Tumor-Associated Macrophages Drive Gastric Cancer Progression Through Immune Evasion and Therapeutic Resistance
核心洞察
Tumor-associated macrophages (搜索) (TAMs) predominantly adopt an M2-like phenotype in gastric cancer (搜索), promoting tumor progression through angiogenesis, immune suppression, and metastasis facilitation.
Meta-analyses confirm that M2 macrophage infiltration correlates with worse prognosis in gastric cancer (搜索) patients, while M1 dominance is linked to improved clinical outcomes.
Novel therapeutic approaches targeting TAM repolarization show promise, including methionine enkephalin and low-dose paclitaxel, which can shift M2 macrophages toward anti-tumor M1 phenotypes.
Gastric cancer (搜索) remains one of the most lethal malignancies worldwide, ranking fourth in cancer-related mortality. Despite advances in diagnostic and therapeutic strategies, global incidence and mortality rates have shown only marginal improvement. The tumor microenvironment has emerged as a central orchestrator of tumor initiation, progression, and therapeutic response, with tumor-associated macrophages (搜索) (TAMs) playing particularly critical roles in gastric cancer pathobiology.
TAMs Drive Gastric Cancer Through Multiple Mechanisms
Within the gastric cancer (搜索) microenvironment, TAMs predominantly adopt an M2-like polarization state that facilitates tumor progression through diverse mechanisms. In peritoneal fluid samples from patients with metastatic gastric cancer, researchers have documented significantly elevated proportions of M2-skewed TAMs compared to non-metastatic cases. These macrophages exhibit suppressed antigen presentation and cytotoxicity while overexpressing pro-tumorigenic factors including VEGF (搜索), epidermal growth factor, matrix metalloproteinases, and cathepsins.
The phenotypic characteristics of TAMs vary considerably depending on tumor histotype, anatomical compartment, and disease stage, reflecting their plasticity within the evolving tumor ecosystem. Tumor cells actively shape this immune microenvironment by secreting immunomodulatory cytokines such as CCL2, M-CSF, TNF, IL-10, and TGF-β (搜索), thereby amplifying TAM recruitment and M2 polarization through cytokine-mediated feedback loops.
Angiogenesis and Metastatic Facilitation
TAMs serve as potent mediators of vascular remodeling by secreting vascular endothelial growth factors, particularly VEGF (搜索)-A and VEGF-C, which facilitate blood and lymphatic vessel formation. This activity appears regulated through pathways involving NF-κB (搜索) and vasohibin-1. Hypoxic stress within the tumor microenvironment induces TAMs to upregulate hypoxia-responsive transcription factors, including HIF-1 and HIF-2, which activate downstream signaling networks driving oncogenic processes.
Hypoxic zones enhance TAM recruitment and activate associated signaling circuits, resulting in increased VEGF (搜索) secretion and heightened proteolytic activity via matrix metalloproteinases MMP-2 and MMP-9. TAMs have been implicated in facilitating gastric cancer (搜索) cell dissemination via the lymphatic system, thereby accelerating both local invasion and distant metastasis. High-mobility group box 1 (HMGB1 (搜索)), correlated with nodal spread in gastric malignancies, enhances M2-like macrophage polarization by engaging the receptor for advanced glycation end products (RAGE), which augments the invasive capacity of gastric cancer cells.
Immune Evasion Mechanisms
TAMs establish sophisticated immune evasion mechanisms that fundamentally compromise anti-tumor immunity. Notably, TAMs in gastric cancer (搜索) lesions exhibit elevated expression of the immune checkpoint receptor PD-1 (搜索), a feature absent in adjacent normal tissue. These PD-1+ TAMs adopt an M2-like phenotype, directly engaging PD-L1 (搜索)-expressing tumor cells and secreting IL-10, thereby inhibiting CD8+ T cell proliferation and effector function.
Concurrently, TAMs impair dendritic cell maturation by releasing IL-10 and TGF-β (搜索), downregulating MHC-II and co-stimulatory molecules (CD80, CD86), and blunting T cell priming. PD-1 (搜索)+ TAMs also suppress natural killer cell cytotoxicity via TGF-β-mediated repression of perforin and granzyme B. TAMs secrete TGF-β, IL-10, and arginase 1, which collectively inhibit antigen presentation, impair CD8+ T cell function, and promote regulatory T cell expansion.
