Journal of Otolaryngology and Ophthalmology of Shandong University ›› 2024, Vol. 38 ›› Issue (4): 76-85.doi: 10.6040/j.issn.1673-3770.0.2023.138

• Original Article • Previous Articles    

Evaluation of three different aspheric intraocular lens tilts and decentrations in capsular bags after cataract surgery based on CASIA2

MA Jiling1,2,3, WANG Xiaoming2, LI Yan2, MU Yanxiao2, JIN Lin3, KONG Hui3, YANG Naifu1,2, DANG Guangfu3   

  1. 1. School of Ophthalmology and Optometry, Shandong University of Traditional Chinese Medicine, Jinan 250105, Shandong, China2. Department of Cataract, Jinan Mingshui Eye Hospital, Jinan 250200, Shandong, China3. Department of Ophthalmology, The First Affiliated Hospital of Shandong First Medical University, Jinan 250014, Shandong, China
  • Published:2024-07-09

Abstract: Objective Evaluation of tilt and decentration of 3 kinds of aspheric intraocular lens(IOL)after cataract surgery based on a new anterior segment swept-source optical coherence tomography CASIA2. Methods Retrospective case series. Clinical data of patients with cataracts who underwent phacoemulsification and IOL implantation between October 2020 and March 2021 were collected. Moreover, clinical data such as age, sex, best-corrected visual acuity(BCVA)before and on the first day after surgery, axial length(AL), and type and power of the IOL used were collected from all patients. CASIA2 was used to obtain clear images at 1, 7, and 30 days postoperatively. Horizontal and vertical tilt and decentration in two-dimensional(2D)images, and tilt, decentration, and orientation in three-dimensional(3D)images were assessed. SPSS26.0 software was used for statistical analysis. Additionally, P<0.05 was considered statistically significant. Results In total, 134 patients(157 eyes)were enrolled. The patients comprised 52 males and 82 females, with an age range of 45-86 years and an average age of 67.86±8.26 years. The eyes were divided into groups A(HOYA250), B(RS60A), and C(ZCB00). The study included 31, 34, and 15 right eyes, and 25, 29, and 23 left eyes. No significant differences were observed in ocular AL, IOL power, or frequency of BCVA improvement on day 1 after surgery among the three groups. On day 7 postoperatively, the horizontal tilt degree of group A was greater than that of group B in 2D images. On days 1 and 7 postoperatively, the horizontal decentration of group A was smaller than that of group B in 2D images; and on days 1 and 7 postoperatively, the vertical tilt degree of group A was larger than that of group C in 2D images, with a significant difference between the two groups. On days 1 and 7 postoperatively, significant differences in the orientation of the tilt between groups A and C group in 3D images were observed. The vertical decentration of group A 1 day postoperatively was significantly greater than that at 30 days postoperatively. On 1, 7, and 30 days postoperatively, the decentration of group A was significantly smaller than that of group B in the 3D images. No significant differences in the remaining intergroup and intragroup results were observed. Left eye results: on days 7 and 30 postoperatively, the decentration of group A was significantly lower than that of group B in 3D images. The tilt of group C 1 day postoperatively was significantly smaller than that at 30 days postoperatively. No significant differences in the remaining intergroup and intragroup results were identified. On days 1, 7, and 30 postoperatively, the three IOL groups demonstrated temporal and infratemporal trends; however, the tilt trend displayed no bias. Conclusion Different degrees of tilt and decentration of the three types of IOLs in the capsular bags were identified. The three types of IOLs demonstrated a tendency to tilt to the temporal and infratemporal sides, and decentration did not display a biased tendency.

