  • Jester JV, Moller-Pedersen T, Huang J et al. The cellular basis of corneal transparency: evidence for ’corneal crystallins’. J. Cell. Sci.112(Pt 5), 613–622 (1999).
  • Krachmer JH, Feder RS, Belin MW. Keratoconus and related noninflammatory corneal thinning disorders. Surv. Ophthalmol.28, 293–322 (1984).
  • Rabinowitz YS. Keratoconus. Surv. Ophthalmol.42, 217–319 (1998).
  • Lang JC. Ocular drug delivery: conventional ocular formulations. Adv. Drug Deliv. Rev.16, 39 (1995).
  • Spoerl E, Huhle M, Seiler T. Introduction of cross-links in corneal tissue. Exp. Eye Res.66, 97–103 (1998).
  • Wollensak G, Spoerl E, Seiler T. Stress-strain measurements of human and porcine corneas after riboflavin–ultraviolet-A-induced cross-linking. J. Cat. Refract. Surg.29, 1780–1785 (2003).
  • Wollensak G, Wilsch M, Spoerl E, Seiler T. Thermomechanical behavior of collagen-cross-linked porcine cornea. Ophthalmologica218, 136–140 (2004).
  • Faulborn J, Dunker S, Bowald S. Diabetic vitreoretinopathy: findings using the celloidin embedding technique. Ophthalmologica212, 369–376 (1998).
  • Kohlhaas M, Spoerl E, Schilde T et al. Biomechanical evidence of the distribution of crosslinks in corneas treated with riboflavin, ultraviolet A light. J. Cat. Refr. Surg.32, 279–283 (2006).
  • Müller LJ, Pels E, Vrensen GF. The specific architecture of the anterior stroma accounts for maintenance of corneal curvature. Br. J. Ophthalmol.85, 437–443 (2002).
  • Wollensak G. Crosslinking treatment of progressive keratoconus: new hope. Curr. Opin. Ophthalmol.17, 356–360 (2006).
  • Wollensak G, Spoerl E, Wilsch M, Seiler T. Keratocyte apoptosis after corneal collagen crosslinking using riboflavin/UVA treatment. Cornea23, 43–49 (2004).
  • Wollensak G, Aurich H, Pham DT, Wirbelauer C. Hydration behavior of porcine cornea crosslinked with riboflavin and ultraviolet A. J. Cataract. Refract. Surg.33, 516–521 (2007).
  • Wollensak G, Redl B. Gel electrophoretic analysis of corneal collagen after photodynamic cross-linking treatment. Cornea27, 353–356 (2008).
  • El Raggal TM. Riboflavin–ultraviolet A corneal cross-linking for keratoconus. Middle East Afr. J. Ophthalmol.16(4), 256–259 (2009).
  • Caporossi A, Baiocchi S, Mazotta C, Traversi C, Caporossi T. Parasurgical therapy for keratoconus by riboflavin–ultraviolet type A rays induced cross-linking of corneal collagen: preliminary refractive results in an Italian study. J. Cataract. Refract. Surg.32, 837–845 (2006).
  • Raiskup-Wolf F, Hoyer A, Spoerl E, Pillunat LE. Collagen crosslinking with riboflavin and ultraviolet-A light in keratoconus: long term results. J. Cataract. Refract. Surg.34, 796–801 (2008).
  • Vinciguerra P, Albe E, Trazza S et al. Refractive, topographic, tomographic, and aberrometric analysis of keratoconic eyes undergoing corneal crosslinking. Ophthalmology116, 369–378 (2009).
  • Witting-Silva C, Whiting M, Lamoureux E, Lindsay RG, Sullivan LJ, Snibson GR. A randomized controlled trial of corneal collagen cross-linking in progressive keratoconus: preliminary results. J. Refract. Surg.24, 720–725 (2008).
  • Wollensak G, Spoerl E, Wilsch M, Seiler T. Endothelial cell damage after riboflavin–ultraviolet-A treatment in the rabbit. J. Cataract. Refract. Surg.29, 1786–1790 (2003).
  • Chan CK, Sharma M, Wachler BS. Effect of inferior-segment Intacs with and without C3-R on keratoconus. J. Cataract. Refract. Surg.33, 75–80 (2007).
  • Ertan A (Kılıç Uzbek), Karacal H, Kamburoğlu G. Refractive and topographic results of transepithelial crosslinking treatment in eyes with Intacs. Cornea28(7), 719 (2009).
  • Kanellopoulos JA. Comparison of sequential vs same day simultaneous collagen crosslinking and topography guided PRK for treatment of keratoconus. J. Refract. Surg.25(9), S812–S818 (2009).
  • Barsam A, Patmore A, Muller D, Marshall J. Keratorefractive effect of microwave keratoplasty on human corneas. J. Cataract. Refract. Surg.36, 472–476 (2010).
  • Tan DT, Janardhanan P, Zhou H et al. Penetrating keratoplasty in Asian eyes: the Singapore Corneal Transplant Study. Ophthalmology115, 975–982 (2008).
  • Pramanik S, Musch DC, Sutphin JE, Farjo AA. Extended long-term outcomes of penetrating keratoplasty for keratoconus. Ophthalmology113, 1633–1638 (2006).
  • Zadok D, Schwarts S, Marcovich A et al. Penetrating keratoplasty for keratoconus: long-term results. Cornea24, 959–961 (2005).
  • Alio JL, Shah S, Barraquer C, Bilgihan K, Anwar M, Meles GR. New techniques in lamellar keratoplasty. Curr. Opin. Ophthalmol.13, 224–229 (2002).
