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Gaweda, B.

Publications and source records attributed to Gaweda, B..

5 recordsLinked to original sources

Incomplete Reverse Remodeling of the Tricuspid Valve Leaflets Following Relief of Pressure Overload

Objective(s)Tricuspid valve (TV) remodeling and functional tricuspid regurgitation (FTR) progression during right ventricular (RV) pressure overload and reverse remodeling after resolution of RV afterload is poorly understood. We set out to investigate tricuspid leaflet tissue response to induction and subsequent alleviation of pressure overload in a large animal model of RV failure with FTR. MethodsFifteen healthy adult male Dorset sheep (72{+/-}4 kg) underwent pulmonary artery banding (PAB) to induce RV failure and FTR. After 8 weeks, 7 sheep (PAB, n=7) were terminated, and remaining 8 had the PAB removed (rPAB, n=8) and were followed for another 8 weeks before termination. Both groups underwent epicardial echocardiography and hemodynamic assessment during banding surgery and at terminal operation. Ten healthy sheep served as a control group (CTL, n=10) and underwent terminal procedure only. In all animals, TV leaflets and right ventricular (RV) tissue were harvested at terminal procedure and analyzed histologically and transcriptionally. ResultsTV leaflets in PAB animals showed increased cross-sectional area and ECM alterations, some of which persisted after resolution of RV pressure overload. rPAB valves exhibited distinct ECM composition, with notably altered mucin and fibrin content, suggesting a shift toward matrix stabilization, dissimilar to control and PAB. RNA sequencing uncovered a unique molecular state in rPAB valves, with persistent changes in PRG4, PDE3A, CXCL8, and HLA transcripts. RV tissue also demonstrated a separate remodeling trajectory, with sustained expression of stress-related genes including PDE3A, NAV2, ANFB, and ACTS. These findings indicate that both valve and ventricular tissues retain a persistent remodeled phenotype post-unloading. ConclusionsTV leaflets actively remodel in response to hemodynamic stress and do not fully revert to a normal state after relief of pressure overload. This persistent altered phenotype may represent a biological contribution of the TV leaflets to recurrent TR with implications for long-term outcomes following treatment of FTR. Clinical Perspective What is new?O_LIRelief of right ventricular pressure overload, in a large animal model, resulted in substantial reverse remodeling of the right heart and reduction of tricuspid regurgitation severity, but tricuspid valve leaflets did not return to a normal state. C_LIO_LIReverse remodeled leaflets remained enlarged despite normalization of hemodynamics with an altered extracellular matrix. C_LIO_LICellular proliferation and immune cell infiltration observed during pressure overload resolved after unloading, yet transcriptomic analysis identified a distinct molecular phenotype that differed from both healthy and diseased valves. C_LIO_LITricuspid valve leaflets are active biological participants in the remodeling process and exhibit persistent adaptation or maladaptation after resolution of the initiating hemodynamic stress. C_LI What Are the Clinical Implications?O_LISecondary tricuspid regurgitation should be considered a disease involving both right heart geometry and leaflet biology. C_LIO_LIResolution of the underlying cause of tricuspid regurgitation may not restore leaflet structure and molecular homeostasis. C_LIO_LIPersistent leaflet remodeling may contribute to residual or recurrent tricuspid regurgitation despite successful treatment of pulmonary hypertension or other inciting conditions. C_LIO_LITherapies directed at leaflet remodeling may ultimately complement surgical and transcatheter strategies currently focused on annular and ventricular geometry. C_LI

physiology↗

Sex-Specific Remodeling Phenotypes of the Tricuspid Valve Leaflets in an Ovine Model of Functional Tricuspid Regurgitation

