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Gorman, R. C.

Publications and source records attributed to Gorman, R. C..

2 recordsLinked to original sources

Glycation and Serum Albumin Infiltration Contribute to the Structural Degeneration of Bioprosthetic Heart Valves

BackgroundBioprosthetic heart valves (BHV) are widely used to treat heart valve disease but are fundamentally limited by structural valve degeneration (SVD). Non-calcific mechanisms of SVD entirely account for approximately 30% of SVD cases and contribute to calcific SVD but remain understudied. Glycation mechanisms have not been previously associated with SVD, despite being established as degenerative in collagenous native tissues. ObjectivesTo determine whether blood component infiltration-based glycation and concomitant human serum albumin (HSA) deposition contribute mechanistically to SVD. MethodsImmunohistochemistry (IHC) was used to identify advanced glycation end-products (AGEs) and serum albumin accumulation in 45 aortic valve BHV explanted due to SVD, glutaraldehyde-treated bovine pericardium (BP) incubated in vitro in glyoxal and HSA, and rat subcutaneous BP implants. Structural impacts of glycation-related mechanisms were evaluated by second harmonic generation (SHG) collagen imaging. Hydrodynamic effects of valve glycation and concomitant HSA exposure were studied with an ISO-5840-compliant pulse duplicator system using surgical grade BHV. ResultsAll 45 clinical explants and in vitro-incubated BP demonstrated accumulated AGE and HSA compared to un-implanted, un-exposed BHV. SHG revealed instigation of collagen malalignment similar to that in SVD explants by glycation and HSA infiltration. Rat subdermal explants also showed AGE and serum albumin accumulation. Pulse duplication demonstrated significantly reduced orifice area and increased pressure gradient and peak fluid velocity following glyoxal and HSA incubations. ConclusionsGlycation and concomitant HSA infiltration occur in clinical BHV and contribute to structural and functional degeneration of leaflet tissue, thus representing novel, interacting mechanisms of BHV SVD.

bioengineering

Mitral valve leaflet response to ischemic mitral regurgitation: From gene expression to tissue remodeling

AimsIschemic mitral regurgitation is frequently observed following myocardial infarction and is associated with higher mortality and poor clinical prognosis if left untreated. Accumulating evidence suggests that mitral valve leaflets actively remodel post-myocardial infarction, yet the cellular mechanisms underlying these responses and how this affects tissue function remain largely unknown. We sought to elucidate mitral valve remodeling post myocardial infarction at the tissue, cellular, and transcriptomic levels. Methods and ResultsThe mechanical behavior of ovine mitral valve leaflets pre- and 8 weeks post- myocardial infarction reveal a significant decrease in radial direction extensibility, which essentially eliminated the mechanical anisotropy typically observed in healthy mitral valves. Quantitative histology and ultrastructural assessment by transmission electron microscopy revealed altered leaflet composition and architecture at 8 weeks post-myocardial infarction. Assessment of the mitral valve interstitial cell nuclear aspect ratio, a metric of cellular deformation, revealed that they were on average rounder following myocardial infarction. RNA sequencing indicated that YAP-induced genes were elevated at 4 weeks post-myocardial infarction and genes related to extracellular matrix organization were some of the most downregulated in sheep with IMR compared to sheep without ischemic mitral regurgitation at 4 weeks post-myocardial infarction. Additionally, RNA sequencing revealed the possible recruitment of immune cells in this remodeling process due to the drastic elevation of CXCL9 and CLEC10A. ConclusionsOur multiscale assessment revealed significant mechanical and microstructural changes due to myocardial infarction. RNA sequencing provided a baseline for global gene expression changes in response to myocardial infarction with and without ischemic mitral regurgitation and suggests YAP-induced mechanotransduction, altered expression of extracellular matrix-related genes, and recruitment of immune cells as mechanisms contributing to altered mitral valve biomechanics post-myocardial infarction.

bioengineering