Spatiotemporal Targeting Randle Cycle and Immune Checkpoint for Potent Antitumor Therapy

Yuan Gao1,2, Zijian Gong1,2, Yixuan Fu1,2

  • 1Central Laboratory, NMPA Key Laboratory For Dental Materials, National Engineering Research Center of Oral Biomaterials and Digital Medical Devices, Beijing Laboratory of Biomedical Materials, Beijing Key Laboratory of Biomaterials for Oral Disease, National Center For Stomatology, National Clinical Research Center For Oral Diseases, Peking University School and Hospital of Stomatology, Beijing, P. R. China.

Insights

This study introduces a novel nanogel system that depletes tumor glucose and inhibits fatty acid oxidation, enhancing immunotherapy and leading to complete tumor regression in mice.

Area of Science:

  • Oncology
  • Nanotechnology
  • Immunotherapy

Background:

  • Tumor metabolic reprogramming drives cancer progression and treatment resistance.
  • The Randle cycle (glucose-lipid metabolism interplay) complicates single-target metabolic therapies.
  • Developing strategies to overcome metabolic crosstalk is critical for effective cancer treatment.

Purpose of the Study:

  • To develop a dual metabolic inhibition strategy targeting both glucose and lipid metabolism in tumors.
  • To evaluate the efficacy of a glucose oxidase-based nanogel (GOX-NG) combined with a fatty acid oxidation inhibitor (etomoxir, ETX).
  • To assess the combined therapy's impact on tumor immunity and overall survival.

Main Methods:

  • Fabrication of a catechol-functionalized alginate-based glucose oxidase nanogel (GOX-NG).
  • In vivo administration of GOX-NG combined with etomoxir (ETX) and αPD-1 immune checkpoint inhibitor.
  • Assessment of tumor penetration, retention, glucose depletion, ROS generation, and immunogenic cell death.
  • Evaluation of antitumor immune responses and survival rates in tumor-bearing mice.

Main Results:

  • The GOX-NG system demonstrated enhanced tumor penetration, retention, and sustained glucose depletion.
  • Dual metabolic suppression (glucose and FAO inhibition) enhanced ROS production and immunogenic cell death.
  • Combination therapy with GOX-NG, ETX, and αPD-1 led to complete tumor regression in 60% of animals.
  • The triple combination therapy achieved 100% survival in tumor-bearing mice.

Conclusions:

  • A synergistic starvation-oxidation-immunotherapy loop effectively treats metastatic tumors.
  • Intratumorally-retained nanogels show promise for targeting metabolic pathways in cancer therapy.
  • This dual metabolic suppression strategy combined with immunotherapy offers a potent approach for cancer treatment.

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