Exosome-Mediated Communication Networks
Exosome-mediated crosstalk between tumor cells and macrophages reinforces pro-tumoral feedback loops. Gastric cancer (搜索)-derived exosomes shuttle regulatory cargo—such as miRNAs and lncRNAs—to reprogram macrophages toward an M2 phenotype. Exosomal miR-155 and miR-21 suppress SOCS1 and PTEN, respectively, driving immunosuppressive polarization and metastatic capacity.
Reciprocally, TAM-derived exosomes potentiate tumor aggressiveness. M2-exosomes enriched with apolipoprotein E remodel the actin cytoskeleton and enhance gastric cancer (搜索) cell migration via PI3K/AKT signaling. TAM-derived exosomes also contribute to chemotherapy resistance, with M2-TAMs transferring miR-21 via exosomes to gastric cancer cells, downregulating PTEN and activating the PI3K/AKT cascade to inhibit apoptosis and promote cisplatin resistance.
Prognostic Implications and Clinical Significance
Meta-analyses confirm that M2 macrophage infiltration correlates with adverse outcomes in gastric cancer (搜索), particularly in the context of heightened TGF-β (搜索) signaling. In metastatic gastric cancer, increased M2 density, marked by CD204 expression, predicts reduced overall survival and serves as a negative prognostic marker. M2 macrophages are more abundant in poorly differentiated tumors, while signet-ring and mucosal subtypes exhibit lower levels.
Molecular profiling has revealed subtype-specific TAM distributions. CD68+ TAMs are enriched in genomically stable and diffuse-type gastric cancer (搜索), while CD68+CD206+ M1-like TAMs are more common in microsatellite instability and intestinal-type tumors. Single-cell transcriptomics reveals elevated stromal and exhausted cytotoxic T cell populations within tumors relative to adjacent tissue, with TAMs demonstrating substantial functional heterogeneity beyond the M1/M2 dichotomy.
Therapeutic Targeting Strategies
Recent investigations have revealed specific molecules and pharmacologic agents capable of redirecting TAM polarization toward a tumor-inhibitory M1-like phenotype. Methionine enkephalin (MENK), an endogenous opioid pentapeptide, elevates opioid growth factor receptor expression and inhibits PI3K/AKT/mTOR signaling in both TAMs and gastric tumor cells. This pathway inhibition promotes macrophage repolarization from M2 to M1 phenotype, suppressing cancer cell proliferation and enhancing apoptotic responses.
Low-dose paclitaxel administration stimulates the TLR4/NF-κB (搜索) p65 signaling cascade, facilitating phenotypic reprogramming of TAMs in gastric cancer (搜索) tissues and leading to enhanced anti-tumor immunity alongside direct cytotoxic effects. The NF-κB signaling pathway, widely implicated in inflammation-driven malignancies, constitutes a critical node in macrophage-mediated tumor support.
Future Therapeutic Directions
Mounting preclinical and translational studies underscore the therapeutic potential of TAM-targeted interventions, particularly those that inhibit TAM recruitment, suppress M2 polarization, or reprogram existing TAMs toward an anti-tumoral M1-like state. Targeting immune checkpoint-expressing TAM subsets or exosome-mediated immunoregulatory circuits may complement existing immunotherapy regimens.
Future research should prioritize high-resolution dissection of TAM heterogeneity via single-cell RNA sequencing and spatial transcriptomics to reveal distinct functional states and regulatory networks within the tumor microenvironment. Special emphasis should be placed on characterizing and therapeutically targeting immune-suppressive subsets such as PD-1 (搜索)+ and LAYN+ TAMs, which demonstrate strong associations with T cell exhaustion and poor prognosis.
Rationally designed combinatorial regimens that integrate TAM-modulating agents with immune checkpoint inhibitors may synergize to overcome immunotherapy resistance and reinvigorate cytotoxic immune responses. These precision strategies hold promise for reshaping the gastric cancer (搜索) immune landscape and improving durable clinical outcomes.
