Choroidal vasculature act as predictive biomarkers of long-term ocular elongation in myopic children treated with orthokeratology: a prospective cohort study.

IF 5.4 3区 材料科学 Q2 CHEMISTRY, PHYSICAL ACS Applied Energy Materials Pub Date : 2023-06-06 DOI:10.1186/s40662-023-00345-2
Hao Wu, Tianli Peng, Weihe Zhou, Zihan Huang, Hongyu Li, Tengfei Wang, Jingwei Zhang, Kou Zhang, Haoer Li, Yunpeng Zhao, Jia Qu, Fan Lu, Xiangtian Zhou, Jun Jiang
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引用次数: 1

Abstract

Background: Despite receiving orthokeratology (ortho-k), the efficacy of retarding ocular elongation during myopia varies among myopic children. The current study aimed to investigate the early changes of choroidal vasculature at one month after ortho-k treatment and its association with one-year ocular elongation, as well as the role of such choroidal responses in predicting the one-year control efficacy of ortho-k treatment.

Methods: A prospective cohort study was conducted in myopic children treated with ortho-k. Myopic children aged between 8 and 12 years who were willing to wear ortho-k lenses were recruited consecutively from the Eye Hospital of Wenzhou Medical University. Subfoveal choroidal thickness (SFCT), submacular total choroidal luminal area (LA), stromal area (SA), choroidal vascularity index (CVI), choriocapillaris flow deficit (CcFD) were evaluated by optical coherence tomography (OCT) and OCT angiography over a one-year period.

Results: Fifty eyes from 50 participants (24 males) who finished one-year follow-ups as scheduled were included, with a mean age of 10.31 ± 1.45 years. The one-year ocular elongation was 0.19 ± 0.17 mm. The LA (0.03 ± 0.07 mm2), SA (0.02 ± 0.05 mm2) increased proportionally after one-month of ortho-k wear (both P < 0.01), as did the SFCT (10.62 ± 19.98 μm, P < 0.001). Multivariable linear regression analyses showed that baseline CVI (β = - 0.023 mm/1%, 95% CI: - 0.036 to - 0.010), one-month LA change (β = - 0.009 mm/0.01 mm2, 95% CI: - 0.014 to - 0.003), one-month SFCT change (β = - 0.035 mm/10 µm, 95% CI: - 0.053 to - 0.017) were independently associated with one-year ocular elongation during ortho-k treatment after adjusting with age and sex (all P < 0.01). The area under the receiver operating characteristic curve of prediction model including baseline CVI, one-month SFCT change, age, and sex achieved 0.872 (95% CI: 0.771 to 0.973) for discriminating children with slow or fast ocular elongation.

Conclusions: Choroidal vasculature is associated with ocular elongation during ortho-k treatment. Ortho-k treatment induces increases in choroidal vascularity and choroidal thickness as early as one month. Such early changes can act as predictive biomarkers of myopia control efficacy over a long term. The utilization of these biomarkers may help clinicians identify children who can benefit from ortho-k treatment, and thus has critical implications for the management strategies towards myopia control.

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脉络膜血管作为角膜塑形术治疗近视儿童长期眼伸长的预测性生物标志物:一项前瞻性队列研究。
背景:尽管接受了角膜塑形术(orthok),但近视儿童在近视期间延缓眼伸长的效果各不相同。本研究旨在探讨角膜矫正k治疗后1个月脉络膜血管的早期变化及其与1年眼伸长的关系,以及这种脉络膜反应在预测角膜矫正k治疗1年控制疗效中的作用。方法:采用前瞻性队列研究方法对近视儿童进行orthok -k治疗。在温州医科大学眼科医院连续招募愿意配戴矫正k型镜片的8 ~ 12岁近视儿童。采用光学相干断层扫描(OCT)和OCT血管造影技术,对1年的脉络膜厚度(SFCT)、黄斑下脉络膜总管腔面积(LA)、间质面积(SA)、脉络膜血管指数(CVI)、脉络膜毛细血管血流缺陷(CcFD)进行评估。结果:50名受试者(24名男性)50只眼按计划完成1年随访,平均年龄10.31±1.45岁。1年眼伸长率0.19±0.17 mm。佩戴矫正k一个月后,LA(0.03±0.07 mm2)、SA(0.02±0.05 mm2)成比例增加(P值均为2,95% CI: - 0.014至- 0.003),1个月SFCT变化(β = - 0.035 mm/10µm, 95% CI: - 0.053至- 0.017)与矫正k治疗期间1年眼伸长独立相关(P值均为P)。Ortho-k治疗诱导脉络膜血管和脉络膜厚度增加早在一个月。这些早期变化可以作为长期控制近视效果的预测性生物标志物。利用这些生物标记物可以帮助临床医生确定哪些儿童可以从orthok -k治疗中受益,因此对近视控制的管理策略具有重要意义。
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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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