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Biology subjects

Le, K. T. T.

Publications and source records attributed to Le, K. T. T..

3 recordsLinked to original sources

Cytokine-induced memory-like responses in endothelial cells link chronic inflammation to vascular disease risk

Chronic inflammation plays a central role in the progression of both infectious and vascular diseases, yet its impact on endothelial cells (ECs), which form the interface between blood and tissue, remains poorly understood. Given their constant exposure to inflammatory cytokines such as TNF- and IFN-{gamma}, we set out to investigate how cytokine induced inflammation shapes EC function at the molecular level. Using primary human umbilical vein endothelial cells (HUVECs), we modeled repeated cytokine exposure to simulate a chronically inflamed microenvironment. Transcriptomic and epigenetic profiling revealed that ECs respond to this chronic stimulation with durable transcriptional and chromatin changes. These responses included phenotypes resembling immune cell priming, training, and tolerance, which are commonly associated with innate immune memory, a phenomenon whereby innate immune cells mount altered response following previous stimulation. Although we did not observe classical trained immunity pathways, several genes known to mediate immune training, including TLR2, IL1B, and HDAC9, exhibited persistent activation following TNF- re-exposure. IFN-{gamma} stimulation uniquely induced sustained expression and chromatin accessibility at MHC class II loci, suggesting cytokine-specific modes of reprogramming. Functionally, re-stimulated ECs exhibited enhanced monocyte adhesion in a 3D vessel-on-chip model, highlighting the relevance of these molecular changes to vascular inflammation. Moreover, the regulatory regions altered by cytokine exposure were enriched for disease-associated SNPs, particularly those linked to COVID-19, sepsis, and cardiovascular disorders. In summary, these findings reveal that repeated exposure to cytokines as seen in chronic inflammation can induce memory-like responses in ECs and suggest that endothelial reprogramming may contribute to vascular dysfunction.

molecular biology↗

Targeting Langerhans cells using a modular mannosylated nucleic acid-based vaccine platform

The skin is a diverse reservoir of immune cells with strong potential for immunotherapeutic delivery. Langerhans cells (LCs) in the epidermis are antigen-presenting cells, accessible for vaccination using carbohydrate-conjugated therapeutics targeting their endocytic lectin receptor, Langerin. As carbohydrate-lectin binding is highly dependent on valency, scaffolds that enable control over ligand spacing and stoichiometry are instrumental in enhancing receptor binding and selectivity. Here we utilized a self-assembled nucleic acid-based Holliday Junction scaffold, fully modified for nuclease protection and with a well-defined carbohydrate arrangement to optimize drug delivery to LCs. In vitro screening with Langerin-expressing cells revealed that mannosylated Holliday Junctions showed the strongest binding. This was confirmed in human epidermal cell suspensions, demonstrating specificity and valency-driven interactions. Topical administration of mannosylated scaffolds on skin explants enabled effective targeting of epidermal LCs. Finally, in an antigen-presentation assay, in vitro differentiated LCs loaded with mannosylated and peptide-conjugated scaffolds significantly enhanced T cell activation. Overall, our study presents a promising nucleic acid-based platform for precise LC targeting and drug delivery, with broad potential for skin-directed immunotherapies.

molecular biology↗

Integration of Candida albicans-induced single-cell gene expression data and circulatory protein concentrations reveal genetic regulators of inflammation

Both gene expression and protein concentrations are regulated by genetic variants. Exploring the regulation of both eQTLs and pQTLs simultaneously in a context- and cell-type dependent manner may help to unravel mechanistic basis for genetic regulation of pQTLs. Here, we performed meta-analysis of Candida albicans-induced pQTLs from two population-based cohorts and intersected the results with Candida-induced cell-type specific expression association data (eQTL). This revealed systematic differences between the pQTLs and eQTL, with only 35% of common genetic variants modulating both intermediate molecular phenotypes. By taking advantage of the tightly co-regulated pattern of the proteins, we also identified SNPs affecting protein network upon Candida stimulations. Colocalization of pQTLs and eQTLs signals implicated several genomic loci including MMP-1 and AMZ1. Analysis of Candida-induced single cell gene expression data implicated specific cell types that exhibit significant expression QTLs upon stimulation. By highlighting the role of trans-regulatory networks in determining the abundance of proteins in blood, our study serve as a framework to gain insights into the mechanisms of genetic regulation of protein levels in a context-dependent manner.

genomics↗