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Published on: March 28, 2025
Macrophage immunometabolism in stroke: a view from single-cell and nano technologies
Yajun Zhu1, Zichao Huang1, Xiaoguo Li1
1Department of Neurosurgery, The First Affiliated Hospital of Chongqing Medical University, No.1 Youyi Road, Yuzhong District, Chongqing, 400016, China.
Background:
Stroke induces profound neuroinflammation in which macrophages play a complex dual role, contributing to both injury and repair. The traditional M1/M2 classification is increasingly recognized as oversimplified. Advances in single-cell RNA sequencing (scRNA-seq) have revealed a spectrum of dynamic macrophage subpopulations with distinct functional and metabolic states, fundamentally reshaping our understanding of post-stroke immunity.
Main Body:
This review synthesizes recent insights into macrophage heterogeneity from a single-cell perspective, highlighting novel subsets such as an LCP1⁺ population defined by coupled glycolipid metabolism. We discuss how metabolic reprogramming, including glycolysis, oxidative phosphorylation, cholesterol metabolism, hypoxia‑driven gradients, and mitochondrial dynamics, critically underpins macrophage polarization. Glycolysis fuels pro-inflammatory (M1-like) responses, whereas oxidative phosphorylation and fatty acid oxidation support anti-inflammatory and reparative (M2-like) functions. We further explore innovative nano‑therapeutic strategies, including engineered liposomes, exosomes, and responsive polymeric nanoparticles, that enable spatiotemporally precise modulation of macrophage activity. Based on these advances, we propose an integrative framework that directly links scRNA‑seq‑defined macrophage subsets to their metabolic pathways, druggable targets, and tailored nano‑interventions. We also critically examine clinical translation barriers and prioritize actionable targets (e.g., CCR2, PPARγ, Nrf2) for future stroke therapy.
Conclusions:
The convergence of single‑cell genomics, immunometabolism, and nanotechnology offers a transformative path toward precision immunomodulation in stroke. Moving beyond the static M1/M2 dichotomy to target macrophage subpopulations and their metabolic drivers guided by an integrated framework holds significant promise for developing more effective therapies.
Insights
Single-cell sequencing reveals diverse macrophage roles in stroke. Targeting specific macrophage metabolic pathways with nanotherapeutics offers a promising approach for stroke recovery, moving beyond the M1/M2 classification.
Area of Science:
- Neuroimmunology
- Stroke Pathophysiology
- Macrophage Biology
Background:
- Macrophages exhibit dual roles in stroke-induced neuroinflammation, contributing to both damage and healing.
- The traditional M1/M2 macrophage classification is an oversimplification of their complex functions.
- Single-cell RNA sequencing (scRNA-seq) has uncovered a dynamic spectrum of macrophage subpopulations with unique functional and metabolic profiles.
Purpose of the Study:
- To review recent advances in understanding macrophage heterogeneity post-stroke from a single-cell perspective.
- To explore the critical role of metabolic reprogramming in macrophage polarization.
- To discuss novel nanotherapeutic strategies for precise modulation of macrophage activity in stroke.
Main Methods:
- Synthesis of recent literature on macrophage heterogeneity using scRNA-seq data.
- Analysis of metabolic pathways (glycolysis, oxidative phosphorylation, etc.) influencing macrophage polarization.
- Review of innovative nanotherapeutic approaches (liposomes, exosomes, nanoparticles) for macrophage targeting.
Main Results:
- Identification of novel macrophage subsets, e.g., LCP1⁺ population linked to glycolipid metabolism.
- Metabolic reprogramming critically dictates macrophage polarization: glycolysis for pro-inflammatory, oxidative phosphorylation for anti-inflammatory functions.
- An integrative framework linking scRNA-seq subsets, metabolic pathways, druggable targets, and nanotherapies.
Conclusions:
- Single-cell genomics, immunometabolism, and nanotechnology enable precision immunomodulation in stroke.
- Targeting specific macrophage subpopulations and their metabolic drivers offers a more effective therapeutic strategy than the M1/M2 dichotomy.
- An integrated framework is crucial for developing advanced stroke therapies.

