AI Article Synopsis

  • Researchers developed a silicon-based nanomotor (Si-motor) loaded with manganese oxide (MnO) and calcium oxide (CaO) to improve cancer treatment by aiding drug delivery in tumors.
  • The Si-motor works through a reaction in the acidic environment of tumors, generating oxygen and reactive species that enhance its movement and ability to penetrate deeper into tumors.
  • This innovative approach amplifies oxidative stress in cancer cells, combining multiple mechanisms to induce higher rates of tumor cell death and offering a promising method for effective cancer therapy.

Article Abstract

Developing multifunctional, stimuli-responsive nanomedicine is intriguing because it has the potential to effectively treat cancer. Yet, poor tumor penetration of nanodrugs results in limited antitumor efficacy. Herein, an oxygen-driven silicon-based nanomotor (Si-motor) loaded with MnO and CaO nanoparticles is developed, which can move in tumor microenvironment (TME) by the cascade reaction of CaO and MnO. Under acidic TME, CaO reacts with acid to release Ca to induce mitochondrial damage and simultaneously produces O and HO, when the loaded MnO exerts Fenton-like activity to produce ·OH and O based on the produced HO. The generated O drives Si-motor forward, thus endowing active delivery capability of the formed motors in TME. Meanwhile, MnO with glutathione (GSH) depletion ability further prevents reactive oxygen species (ROS) from being destroyed. Such TME actuated Si-motor with enhanced cellular uptake and deep penetration provides amplification of synergistic oxidative stresscaused by intracellular Ca overloading, GSH depletion induced by Mn, and Mn mediated chemodynamic treatment (CDT), leading to excellent tumor cell death. The created nanomotor may offer an effective platform for active synergistic cancer treatment.

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Source
http://dx.doi.org/10.1002/smll.202404402DOI Listing

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