Deciphering macrophage differentiation and cell death dynamics in heart failure: a single-cell sequencing odyssey

Jin Wei1,2,3,4,5, Yao Sun1,2,3,4,5, Bao-Xi Qu1,2,3,4,5

  • 1Ward General Practice, Tianjin Third Central Hospital, Tianjin, China.

Frontiers in Immunology
|October 23, 2025
PubMed

Insights

Specific macrophage subtypes in heart failure (HF) engage programmed cell death (PCD) pathways like ferroptosis and anoikis, influencing disease progression. This study reveals distinct macrophage states and biomarkers for HF, offering new diagnostic and therapeutic avenues.

Area of Science:

  • Cardiovascular Research
  • Immunology
  • Cell Death Pathways

Background:

  • Heart failure (HF) involves complex immune dysregulation, with macrophage heterogeneity and programmed cell death (PCD) pathways like ferroptosis and anoikis poorly understood.
  • Adverse immune remodeling in HF pathogenesis highlights the need to investigate macrophage lineage dynamics and their engagement with cell death mechanisms.

Purpose of the Study:

  • To delineate cardiac macrophage subpopulations and their engagement with PCD pathways at single-cell resolution in human heart failure.
  • To identify subtype-specific differentiation trajectories and associated cell death programs influencing HF progression.

Main Methods:

  • Single-cell RNA sequencing (scRNA-seq) profiled cardiac tissues from heart failure and non-failing donors.
  • Pseudotime trajectory inference and pathway activity scoring (AUCell, GSVA) were used to analyze cell death signatures.
  • Differential expression analysis, network mapping, and biomarker validation were performed using independent datasets.

Main Results:

  • Four distinct macrophage subtypes were resolved, exhibiting high transcriptional heterogeneity and disease-associated differentiation trajectories.
  • Ferroptosis and anoikis pathways showed subtype-specific enrichment and differential activation in heart failure macrophages.
  • Suppression of ferroptosis and anoikis correlated with late-stage, HF-enriched macrophage states; biomarkers CD163, FPR1, and VSIG4 showed diagnostic potential (AUC > 0.80).

Conclusions:

  • This study provides the first integrated analysis of scRNA-seq, trajectory inference, and PCD pathway scoring in cardiac macrophages in HF.
  • Identified macrophage states and biomarkers offer novel mechanistic insights into HF pathogenesis and potential targets for precision immunology in cardiovascular disease.
Abstract

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