晶体透镜的声辐射力光学相干弹性成像:安全性。

IF 2.6 3区 医学 Q2 OPHTHALMOLOGY
Christian Zevallos-Delgado, Taye Tolu Mekonnen, Chaitanya Duvvuri, Leana Rohman, Justin Schumacher, Manmohan Singh, Salavat R Aglyamov, Michael D Twa, Jean-Marie Parel, Giuliano Scarcelli, Fabrice Manns, Kirill V Larin
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引用次数: 0

摘要

目的:评价原位晶状体声辐射力光学相干弹性成像的安全性。方法:采用针式水听器对浸没式单元件超声换能器(标称频率为3.5 MHz)产生的声辐射力(ARF)进行表征,并对晶体进行光学相干弹性成像(OCE)。在离体猪眼上测试50、100、250、500、750、1000和1250 mV峰值的预放大信号(n = 21)。三维光学相干断层扫描(OCT)和共聚焦显微镜图像在ARF暴露于每个信号振幅之前和之后,以确定损伤。结果:超声换能器在100 mv预放大峰幅输入时的声强具有足够高的信噪比,足以跟踪弹性波在透镜中的传播,空间峰值脉冲平均(SPPA)强度为24.1 W/cm²,力学指数(MI)为0.46。SPPA强度低于美国食品和药物管理局(FDA)的安全限值(28 W/cm2),但MI是安全限值的两倍(0.23)。OCT结构和共聚焦显微镜图像显示损伤仅在SPPA强度和MI分别超过1150 W/cm2和3.2 W/cm2时显示。结论:OCT和共聚焦显微镜显示,即使强度超过FDA推荐值(bbb100 mV),也未观察到明显的损伤。尽管为了满足FDA的安全限制,需要进一步降低声强度,但基于arf的弹性成像在定量表征透镜体生物力学特性方面显示出安全的临床翻译前景。翻译相关性:本工作根据FDA安全限制评估了用于人体晶状体弹性成像的声辐射力的安全标准。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Acoustic Radiation Force Optical Coherence Elastography of the Crystalline Lens: Safety.

Purpose: To assess the safety of acoustic radiation force optical coherence elastography in the crystalline lens in situ.

Methods: Acoustic radiation force (ARF) produced by an immersion single-element ultrasound transducer (nominal frequency = 3.5 MHz) was characterized using a needle hydrophone and used for optical coherence elastography (OCE) of the crystalline lens. Preamplified signals at 50, 100, 250, 500, 750, 1000, and 1250 mV peak amplitude were tested on ex vivo porcine eyes (n = 21). Three-dimensional optical coherence tomography (OCT) and confocal microscopy images were acquired before and after ARF exposure to each signal amplitude to determine damage.

Results: The acoustic intensity of the ultrasound transducer at 100-mV preamplified peak amplitude input demonstrated a signal-to-noise ratio high enough for tracking elastic wave propagation in the lens and spatial-peak pulse-average (SPPA) intensity of 24.1 W/cm² and mechanical index (MI) of 0.46. The SPPA intensity was lower than the U.S. Food and Drug Administration (FDA) safety limit (28 W/cm2), but the MI was twice the safety limit (0.23). OCT structural and confocal microscopy images showed damage only at levels exceeding 1150 W/cm2 and 3.2 for SPPA intensity and MI, respectively.

Conclusions: OCT and confocal microscopy showed that, even when the intensity exceeded FDA recommendations (>100 mV), no noticeable damage was observed. Although a further reduction in acoustic intensity is necessary to meet FDA safety limits, ARF-based elastography shows promise for safe clinical translation in quantitatively characterizing lenticular biomechanical properties.

Translational relevance: This work assessed the safety standards for acoustic radiation force to be used in human lens elastography according to the FDA safety limits.

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来源期刊
Translational Vision Science & Technology
Translational Vision Science & Technology Engineering-Biomedical Engineering
CiteScore
5.70
自引率
3.30%
发文量
346
审稿时长
25 weeks
期刊介绍: Translational Vision Science & Technology (TVST), an official journal of the Association for Research in Vision and Ophthalmology (ARVO), an international organization whose purpose is to advance research worldwide into understanding the visual system and preventing, treating and curing its disorders, is an online, open access, peer-reviewed journal emphasizing multidisciplinary research that bridges the gap between basic research and clinical care. A highly qualified and diverse group of Associate Editors and Editorial Board Members is led by Editor-in-Chief Marco Zarbin, MD, PhD, FARVO. The journal covers a broad spectrum of work, including but not limited to: Applications of stem cell technology for regenerative medicine, Development of new animal models of human diseases, Tissue bioengineering, Chemical engineering to improve virus-based gene delivery, Nanotechnology for drug delivery, Design and synthesis of artificial extracellular matrices, Development of a true microsurgical operating environment, Refining data analysis algorithms to improve in vivo imaging technology, Results of Phase 1 clinical trials, Reverse translational ("bedside to bench") research. TVST seeks manuscripts from scientists and clinicians with diverse backgrounds ranging from basic chemistry to ophthalmic surgery that will advance or change the way we understand and/or treat vision-threatening diseases. TVST encourages the use of color, multimedia, hyperlinks, program code and other digital enhancements.
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