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Biology subjects

Lowery, A. M.

Publications and source records attributed to Lowery, A. M..

2 recordsLinked to original sources

Endothelial Cells retain inflammatory memory through chromatin remodeling

Sepsis survivors face a heightened risk of secondary infections and chronic vascular dysfunction despite clinical recovery, yet the underlying mechanisms remain poorly defined. Our study identifies a novel mechanism of endothelial inflammatory memory, wherein transient inflammatory exposure induces durable chromatin remodeling, priming endothelial cells for exaggerated responses to subsequent inflammatory insults. Utilizing a clinically relevant two-hit mouse model, cecal ligation and puncture (CLP) followed by secondary Streptococcus pneumoniae (SP) infection, we reveal persistent transcriptional activation in endothelial cells (ECs), characterized by amplified expression of inflammatory cytokines, adhesion molecules (e.g., ICAM-1), complement factors, and interferon-stimulated genes. Genome-wide ATAC-seq analyses demonstrated stable chromatin accessibility at key inflammatory loci, indicative of epigenetic priming. Mechanistically, we uncovered a critical role for the AP-1 transcription factor JunB in mediating this epigenetic remodeling. JunB knockdown attenuated chromatin accessibility and subsequent transcriptional amplification upon secondary challenge, pinpointing JunB-driven chromatin modifications as central to endothelial reprogramming. Our findings offer mechanistic insights into how transient inflammation creates lasting epigenetic states within the endothelium, highlighting JunB as a potential therapeutic target to mitigate chronic endothelial dysfunction and increased susceptibility to secondary infections post-sepsis.

cell biology↗

MARCH family E3 ubiquitin ligases selectively target and degrade cadherin family proteins

Cadherin family proteins play a central role in epithelial and endothelial cell-cell adhesion. The dynamic regulation of cell adhesion is achieved in part through endocytic membrane trafficking pathways that modulate cadherin cell surface levels. Here, we define the role for various MARCH family ubiquitin ligases in the regulation of cadherin degradation. We find that MARCH2 selectively downregulates VE-cadherin, resulting in loss of adherens junction proteins at cell borders and a loss of endothelial barrier function. Interestingly, N-cadherin is refractory to MARCH ligase expression, demonstrating that different classical cadherin family proteins are differentially regulated by MARCH family ligases. Using chimeric cadherins, we find that the specificity of different MARCH family ligases for different cadherins is conferred by the cadherin transmembrane domain. Further, juxta-membrane lysine residues are required for cadherin degradation by MARCH proteins. These findings expand our understanding of cadherin regulation and highlight a new role for mammalian MARCH family ubiquitin ligases in differentially regulating cadherin turnover.

cell biology↗