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Proteasome Inhibitor-Loaded Micelles Enhance Antitumor Activity Through Macrophage Reprogramming by NF-κB Inhibition

Hailiang Wu1, Anqi Tao2, John D Martin2

  • 1Innovation Center of NanoMedicine, Kawasaki Institute of Industrial Promotion, 3-25-14, Tonomachi, Kawasaki-ku, Kawasaki 210-0821, Japan.

Insights

Micelle-encapsulated MG132 reprograms tumor-associated macrophages to attack cancer cells. This dual-action therapy enhances antitumor efficacy by combining cancer cell killing with macrophage reprogramming, overcoming limitations of cytotoxic therapies.

Area of Science:

  • Immunology
  • Oncology
  • Nanomedicine

Background:

  • Macrophage reprogramming is a promising cancer therapy, but combination strategies with cytotoxic treatments are lacking.
  • Nuclear factor kappa-light-chain-enhancer of activated B cells (NF-κB) signaling promotes tumor growth and chemoresistance.
  • Developing effective combination therapies for solid tumors remains a challenge.

Purpose of the Study:

  • To investigate if micelle-encapsulated MG132 can reprogram macrophages towards a tumor-attacking phenotype.
  • To evaluate the potential of MG132 to overcome chemoresistance and enhance antitumor efficacy.
  • To assess the safety and effectiveness of micellar MG132 in a breast cancer model.

Main Methods:

  • In vitro studies assessing proteasome inhibition on NF-κB signaling in cancer cells and macrophages.
  • In vivo studies using a syngeneic, orthotopic breast cancer model.
  • Evaluation of micelle-encapsulated MG132 versus free MG132 on macrophage phenotype and tumor growth.

Main Results:

  • Proteasome inhibition by MG132 reduced NF-κB signaling in both cancer cells and macrophages.
  • Free MG132 did not alter macrophage phenotype in tumors, even at maximum tolerated dose.
  • Micellar MG132 formulation achieved simultaneous cancer cell killing and macrophage reprogramming, enhancing antitumor efficacy.

Conclusions:

  • Micelle-encapsulated MG132 is a viable strategy for simultaneous cancer cell killing and macrophage reprogramming.
  • This approach offers a promising combination therapy for solid tumors, enhancing antitumor effects.
  • Nanoparticle formulation of cytotoxic drugs can overcome limitations of free drugs in vivo.

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