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Biology subjects

Sluimer, J. C.

Publications and source records attributed to Sluimer, J. C..

4 recordsLinked to original sources

Loss of HIF1α signaling drives oxidative stress and expansion of smooth muscle cells in murine atherosclerosis

BackgroundHypoxia develops within growing atherosclerotic lesions, inducing nuclear translocation of hypoxia-inducible factor-1 (HIF1) and metabolic reprogramming. Its role in plaque macrophages and endothelial cells has been studied, but the hypoxic plaque interior is dominated by smooth muscle cell (SMC)-derived cells, for which the role of hypoxia signaling remains unclear. Here, we investigated how loss of Hif1a in SMC lineage cells impacts plaque progression and cell phenotype in murine atherosclerosis. MethodsAtherosclerosis was induced in mice with inducible SMC-specific deletion of Hif1a (Hif1aSMC-KO) and lineage tracing of SMC-derived plaque cells. Plaque size, necrotic core size, calcification, and SMC-derived cell phenotypes were quantified in aortic root sections and gene expression changes mapped by single-cell RNA sequencing. In parallel, a cultured SMC line with or without siRNA-mediated Hif1a knockdown was exposed to hypoxia for assessments of mitochondrial function and reactive oxygen species production. ResultsHif1aSMC-KO mice developed larger plaques, with expanded necrotic cores and increased calcification, compared with littermate controls. SMC-derived plaque cells were more abundant with a higher fraction of Col2a1+ chondromyocytes, and showed elevated markers of proliferation and apoptosis, whereas macrophage and endothelial cell numbers were unaffected. Single-cell RNA sequencing analysis revealed strong dysregulation of mitochondrial genes, including electron transport chain transcripts, along with upregulation of protein folding, proteasome, and oxidative stress response pathways. In cultured SMCs subjected to hypoxia, Hif1a silencing increased cell counts, aggravated mitochondrial proton leak, and led to the accumulation of depolarized, reactive oxygen species-generating mitochondria. Further analysis of SMC-derived cells in plaques from Hif1aSMC-KO mice confirmed increased oxidative stress by 8OHdG staining. ConclusionsHIF1 maintains mitochondrial function and restrains oxidative stress in SMC-derived plaque cells in murine atherosclerosis. Its chronic loss destabilizes redox homeostasis and promotes maladaptive SMC responses, leading to SMC-driven plaque expansion, necrosis, and calcification.

pathology↗

A CROP-seq screen of histone modifying enzymes reveals histone demethylase Kdm5c regulates inflammatory macrophage activation.

BackgroundMacrophages adopt activation states along a spectrum from pro- to anti-inflammatory, enabling appropriate responses to pathogens and environmental cues. Dysregulated inflammatory macrophage activation contributes to diseases including sepsis, rheumatoid arthritis, cancer, and atherosclerosis. Epigenetic processes such as DNA methylation and histone modification prime macrophages for activation, and several histone modifying enzymes (HMEs) have been implicated in this regulation. ObjectiveTo systematically identify histone modifying enzymes that regulate inflammatory macrophage activation. MethodsWe performed a CRISPR knockout screen with single-cell RNA-seq readout (CROP-seq) targeting 92 macrophage-expressed HMEs in immortalized LPS-activated mouse bone marrow-derived macrophages (BMDMs). The resulting single-cell transcriptomes were analyzed to identify significant perturbations. Kdm5c was selected for experimental validation in mouse BMDMs, and its expression pattern was compared with macrophage subsets from human atherosclerotic plaques using scRNA-seq data. ResultsThe CROP-seq screen identified Prmt6, Carm1, Kat2b, and Kdm5c as top regulators of inflammatory macrophage activation. Validation in a KO cell line revealed loss of Kdm5c suppressed inflammatory tone at baseline but led to an exaggerated transcriptional response to LPS stimulation, indicating a role for Kdm5c in balancing tonic and inducible activation. A weighted gene module derived from Kdm5c-deficient macrophages was enriched in inflammatory macrophages in human atherosclerotic plaques. ConclusionOur findings demonstrate the value of CROP-seq screening to dissect the epigenetic control of macrophage activation. We also identify Kdm5c-mediated histone demethylation as a key mechanism modulating inflammatory macrophage activation.

