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Updated: Aug 30, 2026

Tilt Testing with Combined Lower Body Negative Pressure: a "Gold Standard" for Measuring Orthostatic Tolerance
Published on: March 21, 2013
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.
Abstract:
As a step towards investigating the chronome (i.e. the inferential endpoints of chaos, trends and rhythms) of heart rate (HR) variability (HRV), we investigated whether the fractality or complexity of HRV is affected by a head-up tilting (HUT) test in the morning after an overnight fast. Spectral and non-linear analyses of HR were performed on data gathered during an 80 degrees passive HUT test in 15 men and 28 women 32.8 +/- 11.5 years of age. The non-linear endpoints included the scaling exponents alpha1 (<11 beats) and alpha2 (>11 beats), which indicate fractal properties, calculated with detrended fluctuation analysis, and the approximate entropy (ApEn), a measure of overall complexity. Passive HUT increased alpha1 (from 0.986 +/- 0.217 to 1.370 +/- 0.185; P = 0.0001), but did not alter alpha2 (from 0.925 +/- 0.110 to 0.958 +/- 0.130; P = 0.19). A slight but statistically significant decrease in ApEn was seen during HUT (from 1.114 +/- 0.131 to 1.013 +/- 0.197; P = 0.002). In the tilt-up position, there was a statistically significant negative correlation between alpha1 and ApEn (r = -0.490; P < 0.05). In both the supine and the tilt-up position, alpha1 was correlated weakly with HF (r = -0.343 and r = -0.322, respectively), and strongly with LF/HF (r = 0.557 and r = 0.795), respectively. There was also a negative correlation between ApEn and LF/HF (r = -0.406 and r = -0.357, respectively). alpha2 did not correlate with any spectral or non-linear measures of HRV. Short-term fractal properties and complexity of HR were lowered with orthostatic stress. Alterations of the autonomic activities could be partly responsible for these changes and await extension of such studies to assess the broad spectral element of HRV, that includes, with components of approximately 3.6 and approximately 10.5 s, cycles with very much lower frequencies, along the scales of hours and even years, that critically modulate the mislabeled (only relatively high- and low-frequency) components in the range of seconds or minutes.
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