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Sedovy, M. W.

Publications and source records attributed to Sedovy, M. W..

4 recordsLinked to original sources

A connexin 43 targeting peptide prevents blood vessel neointima formation

The gap junction protein connexin 43 (Cx43) is associated with human pathological vascular smooth muscle cell (SMC) proliferation and neointima formation. We previously identified mitogen-activated protein kinase (MAPK) phosphorylation of Cx43 results in binding with the cell cycle protein cyclin E, facilitating neointima formation in mice. However, the specific nature of these interactions and their relevance to human disease have not been elucidated. Using an ex vivo human saphenous vein model of neointima formation, we identified increased MAPK-phosphorylated Cx43 and cyclin E in explant tissues. We used peptide arrays to define a cyclin E-Cx43 binding region and generated CycliCx, a stearate-linked Cx43 phospho-mimetic peptide. In human coronary artery SMC, CycliCx inhibits platelet-derived growth factor-BB (PDGF-{beta})-induced changes in Cx43 trafficking and interactions with cyclin E, and stimulation of proliferation. RNAseq analysis identified CycliCx significantly inhibits PDGF-{beta}-induced proliferative pathways in SMC by limiting PDGF-{beta}-induced early G1/S phase cell cycle progression transcripts. Finally, we show CycliCx limits neointima formation in mice in vivo and in ex vivo human saphenous vein explants. Our data provide strong evidence for selective targeting of Cx43 as a viable therapeutic strategy for preventing neointimal formation in humans.

physiology↗

Injury Induced Connexin 43 Expression Regulates Endothelial Wound Healing

Endothelial cell (EC) injury is a major contributing factor to vascular surgical failure. As such, understanding the mechanisms of endothelial healing is essential to the development of vascular therapeutics and procedures. Gap junctions formed by connexin 43 (Cx43) are implicated in regulating skin wound healing, but their role in endothelial healing is unknown. Secondary analysis of RNAseq data from in vivo injured mouse aortas (GEO: GSE115618), identified significant Cx43 upregulation in EC post-injury. We developed a novel in vivo model of EC injury using mouse carotid artery ligation to test the role of Cx43. We identified that EC immediately adjacent to the wound edge upregulate Cx43 protein expression, predominantly at cell-cell junctions. We show significantly delayed EC healing in a mouse model of inducible EC-specific Cx43 deletion (EC-Cx43 KO) at 24 hr post ligation. Single cell RNAseq analysis of 10,829 cells from 18 hr injured EC-WT and EC-Cx43 KO carotids revealed a Cx43-associated reduction in enrichment of EC pathways associated with migration, proliferation, and ERK/MAPK signaling pathways. Finally, the importance of Cx43 phosphorylation on EC healing was tested in mice with single-point alanine mutations (phospho-null) in known phosphorylation sites that alter Cx43 channel assembly and opening. Mice containing alanine mutations at ERK phosphorylated Cx43 serines (Cx43S255/262/279/282A) reduces healing rates similar to EC-Cx43 KO. These data suggest that EC injury-induced Cx43 upregulation, and subsequent Cx43 gap junction-mediated cell-to-cell communication are required for normal EC migration during wound healing after vascular injury. New and NoteworthyThese findings demonstrate for the first time that mechanical injury to large artery endothelium induces the expression of gap junction protein Cx43. This upregulation improves migratory and proliferative capacity of endothelial cells at the wound edge, facilitating timely wound closure. This phenomenon is dependent on appropriate gap junction function and turnover.

physiology↗

Preserving endothelial integrity in human saphenous veins during preparation for coronary bypass surgery

