The Coppery Age: Copper (Cu)‐Involved Nanotheranostics
暂无分享,去创建一个
Wei Feng | Jianqiao Zhou | Yu Chen | Caihong Dong | Wenwen Xu | Luodan Yu | Huiijng Xiang | Yu Chen | Luodan Yu | Caihong Dong | Wei Feng | Jianqiao Zhou | Wenwen Xu | Huiijng Xiang
[1] Rui Jiang,et al. Fluorine Grafted Cu7S4-Au Heterodimers for Multimodal Imaging Guided Photothermal Therapy with High Penetration Depth. , 2018, Journal of the American Chemical Society.
[2] Luisa De Cola,et al. Ultrasmall inorganic nanoparticles: State-of-the-art and perspectives for biomedical applications. , 2016, Nanomedicine : nanotechnology, biology, and medicine.
[3] J. DiNicolantonio,et al. Copper deficiency may be a leading cause of ischaemic heart disease , 2018, Open Heart.
[4] Xuehai Yan,et al. Self-assembling Collagen/Alginate hybrid hydrogels for combinatorial photothermal and immuno tumor therapy , 2019, Colloids and Surfaces A: Physicochemical and Engineering Aspects.
[5] Zhengfang Yi,et al. Preparation of copper-containing bioactive glass/eggshell membrane nanocomposites for improving angiogenesis, antibacterial activity and wound healing. , 2016, Acta biomaterialia.
[6] Adrian L. Harris,et al. Hypoxia — a key regulatory factor in tumour growth , 2002, Nature Reviews Cancer.
[7] Annibale Versari,et al. Post-Synthesis Incorporation of ⁶⁴Cu in CuS Nanocrystals to Radiolabel Photothermal Probes: A Feasible Approach for Clinics. , 2015, Journal of the American Chemical Society.
[8] R. Kok,et al. Ligand-targeted particulate nanomedicines undergoing clinical evaluation: current status. , 2013, Advanced drug delivery reviews.
[9] Bengang Xing,et al. Nanostructures for NIR light-controlled therapies. , 2017, Nanoscale.
[10] Rui Xue Zhang,et al. Nanomedicine of synergistic drug combinations for cancer therapy - Strategies and perspectives. , 2016, Journal of controlled release : official journal of the Controlled Release Society.
[11] Kai Yang,et al. Nano-graphene in biomedicine: theranostic applications. , 2013, Chemical Society reviews.
[12] Haiyan Chen,et al. Biocompatible CuS-based nanoplatforms for efficient photothermal therapy and chemotherapy in vivo. , 2017, Biomaterials science.
[13] Jiasheng Tu,et al. Mild photothermal therapy potentiates anti-PD-L1 treatment for immunologically cold tumors via an all-in-one and all-in-control strategy , 2019, Nature Communications.
[14] Myung-Seob Khil,et al. Smart copper oxide nanocrystals: synthesis, characterization, electrochemical and potent antibacterial activity. , 2012, Colloids and surfaces. B, Biointerfaces.
[15] Kai Yang,et al. Activatable hyaluronic acid nanoparticle as a theranostic agent for optical/photoacoustic image-guided photothermal therapy. , 2014, ACS nano.
[16] Takaaki Ohtake,et al. Innate antimicrobial peptide protects the skin from invasive bacterial infection , 2001, Nature.
[17] Erlong Zhang,et al. A review of NIR dyes in cancer targeting and imaging. , 2011, Biomaterials.
[18] Yu Chen,et al. Nanocatalytic Medicine , 2019, Advanced materials.
[19] Daniel Jaque,et al. Perspectives for Ag2S NIR-II nanoparticles in biomedicine: from imaging to multifunctionality. , 2019, Nanoscale.
[20] Hui Li,et al. Artificial Enzyme-Catalyzed Cascade Reactions for Antitumor Immunotherapy Reinforced by NIR-II Light. , 2019, Angewandte Chemie.
