Self-assembled MXene-based Schottky-junction upon Transition metal oxide for regulated tumor microenvironment and enhanced CDT/PTT/MRI activated by NIR irradiation

光热治疗 光热效应 生物相容性 材料科学 肿瘤微环境 纳米技术 壳聚糖 MXenes公司 纳米材料 活性氧 化学 癌症研究 生物化学 生物 冶金 肿瘤细胞
作者
Yizhang Wu,Wenfang Xiong,Zhaokun Wang,Yong Wang,Kuoyang Sun,Xueru Song,Zhongyang Lv,Wei Xu,Zhong Wang,Xiaoping Zou,Hu Cai,Xiaoshan Wu
出处
期刊:Chemical Engineering Journal [Elsevier]
卷期号:427: 131925-131925 被引量:32
标识
DOI:10.1016/j.cej.2021.131925
摘要

Transition metal oxide nanomaterials (TMOs) have been adopted to produce reactive oxygen species (ROS) and adjust tumor microenvironment (TME) in cancer therapy. However, mono-modal treatment and the incompatibility of biological enzyme both hampered the therapeutic effect. Herein, we developed a multimodal TMO-based nanoplatform that the ultrathin Ti3C2 nanosheets were attached onto the MnFe2O4 nanoparticles self-assembled by applying chitosan as a chemical crosslinker to construct an interfacial Schottky junction, Ti3C2@Chitosan-MnFe2O4 ([email protected]), achieving improved ROS generation as well as optimized biocompatibility. This heterojunction can controllably catalyze hydrogen peroxide (H2O2) to generate O2 and deplete the overexpressed glutathione (GSH) levels in hypoxic TME, which realizes the chemodynamic therapy (CDT) by cyclized Fenton reaction under NIR excitation. [email protected] also constructs a multimodal treatment nanoplatform by introducing available high-efficiency photothermal agent (PTA), Ti3C2, for phtotheraml therapy (PTT). In addition, it simultaneously integrates the visualization with T1- and T2-weighting magnetic resonance imaging (MRI). The toxicity of [email protected] to normal tissue cells is negligible. This platform could provide new insights into the development of multimoded synergistic nanoplatform for biological applications, especially breaking the shackles of MXenes merely used as a photo-thermal agent, adopting it to bioimaging sensor and drug loading.
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