BackgroundModerate to severe tricuspid regurgitation (TR) affects approximately 1.6 million Americans, yet more than 90% of patients with significant TR remain untreated. Women exhibit higher TR prevalence and more rapid disease progression than men, but the valve-intrinsic mechanisms underlying these sex disparities remain unclear. We hypothesized that sex and circulating testosterone influence tricuspid leaflet remodeling during right-sided pressure overload. MethodsFemale, castrated male (C-Male), and non-castrated male (NC-Male) adult Dorset sheep (n = 45) underwent pulmonary artery banding (PAB) and were followed for 13 {+/-} 1.5 weeks. Tricuspid leaflets were evaluated using morphometry, 3D profilometry, biaxial mechanical testing, histology, and bulk RNA sequencing. Sex-stratified differential gene expression was performed, and pathway enrichment of key biological processes were compared between sexes. ResultsPAB produced a uniform hemodynamic stimulus and equivalent moderate-to-severe TR across sex groups. Despite similar TR burden, leaflet remodeling diverged substantially by sex and castration status. C-Males developed the broadest remodeling phenotype, characterized by diffuse multi-leaflet growth, thickening, increased nuclei count, and low-strain stiffening. Females demonstrated more restricted leaflet and region-specific structural and cellular changes, along with circumferential low-strain stiffening. NC-Males exhibited preferential septal remodeling characterized by growth, thickening, increased nuclei count, and radial high-strain stiffening. Transcriptomic analysis revealed that females upregulated a focused matricellular remodeling program enriched for extracellular space organization (67 DEGs; FDR=0.025), whereas C-Males activated coordinated extracellular matrix and apoptosis-regulatory programs (388 DEGs; FDR=0.009). In contrast, NC-Males exhibited broad transcriptional response (406 DEGs) without significant pathway enrichment. ConclusionsTricuspid leaflet maladaptation during pressure overload is sex-dependent and testosterone-sensitive, involving distinct structural, mechanical, and transcriptional remodeling programs. These findings identify sex and testosterone status as previously under-recognized modulators of tricuspid valve remodeling and may help explain clinical sex disparities in TR progression. NOVELTY AND SIGNIFICANCE What is known?O_LIPulmonary hypertension and right ventricular pressure overload are linked to tricuspid leaflet remodeling through leaflet thickening, enlargement, and altered mechanical properties. C_LIO_LISex and sex-steroid hormones regulate fibrosis and extracellular matrix remodeling in cardiovascular tissues, but their role in tricuspid leaflet remodeling remains poorly understood. C_LI What new information does this article contribute?O_LISex and circulating testosterone status influence the magnitude, spatial distribution, biomechanical behavior, and transcriptional organization of tricuspid leaflet remodeling during pressure overload. C_LIO_LIFemales, castrated males, and non-castrated males develop distinct remodeling programs characterized by focused matricellular remodeling, coordinated extracellular matrix/apoptosis signaling, and diffuse transcriptional activation, respectively. C_LIO_LIThese findings identify sex and hormonal status as biological regulators of tricuspid valve maladaptation during functional tricuspid regurgitation. C_LI SummarySex differences in tricuspid regurgitation progression are recognized clinically, yet the mechanobiological basis underlying these disparities remains poorly understood. Using a controlled ovine model of pressure overload-induced secondary tricuspid regurgitation, we demonstrated that tricuspid leaflet maladaptation is a sex-specific and testosterone-sensitive process spanning structural, mechanical, and transcriptional scales. Under comparable hemodynamic overload, all animals developed significant tricuspid regurgitation, but leaflet remodeling patterns diverged substantially across sexes. Castrated male sheep exhibited the broadest maladaptive phenotype, characterized by diffuse multi-leaflet growth and thickening, increased low-stretch stiffness, and coordinated extracellular matrix and apoptosis-regulatory transcriptional programs. Female sheep developed more spatially restricted remodeling accompanied by a focused matricellular and extracellular matrix secretory response, whereas non-castrated male sheep demonstrated selective leaflet remodeling with broad, but less coordinated, transcriptional activation. Different remodeling patterns emerged in females and castrated males despite comparable testosterone levels, suggesting that testosterone depletion alone does not fully explain these tricuspid valve remodeling phenotypes. These findings establish sex and testosterone status as previously underrecognized biological regulators of tricuspid leaflet maladaptation and support the emerging view that valve leaflets are active, mechanobiologically responsive, participants in functional tricuspid regurgitation progression.

