Phototherapeutic Keratectomy for Salzmann's Nodular Degeneration. What Effect Does the Choice of Excimer Laser Have on Treatment Success?

IF 0.5 Q4 NANOSCIENCE & NANOTECHNOLOGY E-journal of Surface Science and Nanotechnology Pub Date : 2023-11-01 Epub Date: 2022-05-18 DOI:10.1055/a-1788-3819
Susanne Barbara Claudia Mahler, Christian Adams, Loay Daas, Achim Langenbucher, Berthold Seitz
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Abstract

Purpose: The aim of this study was to assess the difference in treatment success after phototherapeutic keratectomy (PTK) for Salzmann's nodular degeneration (SND) using two excimer lasers with different specifications.

Patients and methods: 272 PTK procedures, which had been performed on 246 eyes with SND from 181 patients, were retrospectively examined in the period from 2007 to 2017. Until 2014 the excimer laser MEL70 (Carl Zeiss Meditec Vertriebsgesellschaft mbH, Oberkochen, Germany) was used for PTK following manual pannectomy, and after 2014 the excimer laser Amaris 750S (Schwind eye-tech-solutions GmbH, Kleinostheim, Germany) was used. Treatment success was assessed on basis of visual acuity, refraction, and astigmatism, as well as pachymetry and endothelial cell count, recorded at the following time points: T1 = preoperative, T2 = 6-week follow-up, T3 = 6-month follow-up. The Wilcoxon-Mann-Whitney U test and the chi-square test with a significance level of 5% were used to compare the data.

Results: A significantly higher improvement of 0.17 ± 0.33 logMAR could be shown for visual acuity in the Schwind group (p < 0.013) after 6 months. In the Zeiss group, visual acuity improved by only 0.11 ± 0.36 (logMAR p < 0.057). Regarding refraction, a significant reduction of the spherical equivalent (SEQ) (p < 0.001) by 3.35 ± 2.76 diopters (D) after 6 months could only be shown for the Schwind group. SEQ did not change significantly in the Zeiss group (p < 0.676). The topographic astigmatism was significantly improved after 6 months in both study groups, by 1.73 ± 1.99 D in the Schwind group (p < 0.001) and by 1.99 ± 2.21 D in the Zeiss group (p < 0.0001). Haze had to be treated in 12.7% of the cases in the Schwind group and in 16.2% of the cases in the Zeiss group. No endothelial cell damage was found in either group.

Conclusions: In both study groups, the patients with SND clearly benefited from PTK. However, a significantly higher advantage for visual acuity and refraction was shown for the Schwind group compared with the Zeiss group. In contrast to the usual hyperopic effect of PTK in other diagnoses, PTK in SND showed a "myopic shift", which can be explained by the often midperipheral SND nodes and the associated asymmetric tear film pooling prior to surgery.

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用于萨尔兹曼结节性变性的光治疗性角膜切除术。选择准分子激光器对治疗成功率有何影响?
目的:本研究旨在评估使用两种不同规格的准分子激光对萨尔兹曼结节性变性(SND)进行光治疗性角膜切除术(PTK)后治疗成功率的差异。患者和方法:对2007年至2017年期间181名SND患者的246只眼睛进行的272例PTK手术进行了回顾性研究。2014年之前,准分子激光器MEL70(Carl Zeiss Meditec Vertriebsgesellschaft mbH,Oberkochen,Germany)用于人工全切术后的PTK;2014年之后,准分子激光器Amaris 750S(Schwind eye-tech-solutions GmbH,Kleinostheim,Germany)用于PTK。治疗成功与否根据以下时间点记录的视力、屈光度、散光、角膜厚度和内皮细胞数量进行评估:T1 = 术前,T2 = 6 周随访,T3 = 6 个月随访。数据比较采用 Wilcoxon-Mann-Whitney U 检验和显著性水平为 5%的卡方检验:结果:Schwind 组患者的视力明显提高了 0.17 ± 0.33 logMAR(p 结论:Schwind 组患者的视力明显提高了 0.17 ± 0.33 logMAR(p):在两组研究中,SND 患者都明显受益于 PTK。不过,与蔡司组相比,施维英组在视力和屈光度方面的优势明显更高。与 PTK 在其他诊断中通常产生的远视效应不同,PTK 在 SND 中显示出 "近视偏移",这可以解释为 SND 结节通常位于中周,以及手术前相关的不对称泪膜聚集。
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来源期刊
E-journal of Surface Science and Nanotechnology
E-journal of Surface Science and Nanotechnology NANOSCIENCE & NANOTECHNOLOGY-
CiteScore
1.10
自引率
14.30%
发文量
47
审稿时长
12 weeks
期刊介绍: Our completely electronic and open-access journal aims at quick and versatile-style publication of research papers on fundamental theory and experiments at frontiers of science and technology relating to surfaces, interfaces, thin films, fine particles, nanowires, nanotubes, and other nanometer-scale structures, and their interdisciplinary areas such as crystal growth, vacuum technology, and so on. It covers their physics, chemistry, biology, materials science, and their applications to advanced technology for computations, communications, memory, catalysis, sensors, biological and medical purposes, energy and environmental problems, and so on.
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