Issue 36, 2024

A multifunctional nanoplatform combining self-supplied H2O2 production with CO delivery for multimodal anti-tumor therapy

Abstract

Disrupting the reactive oxygen species (ROS) homeostasis in cancer cells offered a therapeutic modality for anti-tumor treatment. However, the therapeutic efficacy of conventional chemodynamic therapy (CDT) was impaired by the insufficient H2O2 concentration in the tumor microenvironment (TME). Herein, we report the preparation of a multifunctional nanoplatform CaO2@PDA–Cu@MnCO with self-supplied H2O2 production and carbon monoxide (CO) delivery in the TME for efficient multimodal therapy. The nanoplatform consists of a calcium peroxide (CaO2) carrier, with which the surface was covered by Cu2+-doped polydopamine layers, and a covalently loaded manganese carbonyl (MnCO) donor. The nanoplatform specifically responded to the acidic TME, thereby releasing Ca2+ and H2O2 that was further decomposed into hydroxyl radicals (˙OH) via the Cu ion catalyzed Fenton-like reaction. Meanwhile, the released CO under 808 nm light irradiation led to mitochondrial dysfunction and increased the accumulation of intracellular ROS. Furthermore, the Ca2+ overloading could result in calcification of the cancer cells. Consequently, CaO2@PDA–Cu@MnCO showed impressive eradication efficacy for 4T1 cancer cells with a low IC50 value, thus offering a promising therapeutic modality for cancer treatment.

Graphical abstract: A multifunctional nanoplatform combining self-supplied H2O2 production with CO delivery for multimodal anti-tumor therapy

Supplementary files

Article information

Article type
Paper
Submitted
02 May 2024
Accepted
15 Aug 2024
First published
16 Aug 2024

New J. Chem., 2024,48, 15956-15964

A multifunctional nanoplatform combining self-supplied H2O2 production with CO delivery for multimodal anti-tumor therapy

M. Chen, C. Wang, H. Zhang, S. Yang and J. Liu, New J. Chem., 2024, 48, 15956 DOI: 10.1039/D4NJ02040E

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