bioengineering↗

The Tricuspid Valve Maladapts in a Pulmonary Hypertension Rat Model

Tricuspid valve regurgitation is a frequent valve lesion and, if severe, an independent predictor of mortality. In most patients, the valve itself has historically been considered intact. Yet, we have previously shown that the valve may not be an innocent bystander. In multiple sheep models, we have shown that the tricuspid valve thickens and stiffens. This remodeling may contribute to valve disease. Our goal is to extend our investigation of tricuspid valve remodeling to a rodent model, potentially opening scientific opportunity and enabling scaling our studies. To this end, we used pulmonary artery banding (PAB) in male rats to induce pressure overload and right ventricular remodeling. After excising the tricuspid valve, we quantified anterior leaflet morphology, mapped anterior leaflet thickness using optical coherence tomography, and evaluated anterior leaflet belly mechanics using a custom bulge testing system. Compared with SHAM controls, PAB increased anterior leaflet area. Moreover, anterior leaflets in PAB animals exhibited region-specific thickening, with the largest increases near the annulus. Finally, anterior leaflets in PAB animals were significantly less compliant. However, leaflet stiffening stemmed from aforementioned thickening, i.e., structural stiffening, not constitutive stiffening. Our findings demonstrate that we can reliably quantify leaflet area, thickness, and stiffness in the minuscule tricuspid valves of rats. We also show that tricuspid valve remodeling is not ovine-specific, but also affects the tricuspid valves of rats. Together, our findings support our hypothesis that tricuspid valves are not innocent bystanders in regurgitation, and that rats may serve as a scalable model system for future investigations. NEW & NOTEWORTHYUsing a rat pulmonary artery banding model of pulmonary hypertension, we show that chronic right ventricular pressure overload induces leaflet enlargement and region-specific thickness remodeling of the tricuspid valve. Although structural mechanical metrics change under pressure loading, normalization by thickness reveals that geometric remodeling rather than intrinsic material stiffening predominates. These findings highlight leaflet structural (mal)adaptation as a potential contributor to functional tricuspid regurgitation and underscore the importance of considering leaflet geometry in therapeutic strategies.

physiology↗

The Tricuspid Valve is Transcriptionally Active During Prolonged Pressure Overload, Right-Sided Heart Failure, and Valve Regurgitation