[21] Yong Wang,et al. Monodisperse Dual Plasmonic Au@Cu2-xE (E= S, Se) Core@Shell Supraparticles: Aqueous Fabrication, Multimodal Imaging, and Tumor Therapy at in Vivo Level. , 2017, ACS nano.
[22] Jianlin Shi,et al. Inorganic nanoparticle-based drug codelivery nanosystems to overcome the multidrug resistance of cancer cells. , 2014, Molecular pharmaceutics.
[23] Arindam Pramanik,et al. A novel study of antibacterial activity of copper iodide nanoparticle mediated by DNA and membrane damage. , 2012, Colloids and surfaces. B, Biointerfaces.
[24] Jianlin Shi,et al. Nanocatalytic Tumor Therapy by Single-Atom Catalysts. , 2019, ACS nano.
[25] Junyang Zhuang,et al. Strong Near-Infrared Absorbing and Biocompatible CuS Nanoparticles for Rapid and Efficient Photothermal Ablation of Gram-Positive and -Negative Bacteria. , 2017, ACS applied materials & interfaces.
[26] Min Zhang,et al. Hybrid Nanoreactors: Enabling an Off-the-Shelf Strategy for Concurrently Enhanced Chemo-immunotherapy. , 2018, Angewandte Chemie.
[27] J. Kaplan,et al. Copper Transport in Mammalian Cells: Special Care for a Metal with Special Needs* , 2009, The Journal of Biological Chemistry.
[28] S Kalaivani,et al. Effect of copper (Cu2+) inclusion on the bioactivity and antibacterial behavior of calcium silicate coatings on titanium metal. , 2014, Journal of materials chemistry. B.
[29] P. Jain,et al. Calculated absorption and scattering properties of gold nanoparticles of different size, shape, and composition: applications in biological imaging and biomedicine. , 2006, The journal of physical chemistry. B.
[30] Zefeng Lin,et al. Synergistic Photothermal and Photodynamic Therapy for Effective Implant-Related Bacterial Infection Elimination and Biofilm Disruption Using Cu9S8 Nanoparticles. , 2019, ACS biomaterials science & engineering.
[31] Bin Liu,et al. Cancer-Cell-Activated Photodynamic Therapy Assisted by Cu(II) Based Metal-Organic Framework. , 2019, ACS nano.
[32] Anirban Sen Gupta,et al. Photodynamic nanomedicine in the treatment of solid tumors: perspectives and challenges. , 2013, Journal of controlled release : official journal of the Controlled Release Society.
[33] Yu Chen,et al. Construction of Silica‐Based Micro/Nanoplatforms for Ultrasound Theranostic Biomedicine , 2017, Advanced healthcare materials.
[34] Vincent M Rotello,et al. Inorganic nanosystems for therapeutic delivery: status and prospects. , 2013, Advanced drug delivery reviews.
[35] Huang Bin,et al. Microstructure of TiCuO Films on Copper Ion Release and Endothelial Cell Behavior , 2018 .
[36] I. Chopra,et al. Targeting bacterial membrane function: an underexploited mechanism for treating persistent infections , 2010, Nature Reviews Microbiology.
[37] Fengjuan Cao,et al. Specific Generation of Singlet Oxygen through the Russell Mechanism in Hypoxic Tumors and GSH Depletion by Cu-TCPP Nanosheets for Cancer Therapy. , 2019, Angewandte Chemie.
[38] Won Jong Kim,et al. Synergistic nanomedicine by combined gene and photothermal therapy. , 2016, Advanced drug delivery reviews.
[39] A. J. Tavares,et al. Analysis of nanoparticle delivery to tumours , 2016 .
[40] Han Lin,et al. Nanoparticle-triggered in situ catalytic chemical reactions for tumour-specific therapy. , 2018, Chemical Society reviews.
[41] Kai Yang,et al. Visualization of Protease Activity In Vivo Using an Activatable Photo-Acoustic Imaging Probe Based on CuS Nanoparticles , 2014, Theranostics.