Key words: Cataract, Aspheric intraocular lens, Optical coherence tomography, Tilt, Decentration

CLC Number: 

  • R776.1
[1] 黄子彦, 段国平. 不同类型人工晶状体植入术后倾斜和偏心影响视觉质量的研究现状[J]. 山东大学耳鼻喉眼学报, 2022, 36(6): 26-31. doi:10.6040/j.issn.1673-3770.0.2021.544 HUANG Ziyan, DUAN Guoping. Effects of tilt and decentration on visual quality after various intraocular lens implantations[J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2022, 36(6): 26-31. doi:10.6040/j.issn.1673-3770.0.2021.544
[2] Hirnschall N, Buehren T, Bajramovic F, et al. Prediction of postoperative intraocular lens tilt using swept-source optical coherence tomography[J]. J Cataract Refract Surg, 2017, 43(6): 732-736. doi:10.1016/j.jcrs.2017.01.026
[3] Kimura S, Morizane Y, Shiode Y, et al. Assessment of tilt and decentration of crystalline lens and intraocular lens relative to the corneal topographic axis using anterior segment optical coherence tomography[J]. PLoS One, 2017, 12(9): e0184066. doi:10.1371/journal.pone.0184066
[4] Tsinopoulos IT, Tsaousis KT, Kymionis GD, et al. Comparison of anterior capsule contraction between hydrophobic and hydrophilic intraocular lens models[J]. Albrecht Von Graefes Arch Fur Klin Und Exp Ophthalmol, 2010, 248(8): 1155-1158. doi:10.1007/s00417-010-1373-2
[5] Piers PA, Weeber HA, Artal P, et al. Theoretical comparison of aberration-correcting customized and aspheric intraocular lenses[J]. J Refract Surg, 2007, 23(4): 374-384. doi:10.3928/1081-597X-20070401-10
[6] Li ZL, Zhu ZH, Li XY, et al. Age-related changes in crystalline lens tilt and decentration: swept-source OCT study[J]. J Cataract Refract Surg, 2021, 47(10): 1290-1295. doi:10.1097/j.jcrs.0000000000000632
[7] Gu XX, Chen XY, Yang GY, et al. Determinants of intraocular lens tilt and decentration after cataract surgery[J]. Ann Transl Med, 2020, 8(15): 921. doi:10.21037/atm-20-1008
[8] Lawu T, Mukai K, Matsushima H, et al. Effects of decentration and tilt on the optical performance of 6 aspheric intraocular lens designs in a model eye[J]. J Cataract Refract Surg, 2019, 45(5): 662-668. doi:10.1016/j.jcrs.2018.10.049
[9] Buehren T. The subject-fixated coaxially sighted corneal light reflex: a clinical marker for centration of refractive treatments and devices[J]. Am J Ophthalmol, 2015, 159(3): 611-612. doi:10.1016/j.ajo.2014.12.022
[10] Chang DH, Waring GO 4th. The subject-fixated coaxially sighted corneal light reflex: a clinical marker for centration of refractive treatments and devices[J]. Am J Ophthalmol, 2014, 158(5): 863-874. doi:10.1016/j.ajo.2014.06.028
[11] Chen YA, Hirnschall N, Maedel S, et al. Misalignment of a novel single-piece acrylic intraocular lens in the first three months after surgery[J]. Ophthalmic Res, 2014, 51(2): 104-108. doi:10.1159/000356694
[12] 张小宝, 谭浅, 江海波, 等. 超声生物显微镜下两种非球面人工晶状体倾斜度和偏心量的比较[J]. 国际眼科杂志, 2014, 14(7): 1231-1235. doi:10.3980/j.issn.1672-5123.2014.07.14 ZHANG Xiaobao, TAN Qian, JIANG Haibo, et al. Comparison of tilt and decentration of two aspheric intraocular lens by ultrasonic biomicroscope[J]. International Eye Science, 2014, 14(7): 1231-1235. doi:10.3980/j.issn.1672-5123.2014.07.14
[13] Liu YQ, Zhao JY, Hu YP, et al. Comparison of the visual performance after implantation of three aberration-correcting aspherical intraocular lens[J]. Curr Eye Res, 2021, 46(3): 333-340. doi:10.1080/02713683.2020.1798467
[14] Zhang F, Zhang J, Li W, et al. Correlative comparison of three ocular axes to tilt and decentration of intraocular lens and their effects on visual acuity[J]. Ophthalmic Res, 2020, 63(2): 165-173. doi:10.1159/000504716
