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自发性高血压大鼠的球管反馈多稳定性及频谱复杂性

Multistability in tubuloglomerular feedback and spectral complexity in spontaneously hypertensive rats.

作者信息

Layton Anita T, Moore Leon C, Layton Harold E

机构信息

Department of Mathematics, Duke University, Box 90320, Durham, NC 27708-0320, USA.

出版信息

Am J Physiol Renal Physiol. 2006 Jul;291(1):F79-97. doi: 10.1152/ajprenal.00048.2005. Epub 2005 Oct 4.

Abstract

Single-nephron proximal tubule pressure in spontaneously hypertensive rats (SHR) can exhibit highly irregular oscillations similar to deterministic chaos. We used a mathematical model of tubuloglomerular feedback (TGF) to investigate potential sources of the irregular oscillations and the corresponding complex power spectra in SHR. A bifurcation analysis of the TGF model equations, for nonzero thick ascending limb (TAL) NaCl permeability, was performed by finding roots of the characteristic equation, and numerical simulations of model solutions were conducted to assist in the interpretation of the analysis. These techniques revealed four parameter regions, consistent with TGF gain and delays in SHR, where multiple stable model solutions are possible: 1) a region having one stable, time-independent steady-state solution; 2) a region having one stable oscillatory solution only, of frequency f1; 3) a region having one stable oscillatory solution only, of frequency f2, which is approximately equal to 2f1; and 4) a region having two possible stable oscillatory solutions, of frequencies f1 and f2. In addition, we conducted simulations in which TAL volume was assumed to vary as a function of time and simulations in which two or three nephrons were assumed to have coupled TGF systems. Four potential sources of spectral complexity in SHR were identified: 1) bifurcations that permit switching between different stable oscillatory modes, leading to multiple spectral peaks and their respective harmonic peaks; 2) sustained lability in delay parameters, leading to broadening of peaks and of their harmonics; 3) episodic, but abrupt, lability in delay parameters, leading to multiple peaks and their harmonics; and 4) coupling of small numbers of nephrons, leading to multiple peaks and their harmonics. We conclude that the TGF system in SHR may exhibit multistability and that the complex power spectra of the irregular TGF fluctuations in this strain may be explained by switching between multiple dynamic modes, temporal variation in TGF parameters, and nephron coupling.

摘要

自发性高血压大鼠(SHR)的单肾单位近端小管压力可呈现出高度不规则的振荡,类似于确定性混沌。我们使用肾小管-肾小球反馈(TGF)的数学模型来研究SHR中不规则振荡的潜在来源以及相应的复杂功率谱。通过求解特征方程的根,对非零厚升支(TAL)氯化钠通透性的TGF模型方程进行了分岔分析,并进行了模型解的数值模拟,以辅助分析结果的解释。这些技术揭示了与SHR中的TGF增益和延迟一致的四个参数区域,在这些区域中可能存在多个稳定的模型解:1)具有一个稳定的、与时间无关的稳态解的区域;2)仅具有一个频率为f1的稳定振荡解的区域;3)仅具有一个频率为f2(约等于2f1)的稳定振荡解的区域;4)具有频率为f1和f2的两个可能的稳定振荡解的区域。此外,我们进行了模拟,其中假设TAL体积随时间变化,以及假设两个或三个肾单位具有耦合TGF系统的模拟。确定了SHR中频谱复杂性的四个潜在来源:1)允许在不同稳定振荡模式之间切换的分岔,导致多个频谱峰及其各自的谐波峰;2)延迟参数的持续不稳定性,导致峰及其谐波变宽;3)延迟参数的偶发性但突然的不稳定性,导致多个峰及其谐波;4)少数肾单位的耦合,导致多个峰及其谐波。我们得出结论,SHR中的TGF系统可能表现出多稳定性,并且该品系中不规则TGF波动的复杂功率谱可以通过多种动态模式之间的切换、TGF参数的时间变化和肾单位耦合来解释。

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