[42] Huiqi Xie,et al. Role of copper in angiogenesis and its medicinal implications. , 2009, Current medicinal chemistry.
[43] Rui Liu,et al. Antibacterial effect of copper-bearing titanium alloy (Ti-Cu) against Streptococcus mutans and Porphyromonas gingivalis , 2016, Scientific Reports.
[44] Liang Song,et al. Ultrasmall Cu2-x S Nanodots for Highly Efficient Photoacoustic Imaging-Guided Photothermal Therapy. , 2015, Small.
[45] Zhuang Liu,et al. GSH‐Depleted PtCu3 Nanocages for Chemodynamic‐ Enhanced Sonodynamic Cancer Therapy , 2019, Advanced Functional Materials.
[46] Minfeng Huo,et al. Ultrasmall Cu2-xS nanodots as photothermal-enhanced Fenton nanocatalysts for synergistic tumor therapy at NIR-II biowindow. , 2019, Biomaterials.
[47] Xiaogang Qu,et al. Copper(II)-Graphitic Carbon Nitride Triggered Synergy: Improved ROS Generation and Reduced Glutathione Levels for Enhanced Photodynamic Therapy. , 2016, Angewandte Chemie.
[48] Robert J Gillies,et al. Acidity generated by the tumor microenvironment drives local invasion. , 2013, Cancer research.
[49] Yang Shu,et al. Protein-modified hollow copper sulfide nanoparticles carrying indocyanine green for photothermal and photodynamic therapy. , 2016, Journal of materials chemistry. B.
[50] Wei Lu,et al. Hollow copper sulfide nanoparticle-mediated transdermal drug delivery. , 2012, Small.
[51] Michael S. Goldberg,et al. Improving cancer immunotherapy through nanotechnology , 2019, Nature Reviews Cancer.
[52] Mauro Ferrari,et al. An injectable nanoparticle generator enhances delivery of cancer therapeutics , 2016, Nature Biotechnology.
[53] Adrien E. Desjardins,et al. Minimally invasive photoacoustic imaging: Current status and future perspectives , 2019, Photoacoustics.
[54] Yu Chen,et al. Single‐Atom Catalysts in Catalytic Biomedicine , 2020, Advanced materials.
[55] Xiaogang Qu,et al. Hydrophobic Anticancer Drug Delivery by a 980 nm Laser‐Driven Photothermal Vehicle for Efficient Synergistic Therapy of Cancer Cells In Vivo , 2013, Advanced materials.
[56] Jianhua Yang,et al. Preparation and Characterization of High Performance MFI Zeolite Membrane in Ultradilute Solution , 2018 .
[57] Ke Du,et al. Apoferritin as a Carrier of Cu(II) Diethyldithiocarbamate and Biomedical Application for Glutathione-Responsive Combination Chemotherapy. , 2019, ACS applied bio materials.
[58] Feng Liu,et al. Self-Assembled Copper-Amino Acid Nanoparticles for in Situ Glutathione "AND" H2O2 Sequentially Triggered Chemodynamic Therapy. , 2018, Journal of the American Chemical Society.
[59] N. Padmavathy,et al. Understanding the pathway of antibacterial activity of copper oxide nanoparticles , 2015 .
[60] Jin Chang,et al. Albumin-Bioinspired Gd:CuS Nanotheranostic Agent for In Vivo Photoacoustic/Magnetic Resonance Imaging-Guided Tumor-Targeted Photothermal Therapy. , 2016, ACS nano.
[61] Liming Nie,et al. Reactive oxygen species generating systems meeting challenges of photodynamic cancer therapy. , 2016, Chemical Society reviews.
[62] Wen Sun,et al. A novel Mn-Cu bimetallic complex for enhanced chemodynamic therapy with simultaneous glutathione depletion. , 2019, Chemical communications.