BackgroundRight-sided heart failure (RHF), in the presence of tricuspid valve regurgitation (TR), can result from left-sided heart failure (LHF), pulmonary hypertension (PH), or heart malformations. The occurrence of RHF and TR represents a critical indicator of hospitalization rates and all-cause mortality. However, RHF has remained understudied, specifically with respect to the tricuspid valve, with few animal models to investigate the transformative processes and identify novel interventions. MethodsUsing the outbred sheep (Ovis aries) model of pulmonary artery banding (PAB) that induces RHF and TR, we generated three batches of ribosomal reduced RNA sequencing for 354 samples (NCBI SRA PRJNA1182691) containing right ventricle, left ventricle, each tricuspid valve leaflet, each mitral valve leaflet, and the pulmonary artery that represents both male and female sheep. The reads were assembled into a de novo sheep heart transcriptome for differential analysis. ResultsThe de novo sheep heart transcriptome enhanced transcript mapping of reads by 43-45% in the heart valves relative to the known sheep reference transcriptome. The identified transcripts produce validated tissue-specific pathways in ventricles (2,756 isoforms), pulmonary arteries (535 isoforms), and valves (1,215 isoforms), with transcript differences between the mitral and tricuspid valve involved in extracellular and endocrine signaling. The transcriptome also produced robust sex differences encoded by sex chromosomes and autosomes, highlighting epigenetic and sex hormone differences in the heart. Echocardiography and differential expression suggest that 8 weeks after PAB, the right ventricle has extensive morphological changes and known stress-induced lipid processing dysregulation. At 16-weeks post-PAB, tricuspid valve leaflets show the most significant transcriptional changes, with alterations in endocrine and immune pathway genes involved in cellular and extracellular remodeling. Genes within the tricuspid valve with differential expression and known human or mouse heart phenotypes include FLNA, LTBP4, VDR, CR2, PIGQ, CENPF, ACKR3, CR1, KLF2, and HIF3A. ConclusionsThis project highlights the complexity of heart valve tissues and their transcriptional activity in a sheep model of RHF. It suggests potential therapeutic interventions in heart valve remodeling in PAH, RHF, and TR. This work highlights the need for further human and model organism research into the dynamic valve cells and genes. Clinical PerspectiveO_ST_ABSWhat Is New?C_ST_ABS- Improved cardiac and valve specific transcriptome mapping through de novo transcriptome for clinically relevant ovine model. - Tricuspid valves show a sex dependent and active transcriptional response to pulmonary artery banding induced pulmonary hypertension and right sided heart failure. - Transcriptional phenotypes in ovine model mirror known human heart disease phenotypes. - Several transcripts identified with therapeutic potential for treating pressure overload conditions such as pulmonary hypertension. What Are the Clinical Implications?- Tricuspid valve remodeling due to pulmonary hypertension is accompanied by transcriptional alterations, and mechanical alterations alone may not be sufficient to address valve insufficiency. - Valve and ventricle sex specific gene expression changes following pulmonary hypertension indicate a potential role for hormonal influences and a need for personalized treatment strategies. - Improved patient outcomes for right heart failure, including diagnosis, early detection, and improved treatment strategies can be elucidated through the ovine model and supported through expanded interrogation of human tissues.

genomics↗

Tricuspid valve maladaptation in sheep with biventricular heart failure: The posterior and septal leaflets

Tricuspid valve leaflets are dynamic tissues that can respond to altered biomechanical and hemodynamic loads. Each leaflet has unique structural and mechanical properties, leading to differential in vivo strains. We hypothesized that these intrinsic differences drive heterogeneous, disease-induced remodeling between the leaflets. Although we previously reported significant remodeling changes in the anterior leaflet, the responses among the other two leaflets have not been reported. Using a sheep model of biventricular heart failure, we compared the remodeling responses between all tricuspid leaflets. Our results show that the anterior leaflet underwent the most significant remodeling, while the septal and posterior leaflets exhibited similar but less pronounced changes. We found several between-leaflet differences in key structural and mechanical metrics that have been shown to contribute to valvular dysfunction. These findings underscore the need to consider leaflet-specific remodeling to fully understand tricuspid valve dysfunction and to develop targeted therapies for its treatment and more accurate computational models. STATEMENT OF SIGNIFICANCEOur study is significant as it advances our understanding of tricuspid valve remodeling by providing a comprehensive analysis of all three leaflets in a sheep model of biventricular heart failure. Unlike prior works that focused primarily on the anterior leaflet or generalized leaflet changes, we integrated morphological, histological, immunohistochemistry, biaxial mechanical testing, and two-photon microscopy to quantify differences between all three tricuspid valve leaflets (anterior, posterior, and septal) across multiple functional scales. This comprehensive approach highlights the unique remodeling response of each leaflet. Our findings offer critical insights for developing targeted therapeutic strategies and improving computational models of disease progression. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=119 SRC="FIGDIR/small/613284v2_ufig1.gif" ALT="Figure 1"> View larger version (40K): org.highwire.dtl.DTLVardef@1e8efaforg.highwire.dtl.DTLVardef@1cfee04org.highwire.dtl.DTLVardef@136956org.highwire.dtl.DTLVardef@68c488_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering↗