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February 16, 2026Cancer Cell7 citationsOpen Access

Tumor-immune-neural circuit disrupts energy homeostasis in cancer cachexia

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XSXiuhui ShiAAAlex X. ArreolaZZZhijun Zhou

Key Points

  • This research aims to understand the mechanisms behind cancer cachexia and identify potential therapeutic targets.
  • Utilized genetically engineered mouse models to study cancer cachexia.
  • Performed single-cell RNA sequencing to identify cell-specific sources of GDF15.
  • Administered GDF15-neutralizing antibodies and anti-CSF1R antibodies to assess treatment effects on cachexia.
  • Loss of GDF15 protects against symptoms of cachexia such as appetite loss and muscle wasting.
  • Macrophages are identified as a significant source of GDF15, induced by tumor-derived CSF1.
  • Interventions targeting the identified circuit significantly reduce cachexia and anorexia.

Abstract

Cancer-induced cachexia and anorexia are debilitating complications across many cancers, yet effective treatments remain limited due to a poor understanding of the underlying mechanisms. Here, we identify an uncharacterized tumor-immune-neural circuit driving these syndromes, centered on growth and differentiation factor 15 (GDF15). Using genetically engineered mouse models, we find that loss of GDF15 protects against appetite loss, muscle wasting, and fat loss in pancreatic, lung, and skin cancers. Single-cell RNA sequencing reveals macrophages as a major source of GDF15, induced by tumor-derived colony-stimulating factor 1 (CSF1). GDF15 acts via the central nervous system to enhance β-adrenergic signaling in the tumor microenvironment, thereby amplifying cachexia. The disruption of this feedforward loop with GDF15-neutralizing antibody, anti-CSF1R antibody, or Rearranged during Transfection (RET) inhibitor markedly reduces both cachexia and anorexia. These findings reveal a non-cell-autonomous mechanism linking tumor signals, macrophage-derived GDF15, and neural pathways, highlighting the tumor-immune-neural triad as a promising therapeutic target.

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Cite This Study

Shi et al. (2026) studied this question.

synapsesocial.com/papers/6992b3319b75e639e9b081d6https://doi.org/10.1016/j.ccell.2026.01.014
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