An interactive simulator to deepen the understanding of Guyton's venous return curve.

IF 2.6 4区 医学 Q2 PHYSIOLOGY Journal of Physiological Sciences Pub Date : 2024-03-30 DOI:10.1186/s12576-024-00912-9
Noritaka Mamorita, Akihiro Takeuchi, Hirotoshi Kamata
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Abstract

Mean circulatory filling pressure, venous return curve, and Guyton's graphical analysis are basic concepts in cardiovascular physiology. However, some medical students may not know how to view and interpret or understand them adequately. To deepen students' understanding of the graphical analysis, in place of having to perform live animal experiments, we developed an interactive cardiovascular simulator, as a self-learning tool, as a web application. The minimum closed-loop model consisted of a ventricle, an artery, resistance, and a vein, excluding venous resistance. The simulator consists of three modules: setting (parameters and simulation modes), calculation, and presentation. In the setting module, the user can interactively customize model parameters, compliances, resistance, Emax of the ventricular contractility, total blood volume, and unstressed volume. The hemodynamics are calculated in three phases: filling (late diastole), ejection (systole), and flow (early diastole). In response to the user's settings, the simulator graphically presents the hemodynamics: the pressure-volume relations of the artery, vein, and ventricle, the venous return curves, and the stroke volume curves. The mean filling pressure is calculated at approximately 7 mmHg at the initial setting. The venous return curves, linear and concave, are dependent on the venous compliance. The hemodynamic equilibrium point is marked on the crossing point of venous return curve and the stroke volume curve. Users can interactively do discovery learning, and try and confirm their interests and get their questions answered about hemodynamic concepts by using the simulator.

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互动模拟器加深了对盖顿静脉回流曲线的理解。
平均循环充盈压、静脉回流曲线和盖顿图形分析是心血管生理学的基本概念。然而,一些医科学生可能不知道如何查看和解释或理解它们。为了加深学生对图形分析的理解,我们开发了一个交互式心血管模拟器,作为网络应用程序的自学工具,而不是进行活体动物实验。最小闭环模型由心室、动脉、阻力和静脉(不包括静脉阻力)组成。模拟器由三个模块组成:设置(参数和模拟模式)、计算和演示。在设置模块中,用户可以交互式地自定义模型参数、顺应性、阻力、心室收缩力 Emax、总血容量和非压力容量。血液动力学的计算分为三个阶段:充盈(舒张晚期)、射血(收缩期)和流动(舒张早期)。根据用户的设置,模拟器以图形方式显示血液动力学:动脉、静脉和心室的压力-容积关系、静脉回流曲线和每搏容积曲线。在初始设置下,计算出的平均充盈压约为 7 毫米汞柱。静脉回流曲线呈线性和凹形,取决于静脉顺应性。血液动力学平衡点标记在静脉回流曲线和每搏量曲线的交叉点上。用户可以使用模拟器进行交互式探索学习,并尝试确认自己的兴趣,解答有关血液动力学概念的问题。
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来源期刊
CiteScore
4.40
自引率
4.30%
发文量
27
审稿时长
6-12 weeks
期刊介绍: The Journal of Physiological Sciences publishes peer-reviewed original papers, reviews, short communications, technical notes, and letters to the editor, based on the principles and theories of modern physiology and addressed to the international scientific community. All fields of physiology are covered, encompassing molecular, cellular and systems physiology. The emphasis is on human and vertebrate physiology, but comparative papers are also considered. The process of obtaining results must be ethically sound. Fields covered: Adaptation and environment Autonomic nervous function Biophysics Cell sensors and signaling Central nervous system and brain sciences Endocrinology and metabolism Excitable membranes and neural cell physiology Exercise physiology Gastrointestinal and kidney physiology Heart and circulatory physiology Molecular and cellular physiology Muscle physiology Physiome/systems biology Respiration physiology Senses.
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