Synergistic assembly of gold and copper-iron oxide nanocatalysts to promote the simultaneous depletion of glucose and glutathione
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J. L. Hueso | S. Irusta | P. Martín-Duque | G. Martínez | J. Bonet-Aleta | J. Santamaría | M. Encinas-Gimenez | L. Sanchez-Uriel
[1] J. L. Hueso,et al. Unveiling the interplay between homogeneous and heterogeneous catalytic mechanisms in copper–iron nanoparticles working under chemically relevant tumour conditions , 2022, Chemical science.
[2] J. L. Hueso,et al. Glutathione-Triggered catalytic response of Copper-Iron mixed oxide Nanoparticles. Leveraging tumor microenvironment conditions for chemodynamic therapy. , 2022, Journal of colloid and interface science.
[3] J. L. Hueso,et al. Gold-Platinum Nanoparticles with Core-Shell Configuration as Efficient Oxidase-like Nanosensors for Glutathione Detection , 2022, Nanomaterials.
[4] Yujie Dai,et al. Glutathione-Mediated Nanomedicines for Cancer Diagnosis and Therapy , 2021 .
[5] W. Bu,et al. Biomedicine Meets Fenton Chemistry. , 2021, Chemical reviews.
[6] Zhuang Liu,et al. Recent progress of chemodynamic therapy-induced combination cancer therapy , 2020 .
[7] Zichao Wang,et al. Targeted self-activating Au-Fe3O4 composite nanocatalyst for enhanced precise hepatocellular carcinoma therapy via dual nanozyme-catalyzed cascade reactions , 2020 .
[8] Chengtie Wu,et al. Nanoplatform-based cascade engineering for cancer therapy. , 2020, Chemical Society reviews.
[9] J. L. Hueso,et al. Gold-Based Nanoparticles on Amino-Functionalized Mesoporous Silica Supports as Nanozymes for Glucose Oxidation , 2020, Catalysts.
[10] Xinli Liu,et al. Gold nanoparticles doped metal-organic frameworks as near-infrared light-enhanced cascade nanozyme against hypoxic tumors , 2020, Nano Research.
[11] R. Deberardinis,et al. We need to talk about the Warburg effect , 2020, Nature Metabolism.
[12] Xiaodong Zhuang,et al. Boosting Oxygen Reduction of Single Iron Active Sites via Geometric and Electronic Engineering: Nitrogen and Phosphorus Dual-Coordination. , 2020, Journal of the American Chemical Society.
[13] Kıvanç Birsoy,et al. Targeting extracellular nutrient dependencies of cancer cells , 2019, Molecular metabolism.
[14] Yu Chen,et al. Nanocatalytic Medicine , 2019, Advanced materials.
[15] Heliang Yao,et al. Nanocatalytic Tumor Therapy by Biomimetic Dual Inorganic Nanozyme‐Catalyzed Cascade Reaction , 2018, Advanced science.
[16] Qiyang He,et al. Nrf2 mediates the resistance of human A549 and HepG2 cancer cells to boningmycin, a new antitumor antibiotic, in vitro through regulation of glutathione levels , 2018, Acta Pharmacologica Sinica.
[17] Han Lin,et al. Nanoparticle-triggered in situ catalytic chemical reactions for tumour-specific therapy. , 2018, Chemical Society reviews.
[18] I. Venditti,et al. Comparison between silver and gold nanoparticles stabilized with negatively charged hydrophilic thiols: SR-XPS and SERS as probes for structural differences and similarities , 2017 .
[19] M. Biesinger. Advanced analysis of copper X‐ray photoelectron spectra , 2017 .
[20] Yucheng Huang,et al. Three-in-One: Sensing, Self-Assembly, and Cascade Catalysis of Cyclodextrin Modified Gold Nanoparticles. , 2016, Journal of the American Chemical Society.
[21] A. C. Jamison,et al. Preparation of THPC-generated silver, platinum, and palladium nanoparticles and their use in the synthesis of Ag, Pt, Pd, and Pt/Ag nanoshells , 2016 .
[22] Xingfa Gao,et al. Mechanisms of Oxidase and Superoxide Dismutation-like Activities of Gold, Silver, Platinum, and Palladium, and Their Alloys: A General Way to the Activation of Molecular Oxygen. , 2015, Journal of the American Chemical Society.
[23] J. Santamaría,et al. Electrospun Au/CeO2 nanofibers: A highly accessible low-pressure drop catalyst for preferential CO oxidation , 2015 .
[24] M. Biesinger,et al. Versatile strained alkyne modified water-soluble AuNPs for interfacial strain promoted azide-alkyne cycloaddition (I-SPAAC). , 2014, Journal of materials chemistry. B.
[25] J. L. Hueso,et al. Beyond gold: rediscovering tetrakis-(hydroxymethyl)-phosphonium chloride (THPC) as an effective agent for the synthesis of ultra-small noble metal nanoparticles and Pt-containing nanoalloys , 2013 .
[26] M. Biesinger,et al. Interfacial strain-promoted alkyne-azide cycloaddition (I-SPAAC) for the synthesis of nanomaterial hybrids. , 2013, Chemical communications.
[27] X. Qu,et al. Mesoporous silica-encapsulated gold nanoparticles as artificial enzymes for self-activated cascade catalysis. , 2013, Biomaterials.
[28] Stephanie D. Teeter,et al. Glutathione levels in human tumors , 2012, Biomarkers : biochemical indicators of exposure, response, and susceptibility to chemicals.
[29] T. Devine,et al. Raman Spectroscopy of Solids , 2012 .
[30] J. Santamaría,et al. Development of Stable, Water-Dispersible, and Biofunctionalizable Superparamagnetic Iron Oxide Nanoparticles , 2011 .
[31] L. Cantley,et al. Understanding the Warburg Effect: The Metabolic Requirements of Cell Proliferation , 2009, Science.
[32] Ying Tian,et al. A novel method for metal oxide nanowire synthesis , 2009, Nanotechnology.
[33] Andrea R. Gerson,et al. XPS of sulphide mineral surfaces: metal‐deficient, polysulphides, defects and elemental sulphur , 1999 .
[34] N. Gu,et al. A moderate method for preparation DMSA coated Fe3O4 nanoparticles , 2017 .
[35] Min Wu,et al. Multiparameter metabolic analysis reveals a close link between attenuated mitochondrial bioenergetic function and enhanced glycolysis dependency in human tumor cells. , 2007, American journal of physiology. Cell physiology.
[36] H. Kim,et al. Spectroscopic identification of S-Au interaction in cysteine capped gold nanoparticles. , 2006, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.