Key Laboratory of Opto-Electronic Information Science and Technology of Jiangxi Province and Jiangxi Engineering Laboratory for Optoelectronics Testing Technology, Nanchang Hangkong University, Nanchang 330063, P. R. China.
The Third Affiliated Hospital of Nanchang University, Nanchang 330008, P. R. China.
Exp Biol Med (Maywood). 2022 Mar;247(6):462-469. doi: 10.1177/15353702211061881. Epub 2021 Dec 3.
Biomechanical properties of corneal scar are strongly correlated with many corneal diseases and some types of corneal surgery, however, there is no elasticity information available about corneal scar to date. Here, we proposed an acoustic radiation force optical coherence elastography system to evaluate corneal scar elasticity. Elasticity quantification was first conducted on rabbit corneas, and the results validate the efficacy of our system. Then, experiments were performed on an human scarred cornea, where the structural features, the elastic wave propagations, and the corresponding Young's modulus of both the scarred region and the normal region were achieved and based on this, 2D spatial distribution of Young's modulus of the scarred cornea was depicted. Up to our knowledge, we realized the first elasticity quantification of corneal scar, which may provide a potent tool to promote clinical research on the disorders and surgery of the cornea.
角膜瘢痕的生物力学特性与许多角膜疾病和某些类型的角膜手术密切相关,但迄今为止,关于角膜瘢痕尚没有弹性信息。在这里,我们提出了一种声辐射力光学相干弹性成像系统来评估角膜瘢痕的弹性。首先在兔角膜上进行了弹性定量,结果验证了我们系统的有效性。然后,在人瘢痕角膜上进行了实验,获得了瘢痕区域和正常区域的结构特征、弹性波传播和相应的杨氏模量,并在此基础上,描绘了瘢痕角膜的杨氏模量的 2D 空间分布。据我们所知,我们实现了对角膜瘢痕的首次弹性定量,这可能为促进角膜疾病和手术的临床研究提供有力工具。