One-Year Visual Outcomes and Corneal Higher-Order Aberration Assessment of Small-Incision Lenticule Extraction for the Treatment of Myopia and Myopic Astigmatism
Abstract
1. Introduction
2. Materials and Methods
3. Results
3.1. Demographics
3.2. Efficacy, Visual Acuity, and Safety
3.3. Accuracy and Stability
3.4. Astigmatism and Vector Analysis
3.5. Long-Term Outcomes beyond 12 Months
3.6. Corneal Wavefront Aberrometry
3.7. Adverse Events and Complications
4. Discussion
Study | Year | Preop SEQ (SD) | Preop Sph (SD) | Preop Cyl (SD) | n | %UDVA ≥ 20/20 | %UDVA ≥ 20/40 | %CDVA Loss ≥ 2 lines | %SEQ ≤ 0.50 D | %SEQ ≤ 1.00 D |
---|---|---|---|---|---|---|---|---|---|---|
3 months | ||||||||||
Current Study | 2022 | −5.59 (1.62) | −5.29 (1.60) | −0.62 (0.60) | 308 | 80% | 99% | 0.30% | 84% | 94% |
Ivarsen and Hjortdal [15] | 2014 | --- | --- | <−2.50 D | 669 | --- | 81% ≥20/25 | 2.80% | --- | --- |
≥−2.50 D | 106 | --- | 64% ≥20/25 | 0.90% | --- | --- | ||||
Hjordtal et al. [16] | 2012 | −7.19 (1.30) | −6.41 (1.77) | −0.60 (0.46) | 670 | --- | --- | --- | 80.10% | 94.20% |
Hansen et al. [17] | 2016 | −6.82 (1.66) | --- | −0.83 (0.84) | 722 | --- | 83% ≥20/25 | 1.60% | 88% | 98% |
Kamiya et al. (multi- center) [18] | 2019 | −4.33 (1.61) | --- | −0.64 (0.51) | 252 | 100% | 100% | 0.80% | 88% | 98% |
Liu et al. (3–6 mo) [19] | 2021 | −4.96 (2.07) | --- | −1.04 (0.77) | 462 | 93% | --- | 0% | 98% | 100% |
12 months | ||||||||||
Current Study | 2022 | −5.55 (1.48) | −5.22 (1.43) | −0.58 (0.61) | 213 | 79% | 99% | 0% | 84% | 97% |
VisuMax FDA PMA [4] | 2018 | −5.48 | −4.82 (2.39) | −1.34 (0.80) | 349 | 89.40% | 98.90% | 0% | 94.80% | 99.10% |
Dishler et al. [20] | 2020 | −5.41 (2.31) | −4.65 (2.33) | −1.52 (0.70) | 300 | 89.00% | 99.00% | 0% | 95.30% | 99.30% |
Chansue et al. [21] | 2015 | −4.96 (1.88) | −4.61 (1.85) | −0.71 (0.61) | 318/347 | 90% | 98% | 0% | 93% | 99% |
Wu et al. [22] | 2016 | <−6.0 D | −6.49 (0.93) | −0.82 (0.68) | 65 | --- | --- | --- | 95.40% | 100% |
≥−6.0 D | −4.21 (1.10) | −0.95 (0.88) | 91 | --- | --- | --- | 96.70% | 100% | ||
>1 year | ||||||||||
Current Study (1.5–5 yrs) | 2022 | −4.91 (1.46) | −4.73 (1.45) | −0.36 (0.42) | 31 | 63% | 96.70% | 0% | 77.80% | 96.30% |
Han et al. (3 yrs) [23] | 2019 | −6.54 (1.69) | −6.14 (1.62) | −0.80 (0.68) | 60 | 90% | --- | 2% lost 1 line | 80% | --- |
Yildirim et al. (2 yrs) [24] | 2016 | −7.10 (0.95) | −6.64 (0.88) | −0.82 (0.55) | 45 | 80% | 100% | 2% lost 1 line | 92% | 100% |
Tian et al. (5 yrs) [25] | 2022 | −7.16 (1.51) | −6.74 (1.45) | −0.84 (0.70) | 41 | 90.20% | 100% | 0% | 87.80% | 95.10% |
Pedersen et al. (3 yrs) [26] | 2015 | −7.30 (1.40) | --- | −0.70 (0.60) | 87 | 72% | --- | --- | 78% | 90% |
Blum et al. (5 yrs) [27] | 2016 | --- | --- | --- | 56 | --- | --- | 0% | 48.20% | 78.60% |
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Sekundo, W.; Kunert, K.; Russmann, C.; Gille, A.; Bissmann, W.; Stobrawa, G.; Sticker, M.; Bischoff, M.; Blum, M. First efficacy and safety study of femtosecond lenticule extraction for the correction of myopia. Six-month results. J. Cataract Refract. Surg. 2008, 34, 1513–1520. [Google Scholar] [CrossRef]
- Reinstein, D.Z.; Archer, T.J.; Gobbe, M. Small incision lenticule extraction (SMILE) history, fundamentals of a new refractive surgery technique and clinical outcomes. Eye Vis. 2014, 1, 3. [Google Scholar] [CrossRef] [PubMed]
- Shah, R. History and Results; Indications and Contraindications of SMILE Compared with LASIK. Asia Pac. J. Ophthalmol. 2019, 8, 371–376. [Google Scholar] [CrossRef]
- FDA SSED SMILE (Visumax). 2018. Available online: https://www.accessdata.fda.gov/scripts/cdrh/cfdocs/cfpma/pma.cfm?id=P150040 (accessed on 29 April 2022).