ObjectiveWhile multiple factors influence coronary artery bypass graft success rates, preserving saphenous vein endothelium during surgery may improve patency. Standard methods of saphenous vein graft preparation in heparinized saline (saline) solutions result in endothelial loss and damage. Here we investigated the impact of preparing saphenous graft vessels in heparinized patient blood (blood) vs saline on cellular health and survival. MethodsSaphenous vein tissues from a total of 23 patients undergoing coronary artery bypass graft surgery were split into 2 treatment groups, 1) standard preparation using saline and 2) preparation using blood. Immediately following surgery, excess tissue was fixed for analysis. Level of endothelial coverage, oxidative stress marker 4-hydroxynonenal (4HNE), and oxidative stress protective marker nuclear factor erythroid 2-related factor 2 (NRF2) expression were evaluated. ResultsIn saline patient veins, histological analysis revealed a broken or absent luminal layer, suggesting a loss of endothelial cell (EC) coverage. Luminal cell coverage was notably preserved in blood-treated samples. Immunofluorescent staining of endothelial markers vascular endothelial cadherin (VE-cadherin) and endothelial nitric oxide (eNOS) identified a significant improvement in endothelial coverage in the blood group compared to saline. Although in both treatment groups EC expressed 4HNE indicating a similar level of oxidative stress, EC stored in blood solutions expressed higher levels of the protective transcription NRF2. ConclusionsOur data indicate that maintaining and preparing saphenous vein tissues in solutions containing heparinized blood helps preserve the endothelium and promotes vein graft health. This has the potential to improve long-term outcomes in patients. Central MessageDuring coronary artery bypass grafting, preparation of saphenous veins with heparinized saline damages the endothelium and increases oxidative stress. Heparinized blood preparation limits this endothelial loss and damage. Perspectives StatementSaphenous vein grafts are prone to failure through neointimal hyperplasia or thrombosis. Endothelial damage and loss are thought to be major contributing factors to graft failure. Here we find that preparation and preservation of saphenous vein grafts with patients own heparinized blood is sufficient to ensure endothelial preservation and protect vessels from oxidative stress compared with heparinized saline. These changes may increase long-term graft patency rates.

physiology↗

A Soluble Platelet-Derived Growth Factor Receptor-β Originates via Pre-mRNA Splicing in the Healthy Brain and is Differentially Regulated during Hypoxia and Aging

ABSTRACT/SUMMARYThe platelet-derived growth factor-BB (PDGF-BB) pathway provides critical regulation of cerebrovascular pericytes, orchestrating their investment and retention within the brain microcirculation. Dysregulated PDGF Receptor-beta (PDGFR{beta}) signaling can lead to pericyte defects that compromise blood-brain barrier (BBB) integrity and cerebral perfusion, impairing neuronal activity and viability, which fuels cognitive and memory deficits. Receptor tyrosine kinases (RTKs) like PDGF-BB and vascular endothelial growth factor-A (VEGF-A) are often modulated by soluble isoforms of cognate receptors that establish signaling activity within a physiological range. Soluble PDGFR{beta} (sPDGFR{beta}) isoforms have been reported to form by enzymatic cleavage from cerebrovascular mural cells, and pericytes in particular, largely under pathological conditions. However, pre-mRNA alternative splicing has not been widely explored as a possible mechanism for generating sPDGFR{beta} variants, and specifically during tissue homeostasis. Here, we found sPDGFR{beta} protein in the murine brain and other tissues under normal, physiological conditions. Utilizing brain samples for follow-on analysis, we identified mRNA sequences corresponding to sPDGFR{beta} isoforms, which facilitated construction of predicted protein structures and related amino acid sequences. Human cell lines yielded comparable sequences and protein model predictions. Retention of ligand binding capacity was confirmed for sPDGFR{beta} by co-immunoprecipitation. Visualizing fluorescently labeled sPDGFR{beta} transcripts revealed a spatial distribution corresponding to murine brain pericytes alongside cerebrovascular endothelium. Soluble PDGFR{beta} protein was detected throughout the brain parenchyma in distinct regions such as along the lateral ventricles, with signals also found more broadly adjacent to cerebral microvessels consistent with pericyte labeling. To better understand how sPDGFR{beta} variants might be regulated, we found elevated transcript and protein levels in the murine brain with age, and acute hypoxia increased sPDGFR{beta} variant transcripts in a cell-based model of intact vessels. Our findings indicate that soluble isoforms of PDGFR{beta} likely arise from pre-mRNA alternative splicing, in addition to enzymatic cleavage mechanisms, and these variants exist under normal physiological conditions. Follow-on studies will be needed to establish potential roles for sPDGFR{beta} in regulating PDGF-BB signaling to maintain pericyte quiescence, BBB integrity, and cerebral perfusion - critical processes underlying neuronal health and function, and in turn memory and cognition.

cell biology↗