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February 16, 2026European Heart Journal12 citationsOpen Access

Spatial transcriptomics reveals a key role of fibroblast-like vascular smooth muscle cells in human atherosclerotic cell crosstalk and stability

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AHAnna HultgårdhMPMengyu PanPSPratibha Singh

Key Result

A fibroblast-like vascular smooth muscle cell phenotype was linked to plaque stability, higher in asymptomatic patients, and predicted lower risk of future atherosclerotic events.

Key Points

  • The study aims to uncover the spatial interactions of cell types within human atherosclerotic plaques and identify potential therapeutic targets.
  • Utilized spatial transcriptomics and single-cell transcriptomics to analyze human carotid plaques.
  • Explored intercellular communication patterns and cell phenotypes in plaque microenvironments.
  • Conducted gene enrichment analyses related to atherosclerotic diseases.
  • Validated key findings in Apoe−/− mice and in cell cultures.
  • Identified a fibroblast-like VSMC phenotype crucial for plaque stability and intercellular signaling.
  • Higher proportions of fibroblast-like VSMCs correlated with stable plaques in asymptomatic individuals.
  • Specific genes from this VSMC phenotype were linked to coronary artery disease and myocardial infarction.
  • In vitro validated compounds could induce expression of important marker genes.

Structured PICO

P
Population
13 human carotid plaques (spatial transcriptomics), 51,981 cells (single-cell transcriptomics), 78 plaque bulk RNA-seq data, and Apoe-/- mice
I
Intervention
Spatial transcriptomics, single-cell transcriptomics, deconvolution, histology, survival analyses, and in vitro/in vivo validation
O
Outcome
Intercellular communication patterns and cell phenotypes contributing to plaque stabilitysurrogate

Fibroblast-like vascular smooth muscle cells play a pivotal role in orchestrating intraplaque cell signaling and contributing to plaque stability, presenting a potential therapeutic target.

Abstract

Abstract Background and Aims Atherosclerotic plaques are the leading cause of cardiovascular events. Single-cell approaches have identified diverse human plaque cell phenotypes but their spatial distribution and interactions remain unclear. Here, intercellular communication patterns in human plaque microenvironments were mapped to reveal novel targets to prevent atherosclerotic events. Methods Spatial transcriptomics (Visium, 10x) from 13 carotid plaques, and single-cell transcriptomics (cells = 51 981) were used to analyse cell phenotypes, cell trajectories, and intercellular communications. Cells contributing to plaque stability were explored using deconvolution of plaque bulk RNA-seq data (n = 78), histology, and survival analyses. Key cells and pathways were validated in apolipoprotein E (Apoe)−/− mice and in vitro. Genome-wide association study enrichment analyses were conducted using summary statistics of atherosclerotic diseases. LINCS L1000 data were used to explore drug repurposing. Results A fibroblast-like vascular smooth muscle cell (VSMC) phenotype associated with extracellular matrix formation pathways (validated in Apoe−/− mice) emerged as a key regulator of intra-plaque ligand-receptor signalling, in particular in the cap region. A higher proportion of fibroblast-like VSMCs was found in asymptomatics, associated with stable plaque features and predicted a lower risk of future events. Genes specific to this VSMC phenotype were enriched in coronary artery disease and myocardial infarction. Finally, compounds, which could induce key marker genes were identified and validated in vitro. Conclusions This study provides the first comprehensive spatial transcriptomics map of cell communication in human plaque microenvironments. A pivotal role of a fibroblast-like VSMC, orchestrating intraplaque cell signalling and contributing to plaque stability, was identified. Targeting these cells might present promising novel avenues for therapies.

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Cite This Study

Hultgårdh et al. (2025) studied this question. A fibroblast-like vascular smooth muscle cell phenotype was linked to plaque stability, higher in asymptomatic patients, and predicted lower risk of future atherosclerotic events.

synapsesocial.com/papers/6992b45f9b75e639e9b093d5https://doi.org/10.1093/eurheartj/ehaf1091
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