- Moshirfar, M.; Murri, M.S.; Shah, T.J.; Linn, S.H.; Ronquillo, Y.; Birdsong, O.C.; Hoopes, P.C., Jr. Initial Single-Site Surgical Experience with SMILE: A Comparison of Results to FDA SMILE, and the Earliest and Latest Generation of LASIK. Ophthalmol. Ther. 2018, 7, 347. [Google Scholar] [CrossRef] [PubMed]
- Holladay, J.T. Visual acuity measurements. J. Cataract Refract. Surg. 2004, 30, 287–290. [Google Scholar] [CrossRef] [PubMed]
- Alpins, N. Astigmatism analysis by the Alpins method. J. Cataract Refract. Surg. 2001, 27, 31–49. [Google Scholar] [CrossRef]
- Moshirfar, M.; Thomson, A.C.; West, W.B.; Hall, M.N.; McCabe, S.E.; Thomson, R.J.; Ronquillo, Y.C.; Hoopes, P.C. Initial Single-Site Experience Using SMILE for the Treatment of Astigmatism in Myopic Eyes and Comparison of Astigmatic Outcomes with Existing Literature. Clin. Ophthalmol. 2020, 14, 3551. [Google Scholar] [CrossRef]
- U.S. Food and Drug Administration. Checklist of Information Usually Submitted in an Investigational Device Exemptions (IDE) Application for Refractive Surgery Lasers; U.S. Food and Drug Administration: Silver Spring, MD, USA, 1996.
- Schallhorn, J.M.; Schallhorn, S.C.; Hannan, S.J. Impact of Refractive Outcomes on Bias in Follow-up and Completion of Patient-Reported Outcome Measures after Laser Vision Correction. Ophthalmology 2021, 128, 1284–1291. [Google Scholar] [CrossRef]
- Jin, H.Y.; Wan, T.; Yu, X.N.; Yao, K. Corneal higher-order aberrations of the anterior surface, posterior surface, and total cornea after small incision lenticule extraction (SMILE): High myopia versus mild to moderate myopia. BMC Ophthalmol. 2018, 18, 295. [Google Scholar] [CrossRef]
- Sekundo, W.; Gertnere, J.; Bertelmann, T.; Solomatin, I. One-year refractive results, contrast sensitivity, high-order aberrations and complications after myopic small-incision lenticule extraction (ReLEx SMILE). Graefe’s Arch. Clin. Exp. Ophthalmol. 2014, 252, 837–843. [Google Scholar] [CrossRef]
- Li, M.; Zhao, J.; Miao, H.; Shen, Y.; Sun, L.; Tian, M.; Wadium, E.; Zhou, X. Mild Decentration Measured by a Scheimpflug Camera and Its Impact on Visual Quality Following SMILE in the Early Learning Curve. Investig. Ophthalmol. Vis. Sci. 2014, 55, 3886–3892. [Google Scholar] [CrossRef]
- Mrochen, M.; Kaemmerer, M.; Mierdel, P.; Seiler, T. Increased higher-order optical aberrations after laser refractive surgery: A problem of subclinical decentration. J. Cataract Refract. Surg. 2001, 27, 362–369. [Google Scholar] [CrossRef]
- Ivarsen, A.; Hjortdal, J. Correction of myopic astigmatism with small incision lenticule extraction. J. Refract. Surg. 2014, 30, 240–247. [Google Scholar] [CrossRef] [PubMed]
- Hjortdal, J.; Vestergaard, A.H.; Ivarsen, A.; Ragunathan, S.; Asp, S. Predictors for the outcome of small-incision lenticule extraction for myopia. J. Refract. Surg. 2012, 28, 865–871. [Google Scholar] [CrossRef] [PubMed]
- Hansen, R.S.; Lyhne, N.; Grauslund, J.; Vestergaard, A.H. Small-incision lenticule extraction (SMILE): Outcomes of 722 eyes treated for myopia and myopic astigmatism. Graefe’s Arch. Clin. Exp. Ophthalmol. 2016, 254, 399–405. [Google Scholar] [CrossRef]
