4.8 Article

Mitochondrial-targeting nanoprodrugs to mutually reinforce metabolic inhibition and autophagy for combating resistant cancer

Journal

BIOMATERIALS
Volume 278, Issue -, Pages -

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.biomaterials.2021.121168

Keywords

Nanoprodrug; Polylysine; Lonidamine; Autophagy; Chemodynamic therapy

Funding

  1. National Natural Science Foundation of China [51803152, 22075212, 21925505]
  2. Natural Science Foundation of Shanghai [19ZR1478800]
  3. Shanghai international scientific [21520710100]
  4. National Science Fund for Distinguished Young Scholars

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This study developed a novel strategy to enhance tumor killing efficacy and combat resistant cancer by mutually reinforcing metabolic inhibition and autophagy. The FG/T-Nanoprodrug, assembled with various functional molecules, demonstrated effective mitochondrial targeting and metabolic inhibition in resistant cancer cells. Through the enhanced chemodynamic therapy, the FG/T-Nanoprodrug was able to induce high levels of autophagy and effectively kill resistant cancer cells in both in vitro and in vivo settings.
Abnormal energy metabolism is one of the hallmarks of cancer and closely linked to therapy resistance. However, existing metabolic inhibitors suffer from inefficient cell enrichment and therapeutic effects. In this work, we developed an effective strategy to mutually reinforce the metabolic inhibition and autophagy for enhanced tumor killing efficacy and combating resistant cancer. First, mitochondrial homing moiety triphenylphosphonium and metabolic inhibitor lonidamine were grafted onto polylysine. After self-assembly of this functionalized polylysine, ferrocene and glucose oxidase were immobilized to afford additional chemotherapy functions, and the final product was named as FG/T-Nanoprodrug. Effective mitochondrial targeting and metabolic inhibition were observed in resistant cancer cells. In addition, owing to the inhibited metabolism, less glucose is consumed to allow FG/T-Nanoprodrug to produce excess reactive oxygen species (ROS) by glucose oxidase and ferrocene. The enhanced chemodynamic therapy increases the mitochondrial permeability to promote the release of cytochrome c from mitochondria, ultimately induces high levels of autophagy. The FG/T-Nanoprodrug demonstrated superior mutually reinforcing of metabolic inhibition (up to 3.7-fold compared to free lonidamine) and autophagy (up to 125.3-fold compared to free lonidamine) to effectively kill resistant cancer cell both in vitro and in vivo. Overall, this strategy could pave a new way to efficient treatment of resistant cancer and other metabolically abnormal diseases.

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