molecular biology↗

Kynurenine and NAD+ Pathways are Associated with Macrophage Content and Polarization in Carotid Plaques

Background and AimsMetabolism dictates macrophage function and plays a central role in atherosclerotic plaque progression. The kynurenine pathway, which metabolizes the majority of the essential amino acid tryptophan, plays a pivotal role in regulating immune responses and supporting NAD+ synthesis, essential for cellular energy metabolism. Higher circulating kynurenine levels are associated with cardiovascular disease, yet their role in atherosclerotic plaques is unclear. This study aims to investigate the underlying mechanisms driving increased kynurenine concentrations in plaques and to determine whether kynurenine serves as a mere biomarker of low-grade inflammation or reflects specific macrophage-driven metabolic alterations that could position it as a potential therapeutic target. MethodsWe used histological and transcriptomic data from two biobanks: the Athero Express Biobank (AE; n=91) and Maastricht human plaque study (MaasHPS, n= 26). Macrophages were identified through CD68 staining in AE, and M1/M2-like macrophage subtypes were distinguished by iNOS/CD68 and arginase/CD68 expression in MAASHPS. Primary human monocyte-derived cultured macrophages were polarized into M1- and M2-like phenotypes for using IFN-{gamma} and IL-4, respectively. Tryptophan, kynurenine and/or NAD+ concentrations in plaques were quantified usingliquid chromatography and metabolomics analyses. ResultsKynurenine concentrations were significantly higher in plaques with greater macrophage density (p = 0.023). Transcriptomic analysis in AE revealed upregulation of IDO2, AFMID, and KYNU in plaques with increased macrophage infiltration (p < 0.05), but not IDO1 (p = 0.16). In the MAASHPS biobank, higher IDO1, KYNU, and KMO expression correlated negatively with M2 marker positive macrophages (p < 0.001), while HAAO correlated positively (p < 0.01). In vitro, M1-like macrophages showed increased IDO1 and reduced QPRT expression compared to M2-like macrophages. We found that this disruption in kynurenine pathway gene expression led to decreased NAD+ concentrations in M1-like macrophages compared to M2-like macrophages in vitro. ConclusionHigher kynurenine levels in atherosclerotic plaques are increased by the increased presence of M1 macrophages, likely driven by both an increased IDO1 activity and reduced QPRT gene expression. This leads to decreased concentrations of NAD+, potentially determining the phenotype of the macrophages. Future studies should address whether modulation of the kynurenine pathway restores NAD+ metabolism and leads to a decrease in inflammation and an increased stable plaque phenotype.

immunology↗

Colchicine promotes atherosclerotic plaque stability independently of inflammation

Atherosclerosis is a chronic inflammatory disease which is driven in part by the aberrant trans-differentiation of vascular smooth muscle cells (SMCs). No therapeutic drug has been shown to reverse detrimental SMC-derived cell phenotypes into protective phenotypes, a hypothesized enabler of plaque regression and improved patient outcome. Herein, we describe a novel function of colchicine in the beneficial modulation of SMC-derived cell phenotype, independent of its conventional anti-inflammatory effects. Using SMC fate mapping in an advanced atherosclerotic lesion model, colchicine induced plaque regression by converting pathogenic SMC-derived macrophage-like and osteoblast-like cells into protective myofibroblast-like cells which thickened, and thereby stabilized, the fibrous cap. This was dependent on Notch3 signaling in SMC-derived plaque cells. These findings may help explain the success of colchicine in clinical trials relative to other anti-inflammatory drugs. Thus, we demonstrate the potential of regulating SMC phenotype in advanced plaque regression through Notch3 signaling, in addition to the canonical anti-inflammatory actions of drugs to treat atherosclerosis.

cell biology↗