快速访问

查看PDF

文章信息

参考文献

[1]LIN J, SONG T, LIU Z, et al. Effects of biodegradable biomedical porous MnO2 nanoparticles on blood components and functions[J]. Colloids and Surfaces B: Biointerfaces, 2022, 217: 112667.
[2]CHEN G, YAN S, OUYANG C, et al. A new hydrogel to promote healing of bacteria infected wounds: Enzyme-like catalytic activity based on MnO2 nanocrytal[J]. Chemical Engineering Journal, 2023, 470: 143986.
[3]ZHOU Z H, LIANG S Y, ZHAO T C, et al. Overcoming chemotherapy resistance using pH-sensitive hollow MnO2 nanoshells that target the hypoxic tumor microenvironment of metastasized oral squamous cell carcinoma[J]. Journal of Nanobiotechnology, 2021, 19(1): 157.
[4]CHEN W, HU F, GAO Q, et al. Tumor acidification and GSH depletion by bimetallic composite nanoparticles for enhanced chemodynamic therapy of TNBC[J]. Journal of Nanobiotechnology, 2024, 22(1): 98.
[5]LIANG K, SUN H, YANG Z, et al. Breaking the redox homeostasis: an albumin-based multifunctional nanoagent for GSH depletion-assisted chemo-/chemodynamic combination therapy[J]. Advanced Functional Materials, 2021, 31(22): 2100355.
[6]ZHU W, DONG Z, FU T, et al. Modulation of hypoxia in solid tumor microenvironment with MnO2 nanoparticles to enhance photodynamic therapy[J]. Advanced Functional Materials, 2016, 26(30): 5490-5498.
[7]FAN Y, SHI J, ZHANG R, et al. Tumor microenvironment-activated and near-infrared light-driven free radicals amplifier for tetra-modal cancer imaging and synergistic treatment[J]. Journal of Colloid and Interface Science, 2025, 689: 137208.
[8]ZHU X, WANG M, WANG H, et al. Multifunctional hollow MnO2@porphyrin@bromelain nanoplatform for enhanced photodynamic therapy[J]. Small, 2022, 18(52): 2204951.
[9]ZHANG M, LIU X, LUO Q, et al. Tumor environment responsive degradable CuS@mSiO2@MnO2/DOX for MRI guided synergistic chemo-photothermal therapy and chemodynamic therapy[J]. Chemical Engineering Journal, 2020, 389: 124450.
[10]JIN Z, WANG Y, HAN M, et al. Tumor microenvironment-responsive size-changeable and biodegradable HA-CuS/MnO2 nanosheets for MR imaging and synergistic chemodynamic therapy/phototherapy[J]. Colloids and Surfaces B: Biointerfaces, 2024, 238: 113921.
[11]JIANG R, HANG L, LI W, et al. Tri-stimulus-responsive hollow mesoporous MnO2 nanocarriers for magnetic-resonance-imaging-guided synergistic starvation/photodynamic therapy of breast cancer[J]. ACS Applied Nano Materials, 2024, 7(1): 1450-1461.
[12]YIN Z, JI Q, WU D, et al. H2O2-responsive gold nanoclusters @ mesoporous silica @ manganese dioxide nanozyme for “off/on” modulation and enhancement of magnetic resonance imaging and photodynamic therapy[J]. ACS Applied Materials & Interfaces, 2021, 13(13): 14928-14937.
[13]LIAO Y, LIANG Y, HUANG Y, et al. Heptamethine cyanines in bioorthogonal chemistry[J]. Chinese Chemical Letters, 2024, 35(2): 109092.
[14]TANG X, YANG X, WANG Y, et al. Lysosomal-targeted near-infrared phototherapy agent with type-I photodynamic activity for high-performance synergistic therapy under hypoxia[J]. Surfaces and Interfaces, 2025, 62: 106075.
[15]HUANG F, LI Y, LIU J, et al. Intraperitoneal injection of cyanine-based nanomicelles for enhanced near-infrared fluorescence imaging and surgical navigation in abdominal tumors[J]. ACS Applied Bio Materials, 2021, 4(7): 5695-5706.
[16]OUYANG F, ZHAO L, SHUAI Q. Photothermally driven degradable nanomissile for single-wavelength phototherapy and hypoxia-activated chemotherapy[J]. Inorganic Chemistry Communications, 2023, 157: 111310.
[17]WANG Y, XU S, SHI L, et al. Cancer-cell-activated in situ synthesis of mitochondria-targeting AIE photosensitizer for precise photodynamic therapy[J]. Angewandte Chemie International Edition, 2021, 60(27): 14945-14953.
[18]KONG H, TANG Y, HAO X, et al. Self-assembly of H2S-generating photosensitizer for gas-assisted synergistic photothermal therapy[J]. Small, 2025, 21(13): 2411242.
[19]HOU Y, LI J, JIANG G, et al. Synergistic inter- and intramolecular aggregation of dimeric cyanine dyes affords highly efficient in vivo self-delivery and photothermal therapy[J]. Advanced Functional Materials, 2024, 34(32): 2316452.
[20]ZHANG X, LIANG X, MA X, et al. Highly stable near-infrared dye conjugated cerasomes for fluorescence imaging-guided synergistic chemo-photothermal therapy of colorectal cancer[J]. Biomaterials Science, 2019, 7(7): 2873-2888.

版权与开放获取声明

作为一本开放获取的学术期刊,所有文章均遵循 Creative Commons Attribution 4.0 International License (CC BY 4.0) 协议发布,允许用户在署名原作者的前提下自由共享与再利用内容。所有文章均可免费供读者和机构阅读、下载、引用与传播,EWA Publishing 不会通过期刊的出版发行向读者或机构收取任何费用。