Accuracy of intraocular lens calculation formulas in cataract patients with steep corneal curvature
Chenguang Zhang, Guangzheng Dai, Emmanuel Eric Pazo, Ling Xu, Xianwei Wu, Hongda Zhang, Tiezhu Lin, Wei He
Cataract & anterior segment surgery
Abstract
OBJECTIVE: To compare the accuracy of five kinds of intraocular lens calculation formulas (SRK/T, Haigis, Hoffer Q, Holladay and Barrett Universal Ⅱ) in cataract patients with steep curvature cornea ≥ 46.0 diopters. METHODS: This is a retrospective study of cataract phacoemulsification combined with intraocular lens implantation in patients with steep curvature cornea (corneal curvature ≥ 46D). The refractive prediction errors of IOL power calculation formulas (SRK/T, Haigis, Holladay, Hoffer Q, and Barrett Universal II) using User Group for Laser Interference Biometry (ULIB) constants were evaluated and compared. Objective refraction results were assessed at one month postoperatively. According to axial length (AL), all patients were divided into three groups: short AL group (<22mm), normal AL group (>22 to ≤24.5mm) and long AL group (>24.5mm). Calculate the refractive error and absolute refractive error (AE) between the actual postoperative refractive power and the predicted postoperative refractive power. The covariance analysis was used for the comparison of five formulas in each group. The correlation between the absolute refractive error and AL from every formula were analyzed by Pearson correlation test, respectively. RESULT: Total 112 eyes of 83 cataract patients with steep curvature cornea were collected. The anterior chamber depth (ACD) was a covariate in the short AL group in the covariance analysis of absolute refractive error (P<0.001). The SRK/T and Holladay formula had the lowest mean absolute error (MAE) (0.47D), there were statistically significant differences in MAE between the five formulas for short AL group (P = 0.024). The anterior chamber depth had no significant correlation in the five calculation formulas in the normal AL group and long AL group (P = 0.521, P = 0.609 respectively). In the normal AL group, there was no significant difference in MAE between the five calculation formulas (P = 0.609). In the long AL group, Barrett Universal II formula had the lowest MAE (0.35), and there were statistically significant differences in MAE between the five formulas (P = 0.012). Over the entire AL range, the Barrett Universal II formula had the lowest MAE and the highest percentage of eyes within ± 0.50 D, ± 1.00 D, and ± 1.50 D (69.6%, 93.8%, and 98.2% respectively). CONCLUSION: Compared to SRK/T, Haigis, Hoffer Q, and Holladay, Barrett Universal Ⅱ formula is more accurate in predicting the IOL power in the cataract patients with steep curvature cornea ≥ 46.0 diopters.
Keywords: intraocular lens power calculation; cataract surgery; refractive prediction error; axial length; Barrett Universal II formula; SRK/T formula; Haigis formula; Hoffer Q formula
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How to cite
@article{zhang2020accuracy,
title = {{Accuracy of intraocular lens calculation formulas in cataract patients with steep corneal curvature}},
author = {Zhang, Chenguang and Dai, Guangzheng and Pazo, Emmanuel Eric and Xu, Ling and Wu, Xianwei and Zhang, Hongda and Lin, Tiezhu and He, Wei},
journal = {PLoS ONE},
year = {2020},
doi = {10.1371/journal.pone.0241630},
url = {https://doi.org/10.1371/journal.pone.0241630},
}
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