[63] Philippe Robert,et al. Recent advances in iron oxide nanocrystal technology for medical imaging. , 2006, Advanced drug delivery reviews.
[64] Yi Li,et al. Co‐Delivery of Drugs and Genes Using Polymeric Nanoparticles for Synergistic Cancer Therapeutic Effects , 2018, Advanced healthcare materials.
[65] Ick Chan Kwon,et al. Nanophotosensitizers toward advanced photodynamic therapy of Cancer. , 2013, Cancer letters.
[66] Mostafa A. El-Sayed,et al. The golden age: gold nanoparticles for biomedicine. , 2012, Chemical Society reviews.
[67] Kaibing Xu,et al. Facile synthesis of biocompatible cysteine-coated CuS nanoparticles with high photothermal conversion efficiency for cancer therapy. , 2014, Dalton transactions.
[68] Sunita Jadhav,et al. Copper Oxide Nanoparticles: Synthesis, Characterization and Their Antibacterial Activity , 2011 .
[69] Chen-Sheng Yeh,et al. Rattle‐Type Fe3O4@CuS Developed to Conduct Magnetically Guided Photoinduced Hyperthermia at First and Second NIR Biological Windows , 2015 .
[70] Jie Lu,et al. Se@SiO2-FA-CuS nanocomposites for targeted delivery of DOX and nano selenium in synergistic combination of chemo-photothermal therapy. , 2018, Nanoscale.
[71] Qian Huang,et al. Copper sulfide nanoparticles as a new class of photoacoustic contrast agent for deep tissue imaging at 1064 nm. , 2012, ACS nano.
[72] Fengfeng Xue,et al. Cu2- xS Nanocrystals Cross-Linked with Chlorin e6-Functionalized Polyethylenimine for Synergistic Photodynamic and Photothermal Therapy of Cancer. , 2018, ACS applied materials & interfaces.
[73] Meng Xu,et al. Structurally Well‐Defined Au@Cu2−xS Core–Shell Nanocrystals for Improved Cancer Treatment Based on Enhanced Photothermal Efficiency , 2016, Advanced materials.
[74] Ali Khademhosseini,et al. Evolution and Clinical Translation of Drug Delivery Nanomaterials. , 2017, Nano today.
[75] Kai Yang,et al. Imaging‐Guided Combined Photothermal and Radiotherapy to Treat Subcutaneous and Metastatic Tumors Using Iodine‐131‐Doped Copper Sulfide Nanoparticles , 2015 .
[76] Xin Liu,et al. Recent advances in functional nanomaterials for photoacoustic imaging of glioma , 2019, Nanoscale Horizons.
[77] Lin Hou,et al. Tumor-targeted and multi-stimuli responsive drug delivery system for near-infrared light induced chemo-phototherapy and photoacoustic tomography. , 2016, Acta biomaterialia.
[78] Jun Lin,et al. cis-Platinum pro-drug-attached CuFeS2 nanoplates for in vivo photothermal/photoacoustic imaging and chemotherapy/photothermal therapy of cancer. , 2017, Nanoscale.
[79] Feng Li,et al. Old wine in new bottles: Advanced drug delivery systems for disulfiram-based cancer therapy. , 2020, Journal of controlled release : official journal of the Controlled Release Society.
[80] Taeghwan Hyeon,et al. Inorganic Nanoparticles for MRI Contrast Agents , 2009 .
[81] Youwei Wang,et al. Theranostic 2D Tantalum Carbide (MXene) , 2018, Advanced materials.
[82] Huixiong Xu,et al. Construction of Nucleus-Targeting Iridium Nanocrystals for Photonic Hyperthermia-Synergized Cancer Radiotherapy. , 2019, Small.
[83] Dong Liang,et al. A chelator-free multifunctional [64Cu]CuS nanoparticle platform for simultaneous micro-PET/CT imaging and photothermal ablation therapy. , 2010, Journal of the American Chemical Society.
