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Control of ABP regulation in rats by interacting mechanisms: study by experiment, simulation, and time-frequency spectral analysis

机译:通过相互作用机制控制大鼠ABP的调节:通过实验,模拟和时频频谱分析进行研究

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Arterial blood pressure (ABP) variability spectra from sinoaortic deafferented (SAD) rats exhibit 10-100 times higher power at low frequencies (0.01-0.1 Hz) than in sham operated (SHAM) rats, and a prominent peak at the respiratory rate (1.7-2.0 Hz). SHAM rats exhibit a mid-frequency peak (0.3-0.5 Hz), and a small respiratory peak. The intact baroreflex in SHAM rats is thought to suppress the low frequency oscillations. Wigner-Ville (WV) spectra illustrate that following SAD, the slower mechanisms (e.g. renin-angiotensin system) that ordinarily play a minor role in regulation of ABP increase their gains over a period of weeks so that oscillations at their characteristic frequencies become pronounced. Furthermore temporal fluctuations in low frequency power seen in WV spectra apparently occur at the baroreflex frequency in SHAM and are abolished by SAD. To confirm these results, a simple ABP control model consisting of feedback and feedforward loops with appropriate gains and time constants was implemented. Consistent with the authors' physiologic interpretation of the underlying processes, SAD simulation required that the gain of the lower frequency components be increased to obtain realistic data in time and frequency domains. Thus interaction between the baroreflex and lower frequency components is exposed.
机译:来自窦性失血性(SAD)大鼠的动脉血压(ABP)变异谱在低频(0.01-0.1 Hz)时的功率比假手术(SHAM)大鼠高10-100倍,并且在呼吸频率(1.7)时有一个突出的峰值-2.0 Hz)。 SHAM大鼠表现出中频峰(0.3-0.5 Hz)和小的呼吸峰。 SHAM大鼠中完整的压力反射被认为抑制了低频振荡。 Wigner-Ville(WV)光谱表明,在SAD之后,通常在ABP调节中起次要作用的慢速机制(例如肾素-血管紧张素系统)会在数周内增加其增益,从而使其特征频率处的振荡变得明显。此外,在WV频谱中看到的低频功率的时间波动显然发生在SHAM的压力反射频率处,并被SAD所消除。为了证实这些结果,实施了一个简单的ABP控制模型,该模型由具有适当增益和时间常数的反馈和前馈回路组成。与作者对基本过程的生理解释一致,SAD模拟要求增加低频分量的增益,以获得时域和频域中的真实数据。因此暴露了压力反射与低频分量之间的相互作用。

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