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Published on: December 2, 2014
Association between invasively measured central aortic pulse pressure and diameter of ascending aorta
Hack-Lyoung Kim1, Hyun Sung Joh2, Woo-Hyun Lim2
1Division of Cardiology, Department of Internal Medicine, Boramae Medical Center, Seoul National University College of Medicine, 5 Boramae-Ro, Dongjak-Gu, Seoul, 07061, Republic of Korea. khl2876@gmail.com.
Insights
Invasive measurements show a strong link between aortic pulse pressure and ascending aorta diameter. This finding enhances understanding of central hemodynamics and aortic root geometry.
Area of Science:
- Cardiovascular Physiology
- Medical Imaging
- Hemodynamics
Background:
- Limited data exists on invasive hemodynamic measurements and aortic root geometry.
- Understanding the relationship between pulsatile hemodynamics and aortic dimensions is crucial for cardiovascular health.
Purpose of the Study:
- To assess the relationship between invasively measured aortic pulse pressure (aPP) and ascending aorta diameter (AoD).
- To investigate the correlation between central aortic hemodynamics and aortic root geometry.
Main Methods:
- Analysis of 665 subjects undergoing invasive coronary angiography.
- Measurement of aortic diameter (AoD) via transthoracic echocardiography.
- Invasive measurement of aortic pressures using a pig-tail catheter to calculate aPP.
Main Results:
- A significant positive correlation was found between aPP and body surface area-adjusted AoD (AoD/BSA).
- The correlation between aPP and AoD/BSA was stronger than that of aortic systolic pressure or brachial pulse pressure.
- Multivariable analyses confirmed aPP as a significant predictor of AoD/BSA.
Conclusions:
- Invasively measured aPP is significantly associated with AoD/BSA.
- This study provides robust evidence linking central aortic pulsatile hemodynamics to aortic root geometry.
- Findings contribute to a deeper understanding of aortic remodeling influenced by hemodynamic forces.
Abstract:
Data on the relationship between arterial pulsatile hemodynamics and aortic root geometry, using invasive hemodynamic measurement, has been scarce. Thus, this study aimed to assess the relationship between invasively measured aortic pulse pressure (aPP) and the diameter of ascending aorta (AoD). We analyzed 665 subjects (64.3 ± 11.0 years; 34.6% female) who underwent elective invasive coronary angiography (ICA) for the evaluation of coronary artery disease. Transthoracic echocardiography was performed on the same day, and AoD was measured at the level of 1 cm above the sinotubular junction at the end-diastole. Body surface area (BSA)-adjusted AoD (AoD/BSA) was used for the analysis. A pig-tail catheter was used to measure aortic pressures at a level approximately 3 cm above the aortic valve just before ICA. aPP was calculated as the difference between systolic and diastolic pressures of the aorta. In multiple linear regression analyses, aPP (β = 0.259; P < 0.001) was found to be significantly correlated with AoD/BSA even after controlling for potential confounders. This correlation power was stronger than aortic systolic pressure (β = 0.189; P < 0.001) and brachial pulse pressure (β = 0.091; P = 0.018) at the same multivariable analyses. In conclusion, our study demonstrated a significant association between invasively measured aPP and AoD/BSA, providing stronger evidence for the link between central aortic pulsatile hemodynamics and aortic root geometry.
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