[84] Jörg Huwyler,et al. Nanomedicine in cancer therapy: challenges, opportunities, and clinical applications. , 2015, Journal of controlled release : official journal of the Controlled Release Society.
[85] Ming Ma,et al. Structure-property relationships in manganese oxide--mesoporous silica nanoparticles used for T1-weighted MRI and simultaneous anti-cancer drug delivery. , 2012, Biomaterials.
[86] Julio Santarén,et al. Antibacterial activity of copper monodispersed nanoparticles into sepiolite , 2006 .
[87] Samir Mitragotri,et al. Nanoparticles in the clinic: An update , 2019, Bioengineering & translational medicine.
[88] Katherine W Ferrara,et al. Lipid-shelled vehicles: engineering for ultrasound molecular imaging and drug delivery. , 2009, Accounts of chemical research.
[89] Z. Dai,et al. Photothermal therapy and photoacoustic imaging via nanotheranostics in fighting cancer. , 2019, Chemical Society reviews.
[90] Mauro Ferrari,et al. Nanomedicine--challenge and perspectives. , 2009, Angewandte Chemie.
[91] R. Darouiche,et al. Treatment of infections associated with surgical implants. , 2004, The New England journal of medicine.
[92] Lin Yang,et al. A facile one-pot synthesis of colloidal stable, monodisperse, highly PEGylated CuS@mSiO2 nanocomposites for the combination of photothermal therapy and chemotherapy. , 2015, Chemical communications.
[93] Rujia Zou,et al. Hydrophilic Cu9S5 nanocrystals: a photothermal agent with a 25.7% heat conversion efficiency for photothermal ablation of cancer cells in vivo. , 2011, ACS nano.
[94] Chun Li,et al. CuS-Based Theranostic Micelles for NIR-Controlled Combination Chemotherapy and Photothermal Therapy and Photoacoustic Imaging. , 2017, ACS applied materials & interfaces.
[95] Adam J Friedman,et al. Nanotechnology as a therapeutic tool to combat microbial resistance. , 2013, Advanced drug delivery reviews.
[96] Hao Hong,et al. In Vivo Tumor Vasculature Targeting of CuS@MSN Based Theranostic Nanomedicine , 2015, ACS nano.
[97] Lin Hou,et al. Programmed near-infrared light-responsive drug delivery system for combined magnetic tumor-targeting magnetic resonance imaging and chemo-phototherapy. , 2017, Acta biomaterialia.
[98] Haijun Yu,et al. Stimuli-activatable nanomedicines for chemodynamic therapy of cancer. , 2020, Wiley interdisciplinary reviews. Nanomedicine and nanobiotechnology.
[99] Zhengfang Yi,et al. Copper Silicate Hollow Microspheres-Incorporated Scaffolds for Chemo-Photothermal Therapy of Melanoma and Tissue Healing. , 2018, ACS nano.
[100] Jordi Arbiol,et al. CuTe nanocrystals: shape and size control, plasmonic properties, and use as SERS probes and photothermal agents. , 2013, Journal of the American Chemical Society.
[101] N Grimaldi,et al. Lipid-based nanovesicles for nanomedicine. , 2016, Chemical Society reviews.
[102] Zhen Gu,et al. Programmable nanomedicine: synergistic and sequential drug delivery systems. , 2015, Nanoscale.
[103] Jayant Khandare,et al. Multifunctional dendritic polymers in nanomedicine: opportunities and challenges. , 2012, Chemical Society reviews.
[104] Mauro Ferrari,et al. Principles of nanoparticle design for overcoming biological barriers to drug delivery , 2015, Nature Biotechnology.
[105] Peng Liu,et al. A hydrogel directly assembled from a copper metal-organic polyhedron for antimicrobial application. , 2019, Chemical communications.
[106] Liguang Xu,et al. Light-induced chiral FexCuySe nanoparticles prevent β-amyloidopathy in vivo. , 2020, Angewandte Chemie.
