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Probing age-related changes in cardio-respiratory dynamics by multimodal coupling assessment

  • Chen Lin
  • , Pei Feng Lin
  • , Chen Hsu Wang
  • , Chung Hau Juan
  • , Thi Thao Tran
  • , Van Truong Pham
  • , Chun Tung Nien
  • , Yenn Jiang Lin
  • , Cheng Yen Wang
  • , Chien Hung Yeh*
  • , Men Tzung Lo
  • *此作品的通讯作者
  • National Central University
  • Tainan Hospital
  • Cathay General Hospital Taiwan
  • Hanoi University of Science and Technology
  • Taiwan Landseed Hospital
  • Veterans General Hospital-Taipei
  • National Yang Ming Chiao Tung University
  • Taipei Medical University
  • University of Oxford

科研成果: 期刊稿件文章同行评审

摘要

Quantifying respiratory sinus arrhythmia (RSA) can provide an index of parasympathetic function. Fourier spectral analysis, the most widely used approach, estimates the power of the heart rate variability in the frequency band of breathing. However, it neglects the time-varying characteristics of the transitions as well as the nonlinear properties of the cardio-respiratory coupling. Here, we propose a novel approach based on Hilbert-Huang transform, called the multimodal coupling analysis (MMCA) method, to assess cardio-respiratory dynamics by examining the instantaneous nonlinear phase interactions between two interconnected signals (i.e., heart rate and respiration) and compare with the counterparts derived from the wavelet-based method. We used an online database. The corresponding RSA components of the 90-min ECG and respiratory signals of 20 young and 20 elderly healthy subjects were extracted and quantified. A cycle-based analysis and a synchro-squeezed wavelet transform were also introduced to assess the amplitude or phase changes of each respiratory cycle. Our results demonstrated that the diminished mean and standard deviation of the derived dynamical RSA activities can better discriminate between elderly and young subjects. Moreover, the degree of nonlinearity of the cycle-by-cycle RSA waveform derived from the differences between the instantaneous frequency and the mean frequency of each respiratory cycle was significantly decreased in the elderly subjects by the MMCA method. The MMCA method in combination with the cycle-based analysis can potentially be a useful tool to depict the aging changes of the parasympathetic function as well as the waveform nonlinearity of RSA compared to the Fourier-based high-frequency power and the wavelet-based method.

源语言英语
期刊论文编号033118
期刊Chaos
30
3
DOI
出版状态已出版 - 1 3月 2020

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