Toward chronocardiologic and chronomic insights: dynamics of heart rate associated with head-up tilting

Yutaka Kubo1, Shogo Murakami, Osamu Matsuoka

  • 1Department of Medicine, Daini Hospital, Tokyo Women's Medical University, Nishiogu 2-1-10 Arakawa-ku, Tokyo 116-8567, Japan. CXB01772@nifty.com

Insights

The head-up tilting test reduced short-term fractal properties and complexity of heart rate variability (HRV). These changes in heart rate complexity may be linked to autonomic nervous system activity during orthostatic stress.

Area of Science:

  • Physiology
  • Nonlinear dynamics

Background:

  • Heart rate variability (HRV) analysis is crucial for understanding autonomic nervous system function.
  • Investigating the chronome of HRV requires assessing its fractal properties and complexity.

Purpose of the Study:

  • To determine if head-up tilting (HUT) affects the fractality and complexity of HRV.
  • To analyze non-linear endpoints of HRV during orthostatic stress.

Main Methods:

  • Passive 80-degree HUT test performed on 43 participants (15 men, 28 women).
  • Spectral and non-linear analyses of heart rate (HR) data, including detrended fluctuation analysis (DFA) for scaling exponents (alpha1, alpha2) and approximate entropy (ApEn).

Main Results:

  • HUT significantly increased alpha1 (short-term fractality) but did not alter alpha2 (long-term fractality).
  • Approximate entropy (ApEn), a measure of complexity, significantly decreased during HUT.
  • Negative correlations observed between alpha1 and ApEn, and between ApEn and LF/HF ratio during HUT.

Conclusions:

  • Short-term fractal properties and complexity of HR are diminished by orthostatic stress.
  • Autonomic activity alterations likely contribute to these observed changes in HRV.
  • Further research needed to explore the broad spectral elements of HRV and their modulation.

Related Concept Videos

Factors Influencing Heart Rate01:30

Factors Influencing Heart Rate

The heart rate, or pulse rate, is a vital indicator of cardiovascular health. It reflects the number of times the heart beats per minute. Various physiological and environmental factors influence heart rate, increasing or decreasing cardiac output. Understanding these factors is crucial for assessing heart function and identifying potential health issues.
Let us explore the significant factors affecting heart rate, including age, body temperature, posture, acute pain, chemical influences,...
Cardiac Output I:Effect of Heart Rate on Cardiac Output01:19

Cardiac Output I:Effect of Heart Rate on Cardiac Output

Cardiac Output
Cardiac output (CO) refers to the total amount of blood ejected by one of the ventricles in liters per minute (L/min). In a resting adult, CO ranges from 5 to 6 L/min, adjusting according to the body's metabolic requirements.
Effect of Heart Rate on Cardiac Output
Cardiac output adapts to metabolic demands during stress, physical activity, or illness. The autonomic nervous system regulates heart rate via the sinoatrial node. The parasympathetic nervous system decreases heart rate...
Correlation between ECG and Cardiac Cycle01:25

Correlation between ECG and Cardiac Cycle

The electrical signals recorded on an electrocardiogram (ECG) occur before the mechanical processes of contraction and relaxation during the cardiac cycle.
A cardiac action potential originates in the SA node and spreads throughout the atria and the AV node in approximately 0.03 seconds. This results in the P wave in an ECG and triggers atrial contraction. The action potential is then briefly slowed at the AV node, allowing the atria to contract and fill the ventricles with blood before...
Regulation of Heart Rates01:31

Regulation of Heart Rates

The regulation of heart rate is a complex process controlled by the autonomic nervous system (ANS), hormonal influences, and intrinsic cardiac mechanisms. The ANS has two main components: the sympathetic nervous system (SNS) and the parasympathetic nervous system (PNS).
The SNS increases heart rate through the release of norepinephrine and epinephrine, which act on beta-1 adrenergic receptors in the heart. This action increases the rate of depolarization in the sinoatrial (SA) node, the heart's...
Chronopharmacokinetics: Circadian Rhythms and Influence on Drug Response01:15

Chronopharmacokinetics: Circadian Rhythms and Influence on Drug Response

Circadian rhythms are cyclic changes that are crucial in plasma drug concentrations. Various standard circadian parameters, including core body temperature, heart rate, and other cardiovascular factors, directly impact disease states and the therapeutic response to drug therapy.
The time of drug administration is an important factor to consider, as it can influence the toxic dose of a drug. For example, a study conducted by Prins et al. in 1997 examined the effects of the timing of...
Pulse rhythm01:30

Pulse rhythm

Pulse rhythm refers to the pattern of pulsations within specific intervals, offering valuable insights into the regularity or irregularity of the heart's beats as observed through the pattern of pulsation within specific intervals. A regular pulse exhibits a consistent heart rate with uniform waveforms and pulsation force, variations of which can be classified as normal, weak, or bounding.
Conversely, an irregular pulse pattern is termed dysrhythmia, stemming from disruptions in cardiac muscle...