[15] Wang DD, Yu XY, Li ZL, et al. The effect of anterior capsule polishing on capsular contraction and lens stability in cataract patients with high myopia[J]. J Ophthalmol, 2018, 2018: 8676451. doi:10.1155/2018/8676451
[16] Uzel MM, Ozates S, Koc M, et al. Decentration and tilt of intraocular lens after posterior capsulotomy[J]. Semin Ophthalmol, 2018, 33(6): 766-771. doi:10.1080/08820538.2018.1443146
[17] Fus M, Pitrova S. Evaluation of decentration, tilt and angular orientation of toric intraocular lens[J]. Clin Ophthalmol, 2021, 15: 4755-4761. doi:10.2147/OPTH.S346968
[18] Xu J, Lin PM, Zhang SH, et al. Risk factors associated with intraocular lens decentration after cataract surgery[J]. Am J Ophthalmol, 2022, 242: 88-95. doi:10.1016/j.ajo.2022.05.005
[19] Fişuş AD, Hirnschall ND, Maedel S, et al. Capsular bag performance of a novel hydrophobic acrylic single-piece intraocular lens: two-year results of a randomised controlled trial[J]. Eur J Ophthalmol, 2021, 31(5): 2377-2382. doi:10.1177/1120672120960591
[20] 钱玖林, 廖萱, 唐玉玲, 等. 非球面人工晶状体偏心和倾斜以及视觉质量的对比研究[J]. 中华眼科杂志, 2022, 58(7): 521-528. doi:10.3760/cma.j.cn112142-20211103-00518 QIAN Jiulin, LIAO Xuan, TANG Yuling, et al. Comparative study of decentration, tilt and visual quality after implantation of aspherical intraocular lenses[J]. Chinese Journal of Ophthalmology,2022, 58(7): 521-528. doi:10.3760/cma.j.cn112142-20211103-00518
[21] Meng JQ, He WW, Rong XF, et al. Decentration and tilt of plate-haptic multifocal intraocular lenses in myopic eyes[J]. Eye Vis, 2020, 7: 17. doi:10.1186/s40662-020-00186-3
[22] 王造文, 王尔茜, 陈有信. 超声乳化晶状体摘除联合人工晶状体植入治疗马凡综合征晶状体半脱位的长期观察[J]. 临床眼科杂志, 2020, 28(2): 120-124. doi:10.3969/j.issn.1006-8422.2020.02.006 WANG Zaowen, WANG Erqian, CHEN Youxin. Long-term clinical effect observation of phacoemulsification and intraocular lens implantation for patients with lens subluxation secondary to Marfan syndrome[J]. Journal of Clinical Ophthalmology, 2020, 28(2): 120-124. doi:10.3969/j.issn.1006-8422.2020.02.006
[23] Uzel MM, Ozates S, Koc M, et al. Decentration and tilt of intraocular lens after posterior capsulotomy[J]. Semin Ophthalmol, 2018, 33(6): 766-771. doi:10.1080/08820538.2018.1443146
[24] Chang PY, Lian CY, Wang JK, et al. Surgical approach affects intraocular lens decentration[J]. J Formos Med Assoc, 2017, 116(3): 177-184. doi:10.1016/j.jfma.2016.04.003
[25] Findl O, Hirnschall N, Draschl P, et al. Effect of manual capsulorhexis size and position on intraocular lens tilt, centration, and axial position[J]. J Cataract Refract Surg, 2017, 43(7): 902-908. doi:10.1016/j.jcrs.2017.04.037
[26] Rossi T, Ceccacci A, Testa G, et al. Influence of anterior capsulorhexis shape, centration, size, and location on intraocular lens position: finite element model[J]. J Cataract Refract Surg, 2022, 48(2): 222-229. doi:10.1097/j.jcrs.0000000000000711
[27] 谢立信, 朱刚, 张元宏, 等. 囊袋内植入不同襻长人工晶体后偏心的研究[J]. 眼视光学杂志, 1999, 1(4): 222-223. doi:10.3760/cma.j.issn.1674-845X.1999.04.009 XIE Lixin, ZHU Gang, ZHANG Yuanhong, et al. Measurement of posterior chamber intraocular lens decentration after intraocular implantation[J]. Journal of Optometry & Ophthalmology, 1999, 1(4): 222-223. doi:10.3760/cma.j.issn.1674-845X.1999.04.009
[28] 方艳文, 卢奕, 汪琳. 折叠式人工晶状体囊袋内植入后偏心与倾斜的临床研究[J]. 眼视光学杂志, 2008, 10(4): 252-255. doi:10.3760/cma.j.issn.1008-1801.2008.04.004 FANG Yanwen, LU Yi, WANG Lin. Decentration and tilt of foldable intraocular lenses in the lens capsule[J]. Chinese Journal of Optometry Ophthalmology and Visual Science,2008, 10(4): 252-255. doi:10.3760/cma.j.issn.1008-1801.2008.04.004
