Biomechanical simulations of crystalline lens oscillations resulting from the changes in the gaze in an accommodated eye.

IF 4.8 3区 工程技术 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Frontiers in Bioengineering and Biotechnology Pub Date : 2025-03-05 eCollection Date: 2025-01-01 DOI:10.3389/fbioe.2025.1504769
Ali Dahaghin, Milad Salimibani, Agnieszka Boszczyk, Agnieszka Jóźwik, Jorge Grasa, Joanna Przeździecka-Dołyk, Damian Siedlecki
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Abstract

Purpose: The goal of the study is to introduce a generic, versatile biomechanical model that aims to reproduce the dynamic wobbling phenomenon.

Methods: A systematic strategy is used, which includes a) capturing the in vivo data on a group of healthy volunteers, b) analyzing the changes in Purkinje images over time, and c) performing the combined biomechanical and optical simulations to develop the model that might be useful for understanding the mechanical behavior of the lens during wobbling and its influence on ocular dynamics.

Results: Examples of lens wobbling patterns for six measured eyes were presented, and parameters characterizing the oscillatory motion were determined, including frequency of oscillations, Q-factor, damping factor and time constant. The average values of these parameters are the following: frequency: 20.0 ± 2.4 Hz; Q-factor: 1.86 ± 0.44; damping factor: 0.27 ± 0.06; time constant: 0.11 ± 0.06 s. The data reproduced by means of simulations: frequency: 19.3 Hz; Q-factor: 2.17; damping factor: 0.23; time constant: 0.15 s. This comparison reveals a good agreement between the measured and reconstructed data with the values being within the standard deviation limits.

Conclusion: The developed generic model together with the presented methodology is able to reconstruct the typical crystalline lens wobbling dynamics with a satisfying accuracy. However, the observed intersubject variability highlights the need for personalized biomechanical models. The introduced model may constitute the basis for future individualization of the data, bringing broad perspectives for prospective investigations aimed to explain the biomechanical mechanisms within the eye.

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生物力学模拟晶体晶状体的振荡,这种振荡是由被调节的眼睛的凝视变化引起的。
目的:研究的目的是引入一个通用的,通用的生物力学模型,旨在重现动态摆动现象。方法:采用系统的策略,包括A)捕获一组健康志愿者的体内数据,b)分析浦肯野图像随时间的变化,以及c)进行生物力学和光学相结合的模拟,以建立可能有助于理解晶状体在摆动过程中的力学行为及其对眼动力学的影响的模型。结果:给出了6只被测眼的晶状体摆动模式实例,并确定了表征振荡运动的参数,包括振荡频率、q因子、阻尼因子和时间常数。这些参数的平均值为:频率:20.0±2.4 Hz;q因子:1.86±0.44;阻尼系数:0.27±0.06;时间常数:0.11±0.06 s。模拟再现的数据:频率:19.3 Hz;品质因数:2.17;阻尼系数:0.23;时间常数:0.15 s。这种比较表明,实测数据与重建数据吻合良好,其值都在标准偏差范围内。结论:所建立的通用模型和所提出的方法能够以令人满意的精度重建典型的晶状体摆动动力学。然而,观察到的主体间变异性强调了个性化生物力学模型的必要性。引入的模型可能构成未来数据个性化的基础,为旨在解释眼睛内生物力学机制的前瞻性研究带来广阔的前景。
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来源期刊
Frontiers in Bioengineering and Biotechnology
Frontiers in Bioengineering and Biotechnology Chemical Engineering-Bioengineering
CiteScore
8.30
自引率
5.30%
发文量
2270
审稿时长
12 weeks
期刊介绍: The translation of new discoveries in medicine to clinical routine has never been easy. During the second half of the last century, thanks to the progress in chemistry, biochemistry and pharmacology, we have seen the development and the application of a large number of drugs and devices aimed at the treatment of symptoms, blocking unwanted pathways and, in the case of infectious diseases, fighting the micro-organisms responsible. However, we are facing, today, a dramatic change in the therapeutic approach to pathologies and diseases. Indeed, the challenge of the present and the next decade is to fully restore the physiological status of the diseased organism and to completely regenerate tissue and organs when they are so seriously affected that treatments cannot be limited to the repression of symptoms or to the repair of damage. This is being made possible thanks to the major developments made in basic cell and molecular biology, including stem cell science, growth factor delivery, gene isolation and transfection, the advances in bioengineering and nanotechnology, including development of new biomaterials, biofabrication technologies and use of bioreactors, and the big improvements in diagnostic tools and imaging of cells, tissues and organs. In today`s world, an enhancement of communication between multidisciplinary experts, together with the promotion of joint projects and close collaborations among scientists, engineers, industry people, regulatory agencies and physicians are absolute requirements for the success of any attempt to develop and clinically apply a new biological therapy or an innovative device involving the collective use of biomaterials, cells and/or bioactive molecules. “Frontiers in Bioengineering and Biotechnology” aspires to be a forum for all people involved in the process by bridging the gap too often existing between a discovery in the basic sciences and its clinical application.
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