Shiogai Y, Stefanovska A, McClintock P V E
Physics Department, Lancaster University, Lancaster LA1 4YB, UK.
Phys Rep. 2010 Mar;488(2-3):51-110. doi: 10.1016/j.physrep.2009.12.003.
The application of methods drawn from nonlinear and stochastic dynamics to the analysis of cardiovascular time series is reviewed, with particular reference to the identification of changes associated with ageing. The natural variability of the heart rate (HRV) is considered in detail, including the respiratory sinus arrhythmia (RSA) corresponding to modulation of the instantaneous cardiac frequency by the rhythm of respiration. HRV has been intensively studied using traditional spectral analyses, e.g. by Fourier transform or autoregressive methods, and, because of its complexity, has been used as a paradigm for testing several proposed new methods of complexity analysis. These methods are reviewed. The application of time-frequency methods to HRV is considered, including in particular the wavelet transform which can resolve the time-dependent spectral content of HRV. Attention is focused on the cardio-respiratory interaction by introduction of the respiratory frequency variability signal (RFV), which can be acquired simultaneously with HRV by use of a respiratory effort transducer. Current methods for the analysis of interacting oscillators are reviewed and applied to cardio-respiratory data, including those for the quantification of synchronization and direction of coupling. These reveal the effect of ageing on the cardio-respiratory interaction through changes in the mutual modulation of the instantaneous cardiac and respiratory frequencies. Analyses of blood flow signals recorded with laser Doppler flowmetry are reviewed and related to the current understanding of how endothelial-dependent oscillations evolve with age: the inner lining of the vessels (the endothelium) is shown to be of crucial importance to the emerging picture. It is concluded that analyses of the complex and nonlinear dynamics of the cardiovascular system can illuminate the mechanisms of blood circulation, and that the heart, the lungs and the vascular system function as a single entity in dynamical terms. Clear evidence is found for dynamical ageing.
本文综述了将非线性和随机动力学方法应用于心血管时间序列分析的情况,特别提及了与衰老相关变化的识别。详细讨论了心率变异性(HRV)的自然变异性,包括与呼吸节律对瞬时心率的调制相对应的呼吸性窦性心律不齐(RSA)。HRV已通过传统频谱分析方法进行了深入研究,例如傅里叶变换或自回归方法,并且由于其复杂性,已被用作测试几种新提出的复杂性分析方法的范例。本文对这些方法进行了综述。考虑了时频方法在HRV中的应用,尤其包括小波变换,它可以解析HRV随时间变化的频谱内容。通过引入呼吸频率变异性信号(RFV),将注意力集中在心肺相互作用上,该信号可通过使用呼吸力传感器与HRV同时获取。综述了当前用于分析相互作用振荡器的方法,并将其应用于心肺数据,包括用于量化同步和耦合方向的方法。这些方法揭示了衰老通过瞬时心率和呼吸频率相互调制的变化对心肺相互作用的影响。回顾了用激光多普勒血流仪记录的血流信号分析,并将其与目前对内皮依赖性振荡如何随年龄演变的理解相关联:血管的内衬(内皮)对呈现出的情况至关重要。得出的结论是,对心血管系统复杂和非线性动力学的分析可以阐明血液循环机制,并且从动力学角度来看,心脏、肺和血管系统作为一个整体发挥作用。发现了动力学衰老的明确证据。