  • Melles GR, Lander F, Rietveld FJ, Remeijer L, Beekhuis WH, Binder PS. A new surgical technique for deep stromal, anterior lamellar keratoplasty. Br. J. Ophthalmol.83, 327–333 (1999).
  • Anwar M, Teichmann KD. Big-bubble technique to bare Descemet’s membrane in anterior lamellar keratoplasty. J. Cataract. Refract. Surg.28, 398–403 (2002).
  • Ignacio TS, Nguyen TB, Chuck RS et al. Top hat wound configuration for penetrating keratoplasty using the femtosecond laser: a laboratory model. Cornea25, 336–340 (2006).
  • Steinert RF, Ignacio TS, Sarayba MA. ‘Top hat’-shaped penetrating keratoplasty using the femtosecond laser. Am. J. Ophthalmol.143, 689–691 (2007).
  • Anwar M, Teichmann KD. Deep lamellar keratoplasty: surgical techniques for anterior lamellar keratoplasty with and without baring of Descemet’s membrane. Cornea21, 374–383 (2002).
  • Parthasarathy A, Tan D. Simplified technique for deep lamellar keratoplasty. Cornea27, 387–388 (2008).
  • Tan D, Mehta J. Future directions in lamellar corneal transplantation. Cornea26, S21–S28 (2007).
  • Borderie VM, Werthel A, Touzeau O, Allouch C, Boutboul A, Laroche L. Comparison of techniques used for removing the recipient stroma in anterior lamellar keratoplasty. Arch. Ophthalmol.126, 31–37 (2008).
  • Fontana L, Parente G, Tassinari G. Clinical outcomes after deep anterior lamellar keratoplasty using the big-bubble technique in patients with keratoconus. Am. J. Ophthalmol.143, 117–124 (2007).
  • Fogla R, Padmanabhan P. Results of deep lamellar keratoplasty using the big-bubble technique in patients with keratoconus. Am. J. Ophthalmol.141, 254–259 (2006).
  • Funnell CL, Ball J, Noble B. Comparative cohort study of the outcomes of deep lamellar keratoplasty and penetrating keratoplasty for keratoconus. Eye20, 527–532 (2006).
  • Prasher P, Muftuoglu O, Mootha VV. Traumatic graft dehiscence after anterior lamellar keratoplasty. 28(2), 240–242 (2009).
  • Amayem AF, Anwar M. Fluid lamellar keratoplasty in keratoconus. Ophthalmology107, 76–79 (2000).
  • Melles GRJ, Remeijer L, Geerards AJM et al. A quick surgical technique for deep, anterior lamellar keratoplasty using visco-dissection. Cornea19, 427–432 (2000).
  • Shimmura S, Shimazaki J, Omoto M et al. Deep lamellar keratoplasty (DLKP) in keratoconus patients using viscoadaptive viscoelastics. Cornea24, 178–181 (2005).
  • Manche EE, Holland GN, Maloney RK. Deep lamellar keratoplasty using viscoelastic dissection. Arch. Ophthalmol.117, 1561–1565 (1999).
  • Yao Y. A novel technique for performing full bed deep lamellar keratoplasty. Cornea27(Suppl.), S19–S24 (2008).
  • Balestrazzi E, Balestrazzi A, Mosca L, Balestrazzi A. Deep lamellar keratoplasty with trypan blue intrastromal staining. J. Cataract. Refract. Surg.28, 929–931 (2002).
  • Sarayba MA, Juhasz T, Chuck RS et al. Femtosecond laser posterior lamellar keratoplasty: a laboratory model. Cornea24, 328–333 (2005).
  • Thompson RW Jr, Price MO, Bowers PJ et al. Long-term graft survival after penetrating keratoplasty. Ophthalmology110, 1396–1402 (2003).
  • Claesson M, Armitage WJ. Astigmatism and the impact of relaxing incisions after penetrating keratoplasty. J. Refract. Surg.23, 284–289 (2007).
  • Barraquer JI. Technique of penetrating keratoplasty. Am. J. Ophthalmol.33, 6–17 (1950).
  • Busin M. A new lamellar wound configuration for penetrating keratoplasty surgery. Arch. Ophthalmol.121, 260–265 (2003).
  • Binder PS. One thousand consecutive IntraLase laser in situ keratomileusis flaps. J. Cataract. Refract. Surg.32, 926–929 (2006).
  • Farid M, Kim M, Steinert RF. Results of penetrating keratoplasty performed with a femtosecond laser zigzag incision: initial report. Ophthalmology114, 2208–2212 (2007).
  • Price FW, Price MO, Grandin JC, Kwon R. Deep anterior lamellar keratoplasty with femtosecond-laser zigzag incisions. J. Cataract. Refract. Surg.35, 804–808 (2009).
  • Mian SI, Soong HK, Patel SV et al.In vivo femtosecond laser-assisted posterior lamellar keratoplasty in rabbits. Cornea25, 1205–1209 (2006).
  • Seitz B, Langenbucher A, Hofmann-Rummelt C et al. Nonmechanical posterior lamellar keratoplasty using the femtosecond laser (femto-plak) for corneal endothelial decompensation. Am. J. Ophthalmol.136, 769–772 (2003).
  • Durie DS, Kezirian GM. Femtosecond laser versus mechanical keratome flaps in wavefront-guided laser in situ keratomileusis. J. Cataract. Refract. Surg.31, 120–126 (2005).

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.