Towards understanding the complexity of cardiovascular oscillations: Insights from information theory.

Comput Biol Med

Department of Energy, Information Engineering and Mathematical Models (DEIM), University of Palermo, Viale delle Scienze, Ed. 9, 90128, Palermo, Italy; BIOtech, Department of Industrial Engineering, University of Trento, via delle Regole 101, 38123, Mattarello, Trento, Italy.

Published: July 2018

AI Article Synopsis

  • Cardiovascular complexity reflects how multiple systems work together to regulate heart and blood pressure, seen in variations in heart rate and blood pressure.
  • The study uses information theory to analyze short-term variations in heart rate and blood pressure in 61 healthy young adults under different conditions, such as resting and during head-up tilt (HUT) and mental arithmetic (MA).
  • Key findings include changes in heart rate and blood pressure complexity during challenges, reduced information transfer between breathing and heart activity, and different cardiovascular responses depending on the challenge, highlighting the intricate dynamics of the cardiovascular system.

Article Abstract

Cardiovascular complexity is a feature of healthy physiological regulation, which stems from the simultaneous activity of several cardiovascular reflexes and other non-reflex physiological mechanisms. It is manifested in the rich dynamics characterizing the spontaneous heart rate and blood pressure variability (HRV and BPV). The present study faces the challenge of disclosing the origin of short-term HRV and BPV from the statistical perspective offered by information theory. To dissect the physiological mechanisms giving rise to cardiovascular complexity in different conditions, measures of predictive information, information storage, information transfer and information modification were applied to the beat-to-beat variability of heart period (HP), systolic arterial pressure (SAP) and respiratory volume signal recorded non-invasively in 61 healthy young subjects at supine rest and during head-up tilt (HUT) and mental arithmetics (MA). Information decomposition enabled to assess simultaneously several expected and newly inferred physiological phenomena, including: (i) the decreased complexity of HP during HUT and the increased complexity of SAP during MA; (ii) the suppressed cardiorespiratory information transfer, related to weakened respiratory sinus arrhythmia, under both challenges; (iii) the altered balance of the information transferred along the two arms of the cardiovascular loop during HUT, with larger baroreflex involvement and smaller feedforward mechanical effects; and (iv) an increased importance of direct respiratory effects on SAP during HUT, and on both HP and SAP during MA. We demonstrate that a decomposition of the information contained in cardiovascular oscillations can reveal subtle changes in system dynamics and improve our understanding of the complexity changes during physiological challenges.

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Source
http://dx.doi.org/10.1016/j.compbiomed.2018.05.007DOI Listing

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