[29] Modesti M, Pasqualitto G, Appolloni R, et al. Preoperative and postoperative size and movements of the lens capsular bag: ultrasound biomicroscopy analysis[J]. J Cataract Refract Surg, 2011, 37(10): 1775-1784. doi:10.1016/j.jcrs.2011.04.035
[1] CHANG Weiwei, JIAO Wanzhen, CUI Yanyan, ZHAO Jie, LIU Zhaoqiang, ZHAO Bojun. Research progress of diabetic macular ischaemia [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2024, 38(3): 130-136.
[2] WU Lili, QU Yi. Application of optical tomography angiography and artificial intelligence in choroidal neovascularization secondary to pathologic myopia [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2024, 38(2): 144-149.
[3] WANG Xinyu, GAO Lifen, LU Hui, SONG Wenqi, YANG Yu. Related retinal manifestations in Parkinson's disease [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2024, 38(2): 156-162.
[4] LIU Jiangchuan, LI Pengwei, GUO Jianqiang, LU Huiqin. Application of optical coherence tomography in idiopathic epiretinal membrane [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2024, 38(1): 138-142.
[5] YUSUFU·Maierhaba, ABULA·Kelimujiang, DING Lin, QIN Yanli, CHEN Xueyi. Fundus changes in high myopia cataract with posterior scleral staphyloma [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2023, 37(5): 107-114.
[6] ZHANG Xiaohan, WEI Li, YANG Kaili, CHEN Haiyan, LI Yansong, WANG Ping. Study on the change of OCTA and its correlation with visual acuity in patients with CSC before and after TCM syndrome differentiation and treatment [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2023, 37(5): 115-122.
[7] LI Wanyu, GU Xuejun. Anti-neutrophil cytoplasmic antibody associated vasculitis complicated with scleritis and cataract: a case study and literature review [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2023, 37(4): 149-152.
[8] HAN Yiping, ZHANG Han. Research progress on the pathogenesis of posterior capsular opacification and on anterior capsular polishing [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2023, 37(4): 181-186.
[9] ZHAO Lu, TIAN Huiwen, MENG Bo, WANG Wei, WANG Yanling. Analysis of macular retinal-choroidal thickness changes in patients with internal carotid artery occlusion [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2023, 37(3): 72-76.
[10] YOU Ran, GUO Xiaoxiao, WANG Wei, CHEN Xi, WANG Yanling. Association of macular retinoschisis severity with choroidal parameters in patients with high myopia [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2023, 37(3): 83-87.
[11] ZHANG Yi, TANG Li. Oculocerebrorenal syndrome of lowe with glaucoma: a case report [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2023, 37(3): 93-97.
[12] ZHAO Hongxiao, ZHANG Han. Effect of optical amplification on measurement of ganglion cell complex [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2023, 37(1): 105-109.
[13] DONG Shuguang, GUO Fengfei, MENG Xuxia, YAN Shilong. Retrospective analysis of the causes of anterior capsular tear in early femtosecond laser-assisted cataract surgery [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2023, 37(1): 110-114.
[14] LI Pengwei, SU Guangming, LIU Jiangchuan, MU Yalin. Application of optical coherence tomography angiography in macular telangiectasia type 2 [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2023, 37(1): 140-144.
[15] DUAN Lian, MENG FanlanReview,DANG GuangfuGuidance. Effect of dry eye on refractive cataract surgery [J]. Journal of Otolaryngology and Ophthalmology of Shandong University, 2022, 36(6): 1-6.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!