Cardiovascular magnetic resonance imaging-based computational fluid dynamics/fluid-structure interaction pilot study
Margaret M Samyn1, Ronak Dholakia, Hongfeng Wang
1Department of Pediatrics, Medical College of Wisconsin, Milwaukee, WI, USA, msamyn@chw.org.
Insights
Pediatric type 1 diabetes patients show altered thoracic aortic wall properties and hemodynamics. Cardiac MRI reveals differences in wall shear stress, suggesting potential cardiovascular risks in young individuals with diabetes.
Area of Science:
- Cardiovascular Imaging
- Pediatric Endocrinology
- Biomedical Engineering
Background:
- Type 1 diabetes (T1D) can affect vascular health in pediatric patients.
- Early detection of cardiovascular changes is crucial for managing T1D complications.
Purpose of the Study:
- To investigate differences in thoracic aortic wall properties and hemodynamics in pediatric patients with T1D compared to controls using cardiac magnetic resonance (CMR).
- To assess regional differences in wall shear stress indices using patient-specific computational fluid dynamics (CFD) modeling.
Main Methods:
- Recruited pediatric patients with T1D and age-matched controls.
- Utilized CMR for aortic imaging, 4-limb blood pressure, and brachial artery reactivity testing.
- Employed patient-specific CFD with fluid-structure interaction to determine time-averaged wall shear stress (TAWSS) and oscillatory shear index (OSI).
Main Results:
- Pediatric T1D patients exhibited lower flow-mediated dilation compared to controls.
- The aorta in T1D subjects showed more regions with high TAWSS.
- Flow-mediated dilation correlated with age at diagnosis and hemoglobin A1c, but not with TAWSS or OSI.
Conclusions:
- CMR can detect regional differences in aortic wall properties in young patients with T1D.
- Observed local differences in wall shear stress indices warrant further investigation.
- A longitudinal study is recommended to understand the progression of these vascular changes.
Abstract:
We hypothesized that pediatric patients with type 1 diabetes have cardiac magnetic resonance (CMR) detectable differences in thoracic aortic wall properties and hemodynamics leading to significant local differences in indices of wall shear stress, when compared with age-matched control subjects without diabetes. Pediatric patients with type 1 diabetes were recruited from Children's Hospital of Wisconsin and compared with controls. All underwent morning CMR scanning, 4-limb blood pressure, brachial artery reactivity testing, and venipuncture. Patient-specific computational fluid dynamics modeling with fluid-structure interaction, based on CMR data, determined regional time-averaged wall shear stress (TAWSS) and oscillatory shear index (OSI). Twenty type 1 diabetic subjects, median age 15.8 years (11.6-18.4) and 8 controls 15.4 years (10.3-18.2) were similar except for higher glucose, hemoglobin A1c, and triglycerides for type 1 diabetic subjects. Lower flow-mediated dilation was seen for those with type 1 diabetes (6.5) versus controls (7.8), p = 0.036. For type 1 diabetic subjects, the aorta had more regions with high TAWSS when compared to controls. OSI maps appeared similar. Flow-mediated dilation positively correlated with age at diabetes diagnosis (r = 0.468, p = 0.038) and hemoglobin A1c (r = 0.472, p = 0.036), but did not correlate with aortic distensibility, TAWSS, or OSI. TAWSS did not correlate with any clinical parameter for either group. CMR shows regional differences in aortic wall properties for young diabetic patients. Some local differences in wall shear stress indices were also observed, but a longitudinal study is now warranted.
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