- Kamiya, K.; Takahashi, M.; Nakamura, T.; Kojima, T.; Toda, I.; Kariya, M. A Multicenter Study on Early Outcomes of Small-Incision Lenticule Extraction for Myopia. Sci. Rep. 2019, 9, 4067. [Google Scholar] [CrossRef]
- Liu, E.T.; Sella, R.; Goernert, P.; Kim, K.; Chen, H.; Lin, R.T. Refractive results with SMILE using lower energy settings in the United States. PLoS ONE 2021, 16, e0258835. [Google Scholar] [CrossRef]
- Dishler, J.G.; Slade, S.; Seifert, S.; Schallhorn, S.C. Small-Incision Lenticule Extraction (SMILE) for the Correction of Myopia with Astigmatism: Outcomes of the United States Food and Drug Administration Premarket Approval Clinical Trial. Ophthalmology 2020, 127, 1020–1034. [Google Scholar] [CrossRef]
- Chansue, E.; Tanehsakdi, M.; Swasdibutra, S.; McAlinden, C. Efficacy, predictability and safety of small incision lenticule extraction (SMILE). Eye Vis. 2015, 2, 14. [Google Scholar] [CrossRef]
- Wu, W.; Wang, Y.; Zhang, H.; Zhang, J.; Li, H.; Dou, R. One-year visual outcome of small incision lenticule extraction (SMILE) surgery in high myopic eyes: Retrospective cohort study. BMJ Open 2016, 6, e010993. [Google Scholar] [CrossRef]
- Han, T.; Xu, Y.; Han, X.; Zeng, L.; Shang, J.; Chen, X.; Zhou, X. Three-year outcomes of small incision lenticule extraction (SMILE) and femtosecond laser-assisted laser in situ keratomileusis (FS-LASIK) for myopia and myopic astigmatism. Br. J. Ophthalmol. 2019, 103, 565. [Google Scholar] [CrossRef]
- Yıldırım, Y.; Alagöz, C.; Demir, A.; Ölçücü, O.; Özveren, M.; Ağca, A.; Özgürhan, E.B.; Demirok, A. Ori gi nal Ar tic le 200 Long-term Results of Small-incision Lenticule Extraction in High Myopia. Turk. J. Ophthalmol. 2016, 46, 200–204. [Google Scholar] [CrossRef]
- Tian, M.; Jian, W.; Miao, H.; Li, M.; Xia, F.; Zhou, X. Five-Year Follow-Up of Visual Outcomes and Optical Quality After Small Incision Lenticule Extraction for Moderate and High Myopia. Ophthalmol. Ther. 2022, 11, 355. [Google Scholar] [CrossRef]
- Pedersen, I.B.; Ivarsen, A.; Hjortdal, J. Three-Year Results of Small Incision Lenticule Extraction for High Myopia: Refractive Outcomes and Aberrations. J. Refract. Surg. 2015, 31, 719–724. [Google Scholar] [CrossRef]
- Blum, M.; Täubig, K.; Gruhn, C.; Sekundo, W.; Kunert, K.S. Five-year results of Small Incision Lenticule Extraction (ReLEx SMILE). Br. J. Ophthalmol. 2016, 100, 1192–1195. [Google Scholar] [CrossRef]
Demographics | Treated for Spherical Myopia Only | Treated for Astigmatic Myopia | All Treated Eyes | Targeted for Monovision | Required PRK Enhancement |
---|---|---|---|---|---|
Number of eyes | 217 eyes | 188 eyes | 405 eyes | 22 eyes | 15 eyes |
(no. of patients) | (129 patients) | (116 patients) | (207 patients) | −5.40% | (11 patients) |
Gender | |||||
Male | 52 (40%) | 43 (37%) | 85 (41%) | 9 (41%) | 3 (20%) |
Female | 77 (60%) | 73 (63%) | 122 (59%) | 13 (59%) | 8 (80%) |
Surgical Eye | |||||
OD | 111 (51%) | 92 (49%) | 203 (50%) | 4 (18%) | 6 (40%) |
OS | 106 (49%) | 96 (51%) | 202 (50%) | 18 (82%) | 9 (60%) |
Age (years) | |||||
Mean (SD) | 34.4 (7.6) | 34.6 (7.9) | 34.5 (7.7) | 46.8 (4.5) | 34.2 (6.2) |
Min., Max. | 18, 55 | 21, 57 | 18, 57 | 39, 54 | 25, 45 |
