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Phillips, E. H.

Publications and source records attributed to Phillips, E. H..

2 recordsLinked to original sources

Longitudinal Investigation of Aortic Dissection in Mice with Computational Fluid Dynamics

Patients with aortic dissection require lifelong surveillance to monitor disease progression and detect late adverse events such as aneurysmal dilation, malperfusion or refractory pain. The variety and complexity of aortic dissection have so far eluded definitive predictions of occurrence and timing of late adverse events. The search for early indicators of late adverse events has been based mostly on morphologic features, and one commonly observed risk factor is partial thrombosis of the false lumen. While the effect of partial thrombosis on disease progression is incompletely understood, hemodynamic factors, including low velocity or stagnant flow, are likely to play a role. In this study we investigated the progression of false lumen intramural thrombus formation in four mice with angiotensin IIinduced aortic dissection. Based on 3D B-mode ultrasound images, we created segmentations of the diseased aorta including the true lumen, false lumen, and thrombus. These geometries were then used to run computational fluid dynamic simulations with subject-specific boundary conditions. Each mouse was followed for seven days and 4-5 longitudinal image datasets were acquired for each animal. We found that false lumina with a single entry tear tend to have smaller mean relative velocities, and at the same time are subject to a larger false lumen thrombus ratio. Likewise, regions of low velocity correlated with regions of elevated endothelial cell activation potential and higher particle residence times. These findings support the hypothesis that flow stagnation is the predominant hemodynamic factor that results in a large thrombus ratio in false lumina, particularly those with a single entry tear. Additional work will be needed to further explore the intricacies of these complex experimental vascular lesions and how the hemodynamic conditions compare to human aortic dissections.

bioengineering↗

Three-dimensional spatial quantitative analysis of cardiac lymphatics in the mouse heart

Objective3D microscopy and image data analysis are necessary for studying the morphology of cardiac lymphatic vessels (LyVs) and association with other cell types. We aimed to develop a methodology for 3D multiplexed lightsheet microscopy and highly sensitive and quantitative image analysis to identify pathological remodeling in the 3D morphology of LyVs in young adult mouse hearts with familial hypertrophic cardiomyopathy (HCM). MethodsWe developed a 3D lightsheet microscopy workflow providing a quick turn-around (as few as 5-6 days), multiplex fluorescence detection, and preservation of LyV structure and epitope markers. Hearts from non-transgenic (NTG) and transgenic (TG) HCM mice were arrested in diastole, retrograde perfused, immunolabeled, optically cleared, and imaged. We built an image processing pipeline to quantify LyV morphological parameters at the chamber and branch levels. ResultsChamber-specific pathological alterations of LyVs were identified, but most significantly in the right atrium (RA). TG hearts had a higher volume fraction of ER-TR7+ fibroblasts and reticular fibers. In the RA, we found associations between ER-TR7+ volume fraction and both LyV segment density and median diameter. ConclusionsThis workflow and study enabled multi-scale analysis of pathological changes in cardiac LyVs of young adult mice, inviting ideas for research on LyVs in cardiac disease.

pathology↗