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Eskandarian Boroujeni, M.

Publications and source records attributed to Eskandarian Boroujeni, M..

2 recordsLinked to original sources

Maternal opioid use with and without hepatitis C infection disrupts the structure and immune landscape of the maternal-fetal interface

Maternal opioid use disorder (OUD) poses significant risks to maternal and fetal health. Adverse outcomes associated with maternal OUD are believed to be mediated, in part, by changes in placenta structure and function; however, few studies have addressed this question. Here, we utilized a combination of flow cytometry, histology, spatial and single-cell transcriptomics to uncover the impact of OUD on placental tissues. Given that nearly half of subjects with chronic OUD contract hepatitis C (HCV), we further stratified our findings by maternal HCV status. Our results indicate that maternal OUD leads to a higher incidence of vascular malperfusion accompanied by increased levels of inflammatory markers and dysregulated secretion of placental development factors. Furthermore, spatial transcriptomics revealed that maternal OUD disrupts the communication between trophoblasts and immune cells important for placental vascular development. Additionally, CellChat analysis revealed aberrant VEGF and FN1 signaling across trophoblast, endothelial, and myeloid cells. Processes associated with tissue homeostasis and repair were also downregulated across trophoblast and leukocytes. Frequencies and responses to ex-vivo stimulation of decidual macrophages and cytolytic NK cells, critical for tissue remodeling and fetal tolerance, were decreased. Finally, transcriptional analyses of placental leukocytes also indicate shifts towards more regulatory/tissue surveillant phenotypes. Altogether, these results highlight the significant disruptions to placental health by maternal OUD. One Sentence SummaryMaternal opioid use disorder {+/-} hepatitis C coinfection disrupts placental structure, immune function, and cell-cell communication.

immunology↗

Integrative Multi-Omics Analysis of IFNγ-induced Macrophages and Atherosclerotic Plaques Reveals Macrophage-dependent STAT1-Driven Transcription in Atherosclerosis

This study investigates the role of STAT1-mediated IFN{gamma} signaling in atherosclerosis progression through multi-omics integration and analysis of human and mouse models of atherosclerotic lesions. By integrating ATAC-seq, ChIP-seq, and RNA-seq data from IFN{gamma}-treated bone marrow-derived macrophages, we identified 1139 STAT1-dependent integrative genes that show chromatin accessibility, differential epigenetic marks (H3K27ac, H3K4me1, H3K4me3), prominent transcription factor binding patterns (STAT1 and PU.1), and active transcription. These genes were also enriched for lipid metabolism and atherosclerosis-related pathways. We then validated our findings by tracing the expression of these genes in human atherosclerotic lesions and in ApoE-/- and LDLr-/-mouse models, revealing significant correlations with LDL cholesterol and diseased vessel traits. Single-cell RNA-seq of human and mouse atherosclerotic samples showed dynamic changes in macrophage subtypes, with foamy and tissue-resident macrophages displaying increased STAT1 activity. This comprehensive multi-omics approach provides new insights into the transcriptional regulation of atherosclerosis progression mediated by STAT1-PU.1 co-binding and IFN{gamma} signaling. Moreover, our data delineates a STAT1-dependent gene signature, highlighting the potential of these integrative genes as biomarkers and therapeutic targets in atherosclerosis.

molecular biology↗