Resmi V L, Sriya R G, Selvaganesan N
Department of Avionics, Indian Institute of Space Science and Technology, Thiruvananthapuram, Kerala, India.
Comput Methods Biomech Biomed Engin. 2023 Sep;26(9):1034-1043. doi: 10.1080/10255842.2022.2104123. Epub 2022 Jul 28.
Baroreflex dysfunction is one of the common causes associated with the cardiovascular system. The buffering capability and baroreflex gain influences large variation in blood pressure for short term control. For regulating the blood pressure, an integrated analytical model for baroreflex control along with the cardiovascular system is presented to study the complex interactions between autonomic nervous system and cardiovascular system. In the proposed model, the autonomic nervous system utilizes sympathetic and parasympathetic nerve activities. This comprises a heart modeled by Mulier's approach, systemic vasculature, baroreceptor sensor using stress-strain based Voigt model and Hodgkin-Huxley based autonomic nervous control. This model can handle the distribution of total blood volume changes under the influence of gravity upon postural changes by means of short term baroreflex control. The simulation is carried out for the integrated model along with (i) non pulsatile and (ii) pulsatile model of heart. The proposed model is validated for supine to standing position under influence of gravity. To show the efficiency of the proposed model, the simulation is carried out further for (i) postural changes like supine to standing and standing to supine under normal condition and (ii) Orthostatic hypotension and hypertension conditions. Also the robustness of the proposed pulsatile model is tested by introducing disturbance signal in mean arterial pressure under various postural changes.
压力反射功能障碍是心血管系统常见病因之一。缓冲能力和压力反射增益会影响血压在短期内的大幅波动以进行控制。为了调节血压,提出了一个包含压力反射控制和心血管系统的综合分析模型,以研究自主神经系统与心血管系统之间的复杂相互作用。在所提出的模型中,自主神经系统利用交感神经和副交感神经活动。该模型包括一个采用穆利尔方法建模的心脏、全身血管系统、基于应力应变的沃伊特模型的压力感受器传感器以及基于霍奇金 - 赫胥黎模型的自主神经控制。通过短期压力反射控制,该模型能够处理姿势变化时重力影响下总血容量变化的分布情况。针对综合模型,分别对(i)非搏动性心脏模型和(ii)搏动性心脏模型进行了模拟。所提出的模型在重力影响下从仰卧位到站立位的过程中得到了验证。为了展示所提出模型的有效性,进一步针对(i)正常情况下从仰卧位到站立位以及从站立位到仰卧位等姿势变化,以及(ii)直立性低血压和高血压情况进行了模拟。此外,通过在各种姿势变化下向平均动脉压引入干扰信号,测试了所提出的搏动性模型的鲁棒性。