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.

Abstract

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.

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