利用时空光学相干断层扫描技术对小鼠视网膜血管血流动力学进行活体容积分析。

IF 4.8 2区 医学 Q1 NEUROSCIENCES
Neurophotonics Pub Date : 2024-10-01 Epub Date: 2024-10-08 DOI:10.1117/1.NPh.11.4.045003
Piotr Węgrzyn, Wiktor Kulesza, Maciej Wielgo, Sławomir Tomczewski, Anna Galińska, Bartłomiej Bałamut, Katarzyna Kordecka, Onur Cetinkaya, Andrzej Foik, Robert J Zawadzki, Dawid Borycki, Maciej Wojtkowski, Andrea Curatolo
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引用次数: 0

摘要

意义重大:微循环和神经血管耦合是研究神经和神经眼科疾病的重要参数。由于视网膜与大脑皮层有许多相似之处,而且可以用光学方法观察,因此我们特别关注对小鼠视网膜脉络结构、微血管和血液动力学的评估,小鼠是视觉和神经科学研究的重要动物模型:方法:我们将时空光学相干断层扫描(STOC-T)技术转化到小动物成像领域,设计了一种可补偿小鼠眼睛屈光不正的新型光学系统。我们还开发了后处理算法,主要用于评估:(i) 通过分析脉冲波引起的多普勒伪影调制得出的局部血流动力学;(ii) 通过相位敏感测量得出的视网膜组织位移:我们以 113 Hz 的速率在 500 μ m 左右的横向视野中获取了高质量的活体小鼠视网膜容积图像。我们展示了经过数字像差校正后的视网膜和脉络膜结构以及各层微血管的高分辨率正面图像。我们能够测量丛膜外层毛细血管的脉搏波速度,平均速度为 0.35 mm/s,并确定了静脉和动脉的搏动频率和相位延迟。我们对主要血管附近的组织位移(峰值为 150 nm)的调制幅度进行了量化,这可能包含有关视网膜层生物力学特性的信息。最后,我们确定了静脉和动脉脉搏波通过时视网膜位移之间的延迟:结论:所开发的 STOC-T 系统提供了对小鼠视网膜和脉络膜血液动力学的深入了解,有助于研究神经血管耦合以及神经和神经眼科疾病中的血管和流速异常。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
In vivo volumetric analysis of retinal vascular hemodynamics in mice with spatio-temporal optical coherence tomography.

Significance: Microcirculation and neurovascular coupling are important parameters to study in neurological and neuro-ophthalmic conditions. As the retina shares many similarities with the cerebral cortex and is optically accessible, a special focus is directed to assessing the chorioretinal structure, microvasculature, and hemodynamics of mice, a vital animal model for vision and neuroscience research.

Aim: We aim to introduce an optical imaging tool enabling in vivo volumetric mouse retinal monitoring of vascular hemodynamics with high temporal resolution.

Approach: We translated the spatio-temporal optical coherence tomography (STOC-T) technique into the field of small animal imaging by designing a new optical system that could compensate for the mouse eye refractive error. We also developed post-processing algorithms, notably for the assessment of (i) localized hemodynamics from the analysis of pulse wave-induced Doppler artifact modulation and (ii) retinal tissue displacement from phase-sensitive measurements.

Results: We acquired high-quality, in vivo volumetric mouse retina images at a rate of 113 Hz over a lateral field of view of 500    μ m . We presented high-resolution en face images of the retinal and choroidal structure and microvasculature from various layers, after digital aberration correction. We were able to measure the pulse wave velocity in capillaries of the outer plexiform layer with a mean speed of 0.35 mm/s and identified venous and arterial pulsation frequency and phase delay. We quantified the modulation amplitudes of tissue displacement near major vessels (with peaks of 150 nm), potentially carrying information about the biomechanical properties of the retinal layers involved. Last, we identified the delays between retinal displacements due to the passing of venous and arterial pulse waves.

Conclusions: The developed STOC-T system provides insights into the hemodynamics of the mouse retina and choroid that could be beneficial in the study of neurovascular coupling and vasculature and flow speed anomalies in neurological and neuro-ophthalmic conditions.

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来源期刊
Neurophotonics
Neurophotonics Neuroscience-Neuroscience (miscellaneous)
CiteScore
7.20
自引率
11.30%
发文量
114
审稿时长
21 weeks
期刊介绍: At the interface of optics and neuroscience, Neurophotonics is a peer-reviewed journal that covers advances in optical technology applicable to study of the brain and their impact on the basic and clinical neuroscience applications.
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