光学相干弹性成像测量透镜和胶囊的机械张力。

Xu Feng, Guo-Yang Li, Yuxuan Jiang, Owen Shortt-Nguyen, Seok-Hyun Yun
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引用次数: 0

摘要

透镜张力是必不可少的调节视力,但仍然难以测量精度。在这里,我们提出了一种光学相干弹性成像(OCE)技术,可以量化晶状体囊和底层组织中的张力和弹性模量。该方法从表面波在1- 30khz临界频率范围内的色散中导出机械参数。使用6月龄猪的离体晶状体,我们测量了皮层表面晶状体内压力诱导的内源性前囊张力0-20 kPa和后囊张力40-50 kPa。前囊和后囊的平均剪切模量分别为630 kPa和400 kPa,比张力低于1 kPa的皮质组织大近100倍。双轴带状拉伸(~ 4%应变)使前囊张力增加67 kPa,不确定性仅为2 kPa。这种光学方法具有重要的承诺,诊断和管理调节功能障碍,通过晶状体力学评估在临床设置。意义说明:光学相干弹性成像(OCE)是一种快速发展的成像方式,但其应用仅限于刚度测量。这项工作是一项重大创新,它将OCE能力扩展到包括力和应力量化,扩大了其在生物医学和临床环境中的潜在应用。测量眼晶状体中囊膜张力的能力是一个重大突破,因为囊膜张力对于在调节过程中将带状纤维力传递到晶状体组织至关重要——这是一个对视力至关重要的过程。该研究为调节的机械机制提供了定量的见解,并有望作为评估晶状体组织力学的临床工具,解决当前临床实践中的能力差距。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optical Coherence Elastography Measures Mechanical Tension in the Lens and Capsule.

Lens tension is essential for accommodative vision but remains difficult to measure with precision. Here, we present an optical coherence elastography (OCE) technique that quantifies both tension and elastic modulus in the lens capsule and underlying tissue. This method derives mechanical parameters from surface wave dispersion across a critical frequency range of 1-30 kHz. Using isolated lenses from six-month-old pigs, we measured intrinsic anterior capsular tensions of 0-20 kPa and posterior capsular tensions of 40-50 kPa, induced by intra-lenticular pressure at the cortical surface. The mean shear moduli of anterior and posterior capsules were 630 kPa and 400 kPa, respectively, nearly 100-fold greater than that of the cortical tissues, where tensions were below 1 kPa. Biaxial zonular stretching (∼4% strain) increased anterior capsular tension by 67 kPa, with a low uncertainty of only 2 kPa. This optical method holds significant promise for diagnosing and managing accommodative dysfunctions through lens mechanics assessment in clinical settings. STATEMENT OF SIGNIFICANCE: Optical coherence elastography (OCE) is a rapidly advancing imaging modality, but its applications have been limited to stiffness measurements. This work represents a significant innovation by extending OCE capabilities to include force and stress quantification, broadening its potential applications in biomedical and clinical contexts. The ability to measure in situ capsular tension in the eye lens is a major breakthrough, as capsular tension is essential for transferring zonular fiber forces to the lens tissue during accommodation-a process critical for vision. This study provides quantitative insights into the mechanical mechanisms of accommodation and holds strong promise as a clinical tool for assessing lens tissue mechanics, addressing a capability gap in current clinical practice.

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