ATHEROMA PROGRESSION: PHYSICAL MODELING IN EXPERIMENTAL CARDIOLOGY

IF 0.6 Archiv EuroMedica Pub Date : 2023-05-03 DOI:10.35630/2023/13/2.408
O. Germanova, Yuriy V. Shchukin, A. Usenova, Luisa Koonts, Irina Buklesheva, A. Germanov
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Abstract

Prototype models of intra-arterial circulation is one of the priority aims of experimental cardiology, as well as for the study of atherosclerosis. Purpose: To study the features of intra-arterial hemodynamics in the area of​​atheroma of the artery in physical modeling. Materials and methods: We used an original "Device for modeling intra-arterial circulation". The main parts of the model: glass rotameter tube in the form of a truncated cylinder, inlet and outlet ends of which are fixed with elastic plastic tubes connected to an electric water pump immersed in a container with glycerol solution. Inside the rotameter, using a fitting from the inlet, it is possible to install a pressure sensor that transfers data to the oscilloscope; indicators - a silk thread or dye - ink. The variable pump mode allowed us to simulate a regular heart rhythm, extrasystole (ES) and atrial fibrillation (AF). Results: In the first post-extrasystolic wave, a turbulent fluid flow formed after the plaque, standing waves and waves reflected from the walls of the rotameter were observed; the sensor registered an increase in pressure 1,6 times more compared with a regular heart rate wave. The marginal plaque zones along and against the fluid flow, especially the areas bordering the intact part of the arterial vessel, underwent the main mechanical impact. The same patterns were observed in AF with a maximum duration of a pause between pulse waves of ≥1,5 s. Conclusions: Heart arrhythmias play an important role in the intra-arterial hemodynamics changes and are the part of the pathophysiological changes in the arteries in atherosclerosis. The main danger is not the ES itself, but by the first post-extrasystolic contraction or the first pulse wave after a long pause between ventricular contractions in AF.
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动脉粥样硬化进展:实验心脏病学的物理模型
动脉内循环的原型模型是实验心脏病学以及动脉粥样硬化研究的优先目标之一。目的:探讨脑出血区动脉血流动力学的特点​​物理模型中的动脉斑块。材料和方法:我们使用了一个原始的“动脉内循环建模装置”。该模型的主要部件:截头圆柱体形式的玻璃转子流量计管,其入口和出口端用弹性塑料管固定,连接到浸入装有甘油溶液的容器中的电动水泵。在转子流量计内部,使用入口的配件,可以安装一个将数据传输到示波器的压力传感器;指示器——丝线或染料墨水。可变泵模式使我们能够模拟有规律的心律、早搏(ES)和心房颤动(AF)。结果:在收缩后的第一波中,观察到斑块后形成的湍流、驻波和转子流量计壁反射波;与常规心率波相比,传感器记录的压力增加了1.6倍。沿着和反对流体流动的边缘斑块区域,特别是与动脉血管完整部分接壤的区域,受到了主要的机械冲击。在心房颤动中也观察到了相同的模式,脉搏波之间的最大停顿时间≥1.5 s。结论:心律失常在动脉内血流动力学变化中起着重要作用,是动脉粥样硬化中动脉病理生理变化的一部分。主要的危险不是ES本身,而是AF中收缩后的第一次收缩或心室收缩之间长时间停顿后的第一个脉搏波。
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来源期刊
Archiv EuroMedica
Archiv EuroMedica MEDICINE, GENERAL & INTERNAL-
自引率
83.30%
发文量
140
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