Multifunctional Oxygen-Generating Nanoflowers for Enhanced Tumor Therapy

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Date

2023

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Volume Title

Publisher

Amer Chemical Soc

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Green Open Access

No

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Top 10%
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Top 10%

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Abstract

Sonodynamic therapy (SDT) and chemotherapy have received great attention as effective methods for tumor treatment. However, the inherent hypoxia of the tumor greatly hinders its therapeutic efficacy. In this work, a tumor microenvironment-responsive biodegradable nanoplatform SiO2-MnO2-PEG-Ce6&DOX (designated as SMPC&D) is fabricated by encapsulating manganese oxide (MnO2) into silica nanoparticles and anchoring poly(ethylene glycol) (PEG) onto the surface for tumor hypoxia relief and delivery, then loaded with sonosensitizer Chlorin e6 (Ce6) and chemotherapeutic drug doxorubicin (DOX) for hypoxic tumor treatment. We evaluated the physicochemical properties of SMPC&D nanoparticles and the tumor therapeutic effects of chemotherapy and SDT under ultrasound stimulation in vitro and in vivo. After endocytosis by tumor cells, highly expressed glutathione (GSH) triggers biodegradation of the nanoplatform and MnO2 catalyzes hydrogen peroxide (H2O2) to generate oxygen (O-2), thereby alleviating tumor hypoxia. Depleting GSH and self-supplying O-2 effectively improve the SDT efficiency both in vitro and in vivo. Ultrasonic stimulation promoted the release and cellular uptake of chemotherapy drugs. In addition, the relieved hypoxia reduced the efflux of chemotherapy drugs by downregulating the expression of the P-gp protein, which jointly improved the effect of chemotherapy. This study demonstrates that the degradable SMPC&D as a therapeutic agent can achieve efficient chemotherapy and SDT synergistic therapy for hypoxic tumors.

Description

Ramalingam, Murugan/0000-0001-6498-9792

Keywords

SiO2-MnO2 nanoflowers, sonodynamic therapy, chemotherapy, oxygen-generatingsystem, hypoxic tumors, Oxygen, Manganese Compounds, Doxorubicin, Humans, Oxides, Hydrogen Peroxide, Silicon Dioxide, Hypoxia, Glutathione

Fields of Science

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WoS Q

Q2

Scopus Q

Q2
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OpenCitations Citation Count
7

Source

ACS Applied Bio Materials

Volume

6

Issue

11

Start Page

4998

End Page

5008

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Scopus : 7

PubMed : 2

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Mendeley Readers : 5

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7

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7

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3

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