4.8 Article

Self-sufficient copper peroxide loaded pKa-tunable nanoparticles for lysosome-mediated chemodynamic therapy

Journal

NANO TODAY
Volume 42, Issue -, Pages -

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.nantod.2021.101337

Keywords

Chemodynamic therapy; Fenton reaction; Reactive oxygen species (ROS); Nanoparticles; Cancer

Funding

  1. National Key Research and Development Program of China [2017YFC1309100, 2017YFA0205200]
  2. National Natural Science Foundation of China [32171320, 82102213, 81671753, 91959124, 21804104, 32071406]
  3. Xidian University Startup Fund [10251210018]
  4. Xi'an Association for Science and Technology Young Talent Support Project [91803210003]
  5. Fundamental Research Funds for the Central Universities [JC2112]
  6. Youth Innovation Team of Shaanxi Universities
  7. Natural Science Foundation of Shaanxi Province of China [2020PT-020]
  8. National University of Singapore Startup Fund [NUHSRO/2020/133/Startup/08]
  9. NUS School of Medicine Nanomedicine Translational Research Programme [NUHSRO/2021/034/TRP/09/Nanomedicine]

Ask authors/readers for more resources

This study prepared a series of nanoparticles with tunable acid dissociation constant, successfully enhancing the efficacy of CDT in cancer treatment by converting H2O2 into highly toxic hydroxyl radical to kill tumor cells and avoiding clearance by cytoplasmic antioxidants.
Chemodynamic therapy (CDT) has recently gained much attention for Fenton chemistry-mediated cancer treatment, but the anti-tumor efficacy of CDT suffers from insufficient amount of endogenous H2O2 and inefficient decomposition of metal oxides to catalytic ions. Although tremendous progress has been made to increase the amount of H2O2 in the tumor region, the antitumor activity of CDT remains limited due to the suboptimal ionization to release enough amounts of catalytic ions for converting endogenous H2O2 to reactive oxygen species (e.g. highly toxic hydroxyl radical center dot OH). Here, a series of nanoparticles with tunable acid dissociation constant (pKa) values from 5.2 to 6.2 were prepared to load H2O2 self-supplying copper peroxide, which can be used to trap copper peroxide in acidic lysosome to produce ample catalytic ions that convert self-supplied H2O2 into center dot OH by a robust Fenton reaction. The highly reactive center dot OH effectively permeate the lysosomal membrane through lipid peroxidation and thus kill tumor cells in a lysosome-mediated manner. Most importantly, the Fenton reaction is processed inside the lysosomal compartment, which avoids the cytoplasmic antioxidants such as glutathione (GSH) to scavenge center dot OH. Overall, this work provides a new strategy to enhance CDT efficacy. (C) 2021 Elsevier Ltd. All rights reserved.

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