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Macrophage-tregs crosstalk: the "hub" of the immune network in MASLD
Huihui Zhao1, Weili Wang2, Pengchao Zhu3
1College of Traditional Chinese Medicine, Hubei University of Chinese Medicine, Wuhan, China.
Abstract:
Metabolic dysfunction-associated steatotic liver disease (MASLD) is a globally prevalent metabolic disorder with a high average worldwide prevalence. It occurs more frequently in men than in women, and its incidence increases with age. MASLD can progressively advance to liver fibrosis, cirrhosis, and even hepatocellular carcinoma, while also elevating the risk of cardiovascular, renal, and other systemic diseases. Its pathological progression is closely associated with dysregulation of the hepatic immune microenvironment, in which aberrant crosstalk between Macrophages (Mø) and regulatory T cells (Tregs) serves as a central driving mechanism. Under physiological conditions, liver-resident Macrophages (Kupffer cells, KCs) and Tregs maintain immune homeostasis through a "complementary origin-spatial co-localization-molecular crosstalk" mechanism. In MASLD, KCs numbers decline while monocyte-derived Macrophages (MDMs) are abnormally recruited, giving rise to Macrophages with distinct phenotypes. Tregs influence the classical phenotypic differentiation of Macrophages. However, dynamic alterations in Treg abundance exhibit a "double-edged sword" effect. The disrupted crosstalk between KCs and Tregs involves dysregulated chemokine networks [e.g., c-x-c motif chemokine ligand 9 (CXCL9), c-c motif chemokine ligand 2 (CCL2)], cytokine interactions [e.g., interleukin-1β (IL-1β), transforming growth factor- Beta (TGF-β)], and signaling pathways such as beta-catenin (β-catenin) and notch homolog 1 (Notch1). Collectively, these alterations drive disease progression from steatosis to hepatitis and fibrosis. This review systematically summarizes the physiological mechanisms underlying Macrophages -Tregs crosstalk, its pathological dysregulation in MASLD, and the associated molecular networks, while proposing targeted therapeutic strategies based on disease stage.
Insights
Metabolic dysfunction-associated steatotic liver disease (MASLD) progression involves immune cell imbalance. Aberrant crosstalk between Macrophages and regulatory T cells drives liver damage, offering therapeutic targets.
Area of Science:
- Immunology
- Hepatology
- Metabolic Disorders
Background:
- Metabolic dysfunction-associated steatotic liver disease (MASLD) is a prevalent global health issue, increasing with age and affecting men more than women.
- MASLD can lead to severe liver conditions like fibrosis, cirrhosis, and hepatocellular carcinoma, alongside systemic diseases.
- Hepatic immune microenvironment dysregulation, particularly Macrophage-Treg crosstalk, is a key driver of MASLD progression.
Purpose of the Study:
- To systematically review the physiological mechanisms of Macrophage-Treg crosstalk in the liver.
- To elucidate the pathological dysregulation of this crosstalk in MASLD.
- To identify molecular networks and propose stage-based therapeutic strategies for MASLD.
Main Methods:
- Review of existing literature on Macrophage-Treg interactions in liver physiology and MASLD.
- Analysis of molecular mechanisms including chemokine networks (CXCL9, CCL2), cytokine interactions (IL-1β, TGF-β), and signaling pathways (β-catenin, Notch1).
- Synthesis of information to connect immune crosstalk to disease progression and therapeutic potential.
Main Results:
- Physiologically, liver-resident Macrophages (Kupffer cells) and Tregs maintain immune homeostasis via coordinated mechanisms.
- In MASLD, Macrophage populations shift (decreased KCs, increased monocyte-derived Macrophages), and Tregs show dynamic, context-dependent effects.
- Disrupted crosstalk involves dysregulated CXCL9, CCL2, IL-1β, TGF-β, β-catenin, and Notch1 signaling, promoting steatosis to fibrosis progression.
Conclusions:
- The intricate crosstalk between Macrophages and Tregs is fundamentally altered in MASLD, driving pathology.
- Understanding these molecular disruptions provides a basis for developing targeted MASLD therapies.
- Therapeutic strategies should consider the specific stage of MASLD and the complex immune cell interactions.

