无创评估交感和副交感压力反射反应的时间动态。

IF 2.3 4区 医学 Q3 BIOPHYSICS
Heberto Suarez-Roca, Negmeldeen Mamoun, Joseph P Mathew, Andrey V Bortsov
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引用次数: 0

摘要

目的:压反射通过调节心率、心肌收缩和血管张力维持心血管稳定;然而,对其交感血管和心肌分支的无创评估往往忽略了它们的时间依赖性相互作用。为了解决这一空白,我们开发并实施了一种无创方法来表征这些压反射动力学,以增强对自主神经功能的理解,并改善心血管调节的临床评估。方法。我们分析了55名术前患者和21名来自EUROBAVAR数据集的参与者的血压和心电图记录。BRS采用序列法计算心跳间隔(IBI)、心输出量(CO)、心肌收缩力(dP/dtmax)和全身血管阻力(SVR),这些数据是通过脉冲轮廓分析得出的,相对于收缩压(SAP)的搏动变化。这些BRS估计值与血液动力学参数和心率变异性(HRV)在休息和活动站立时的相关性进行了评估。主要结果 ;确定了IBI、SVR和dP/dtmax的BRS的不同时间分布,与HRV和生理相关延迟的SVR、CO和SAP的持续平均水平具有显著相关性。直立应激主要影响IBI的副交感神经BRS,而SVR BRS和dP/dtmaxBRS则表现出微妙的变化,反映出独特的时间依赖性关联。该方法为全面了解压力反射功能提供了工具,突出了其分支与其效应物的潜伏期依赖性相互作用及其对生理挑战的适应性。这些发现可以改善自主神经功能障碍的临床评估,并为管理危及心血管稳定性的疾病提供个性化策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Noninvasive assessment of temporal dynamics in sympathetic and parasympathetic baroreflex responses.

Objective.The baroreflex maintains cardiovascular stability by modulating heart rate, myocardial contraction, and vascular tone. However, noninvasive assessment of its sympathetic vascular and myocardial branches often overlooks their time-dependent interplay. To address this gap, we developed and implemented a noninvasive method that characterizes these baroreflex dynamics to enhance understanding of autonomic function and improve clinical assessments of cardiovascular regulation.Approach.We analyzed blood pressure and ECG recordings from 55 preoperative patients and 21 participants from the EUROBAVAR dataset. Baroreflex sensitivity (BRS) was calculated using the sequence method for interbeat interval (IBI), myocardial contractility (dP/dtmax), and systemic vascular resistance (SVR), derived through pulse contour analysis at multiple delays relative to beat-to-beat changes in systolic arterial pressure (SAP). Correlations of these BRS estimates with hemodynamic parameters and heart rate variability (HRV) were evaluated at rest and during active standing.Main results.Distinct temporal profiles of BRS for IBI, SVR, and dP/dtmaxwere identified, with significant correlations to HRV and average SVR, CO, and SAP levels at physiologically relevant delays. Orthostatic stress primarily impacted parasympathetic BRS for IBI, while BRS for SVR and dP/dtmaxshowed subtler changes, reflecting unique time-dependent associations.Significance.This approach provides a tool to comprehensively understand the baroreflex function, highlighting the latency-dependent interactions of its branches with their effectors and their adaptability to physiological challenges. Such insights could improve clinical assessments of autonomic dysfunction with altered baroreflex latencies and inform personalized strategies for managing conditions that compromise cardiovascular stability.

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来源期刊
Physiological measurement
Physiological measurement 生物-工程:生物医学
CiteScore
5.50
自引率
9.40%
发文量
124
审稿时长
3 months
期刊介绍: Physiological Measurement publishes papers about the quantitative assessment and visualization of physiological function in clinical research and practice, with an emphasis on the development of new methods of measurement and their validation. Papers are published on topics including: applied physiology in illness and health electrical bioimpedance, optical and acoustic measurement techniques advanced methods of time series and other data analysis biomedical and clinical engineering in-patient and ambulatory monitoring point-of-care technologies novel clinical measurements of cardiovascular, neurological, and musculoskeletal systems. measurements in molecular, cellular and organ physiology and electrophysiology physiological modeling and simulation novel biomedical sensors, instruments, devices and systems measurement standards and guidelines.
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