MRSE | −5.27 (1.55) | −5.84 (1.53) | −5.55 (1.57) | --- | --- |
Average sphere | −5.16 (1.55) | −5.30 (1.51) | −5.23 (1.54) | --- | --- |
Average cylinder | −0.22 (0.22) | −1.10 (0.62) | −0.63 (0.63) | --- | --- |
Outcomes | Preoperative | 3 Months | 12 Months | >1 Year (Range: 18 mo–3 yr) |
---|---|---|---|---|
CDVA (LogMAR) | n = 383 | n = 309 | n = 211 | n = 26 |
Mean (SD) | −0.007 (0.027) | −0.015 (0.042) | −0.022 (0.046) | 0.015 (0.087) |
Range (Min, Max) | −0.14, 0.04 | −0.14, 0.18 | −0.14, 0.06 | −0.02, 0.44 |
UDVA (LogMAR) | n = 376 * | n = 299 | n = 207 | n = 30 |
Mean (SD) | 1.43 (0.24) | 0.026 (0.099) | 0.025 (0.091) | 0.08 (0.134) |
Range (Min, Max) | 0.1, 1.7 | −0.14, 0.8 | −0.14, 0.54 | 0, 0.54 |
Sphere | n = 405 | n = 309 | n = 211 | n = 27 |
Mean (SD) | −5.23 (1.54) | 0.088 (0.486) | 0.075 (0.447) | −0.120 (0.487) |
Range (Min, Max) | −10.75, −1.5 | −2, 1.5 | −1.5, 2.25 | −1.0, 0.75 |
Cylinder | n = 405 | n = 309 | n = 211 | n = 27 |
Mean (SD) | −0.621 (0.606) | −0.375 (0.334) | −0.400 (0.326) | −0.417 (0.277) |
Range (Min, Max) | −3.25, 0 | −2, 0.5 | −1.75, 0 | −1, 0 |
≤0.50 D (%) | --- | 83.80% | 78.60% | 81.40% |
≤1.00 D (%) | --- | 97.40% | 97.10% | 100% |
MSE | n = 405 | n = 309 | n = 211 | n = 27 |
Mean (SD) | −5.54 (1.57) | −0.099 (0.489) | −0.127 (0.451) | −0.329 (0.460) |
Range (Min, Max) | −11.125, −1.5 | −2.125, 1.25 | −1.75, 1.875 | −1.25, 0.625 |
±0.50 D of Intended (%) | --- | 84.10% | 84.80% | 77.80% |
±1.00 D of Intended (%) | --- | 94.80% | 95.20% | 96.30% |
Efficacy Index ** | --- | 0.944 (0.182) | 0.939 (0.171) | 0.834 (0.174) |
Safety Index *** | --- | 1.037 (0.124) | 1.026 (0.123) | 0.979 (0.091) |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2022 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Payne, C.J.; Webster, C.R.; Moshirfar, M.; Handlon, J.J.; Ronquillo, Y.C.; Hoopes, P.C. One-Year Visual Outcomes and Corneal Higher-Order Aberration Assessment of Small-Incision Lenticule Extraction for the Treatment of Myopia and Myopic Astigmatism. J. Clin. Med. 2022, 11, 6294. https://doi.org/10.3390/jcm11216294
Payne CJ, Webster CR, Moshirfar M, Handlon JJ, Ronquillo YC, Hoopes PC. One-Year Visual Outcomes and Corneal Higher-Order Aberration Assessment of Small-Incision Lenticule Extraction for the Treatment of Myopia and Myopic Astigmatism. Journal of Clinical Medicine. 2022; 11(21):6294. https://doi.org/10.3390/jcm11216294
Chicago/Turabian StylePayne, Carter J., Courtney R. Webster, Majid Moshirfar, Jaiden J. Handlon, Yasmyne C. Ronquillo, and Phillip C. Hoopes. 2022. "One-Year Visual Outcomes and Corneal Higher-Order Aberration Assessment of Small-Incision Lenticule Extraction for the Treatment of Myopia and Myopic Astigmatism" Journal of Clinical Medicine 11, no. 21: 6294. https://doi.org/10.3390/jcm11216294
APA StylePayne, C. J., Webster, C. R., Moshirfar, M., Handlon, J. J., Ronquillo, Y. C., & Hoopes, P. C. (2022). One-Year Visual Outcomes and Corneal Higher-Order Aberration Assessment of Small-Incision Lenticule Extraction for the Treatment of Myopia and Myopic Astigmatism. Journal of Clinical Medicine, 11(21), 6294. https://doi.org/10.3390/jcm11216294