Back to search

Cordyceps, Caterpillar Fungus · 2026 · Journal Article

Medium relevance

Context-Dependent Modulation of Macrophage Plasticity by Cordycepin Drives Tumor Regression in Melanoma.

Ophiocordyceps sinensis

OncologyImmune supportEnergy & fatigueLiver support
SpeciesCordyceps, Caterpillar Fungus
JournalFrontiers in bioscience (Landmark edition)
Year2026

Key points

  • However, the precise mechanisms governing its effects on macrophage plasticity remain poorly understood
  • This study aimed to isolate CDC from a high-yielding Cordyceps cultivar, validate its systemic anti-tumor efficacy, and elucidate the mechanobiological cues regulating CDC-driven macrophage functions under varying cell-density states
  • KEY RESULTS: Systemic administration of CDC significantly inhibited melanoma growth in vivo, promoting apoptosis, enhancing macrophage infiltration
  • We discovered that CDC regulates macrophage functions via a density-dependent "switch": while CDC induced cytotoxicity in sparse cultures, it significantly augmented M1-like cytokine production in confluent states without compromising viability
  • Furthermore, CDC upregulated migration- and phagocytosis-associated genes, enhancing tumor cell clearance
  • Under high-density conditions-mimicking the dense tumor microenvironment-CDC enhances A2AR-mediated NF-κB activation, boosting macrophage activation, recruitment, and phagocytosis to facilitate tumor regression

Metadata-grounded summary

Citation abstract

BACKGROUND AND AIM: Cordycepin (CDC), an adenosine (ADO) analog from Cordyceps mushrooms, exhibits potent anti-tumor and immunomodulatory activities. However, the precise mechanisms governing its effects on macrophage plasticity remain poorly understood. This study aimed to isolate CDC from a high-yielding Cordyceps cultivar, validate its systemic anti-tumor efficacy, and elucidate the mechanobiological cues regulating CDC-driven macrophage functions under varying cell-density states.

EXPERIMENTAL PROCEDURE: CDC (>98% purity) was isolated and structurally characterized via nuclear magnetic resonance (NMR) and high-resolution electrospray ionization mass spectrometry (HR-ESI-MS). Primary bone marrow-derived macrophages and RAW264.7 cells, cultured under sparse (~30%) or confluent (100%) conditions, were treated with CDC or ADO. We evaluated cell viability, pro-inflammatory cytokine expression, and Nuclear Factor kappa B (NF-κB) p65 signaling, phagocytosis, and migration. The therapeutic potential of CDC-primed macrophages was assessed via in vitro melanoma co-culture and in vivo intratumoral adoptive transfer in B16F10 tumor-bearing mice.

KEY RESULTS: Systemic administration of CDC significantly inhibited melanoma growth in vivo, promoting apoptosis, enhancing macrophage infiltration. We discovered that CDC regulates macrophage functions via a density-dependent "switch": while CDC induced cytotoxicity in sparse cultures, it significantly augmented M1-like cytokine production in confluent states without compromising viability. This density-dependent activation was mediated by the A2A adenosine receptor (A2AR), triggering the Akt-NF-κB p65 signaling axis. Furthermore, CDC upregulated migration- and phagocytosis-associated genes, enhancing tumor cell clearance. Notably, intratumoral injection of CDC-primed macrophages markedly reduced tumor volume and size in vivo.

CONCLUSIONS AND IMPLICATIONS: CDC modulates macrophage activation through a unique mechanobiological switch. Under high-density conditions-mimicking the dense tumor microenvironment-CDC enhances A2AR-mediated NF-κB activation, boosting macrophage activation, recruitment, and phagocytosis to facilitate tumor regression. These findings establish CDC as a context-dependent immunomodulator capable of reprogramming macrophages toward a tumoricidal phenotype.

Citation

Lim J, Piao D, Kang J, Yoon SJ, Lee HJ, Youn I, et al. (2026). Context-Dependent Modulation of Macrophage Plasticity by Cordycepin Drives Tumor Regression in Melanoma. Frontiers in bioscience (Landmark edition) https://doi.org/10.31083/FBL52067 PMID: 42052819

Open citation