[107] Yongsheng Chen,et al. Mechanism of photogenerated reactive oxygen species and correlation with the antibacterial properties of engineered metal-oxide nanoparticles. , 2012, ACS nano.
[108] Zhang Zhe,et al. Adsorption of Enzyme for Sulfur Mustard Decontamination by Mesocellular Foam , 2018 .
[109] P. Vaupel,et al. Tumor hypoxia: definitions and current clinical, biologic, and molecular aspects. , 2001, Journal of the National Cancer Institute.
[110] Monty Liong,et al. Multifunctional inorganic nanoparticles for imaging, targeting, and drug delivery. , 2008, ACS nano.
[111] Govindasamy Rajakumar,et al. Synthesis and antimicrobial activity of copper nanoparticles , 2012 .
[112] Taeghwan Hyeon,et al. Designed synthesis of uniformly sized iron oxide nanoparticles for efficient magnetic resonance imaging contrast agents. , 2012, Chemical Society reviews.
[113] Jie Tian,et al. In Situ Growth Strategy to Integrate Up-Conversion Nanoparticles with Ultrasmall CuS for Photothermal Theranostics. , 2017, ACS nano.
[114] Diego S. Dumani,et al. Copper Sulfide Perfluorocarbon Nanodroplets as Clinically Relevant Photoacoustic/Ultrasound Imaging Agents. , 2017, Nano letters.
[115] Zhengfang Yi,et al. Electrospun Micropatterned Nanocomposites Incorporated with Cu2S Nanoflowers for Skin Tumor Therapy and Wound Healing. , 2017, ACS nano.
[116] Yu Chen,et al. Insights into the unique functionality of inorganic micro/nanoparticles for versatile ultrasound theranostics. , 2017, Biomaterials.
[117] Kohei Soga,et al. Upconverting and NIR emitting rare earth based nanostructures for NIR-bioimaging. , 2013, Nanoscale.
[118] Jesse V. Jokerst,et al. Copper Sulfide Nanodisks and Nanoprisms for Photoacoustic Ovarian Tumor Imaging , 2019, Particle & particle systems characterization : measurement and description of particle properties and behavior in powders and other disperse systems.
[119] Livia Visai,et al. POLITECNICO DI TORINO Repository ISTITUZIONALE Copper-containing mesoporous bioactive glass nanoparticles as multifunctional agent for bone regeneration / , 2022 .
[120] Liguang Xu,et al. Porous Cu x Co y S Supraparticles for In Vivo Telomerase Imaging and Reactive Oxygen Species Generation , 2019 .
[121] Zhijian Wu,et al. A Hollow‐Structured CuS@Cu2S@Au Nanohybrid: Synergistically Enhanced Photothermal Efficiency and Photoswitchable Targeting Effect for Cancer Theranostics , 2017, Advanced materials.
[122] V. Torchilin. Multifunctional, stimuli-sensitive nanoparticulate systems for drug delivery , 2014, Nature Reviews Drug Discovery.
[123] Mingyuan Gao,et al. Ambient Aqueous Synthesis of Ultrasmall PEGylated Cu2−xSe Nanoparticles as a Multifunctional Theranostic Agent for Multimodal Imaging Guided Photothermal Therapy of Cancer , 2016, Advanced materials.
[124] Omar K. Farha,et al. Copper Metal-Organic Framework Nanoparticles Stabilized with Folic Acid Improve Wound Healing in Diabetes. , 2018, ACS nano.
[125] Zhangjian Huang,et al. Nanoscale Coordination Polymers for Synergistic NO and Chemodynamic Therapy of Liver Cancer. , 2019, Nano letters.
[126] Xiaoying Wang,et al. CuS@Corn Stalk/Chitin Composite Hydrogel for Photodegradation and Antibacterial , 2019, Polymers.
[127] Robert Langer,et al. Preclinical Development and Clinical Translation of a PSMA-Targeted Docetaxel Nanoparticle with a Differentiated Pharmacological Profile , 2012, Science Translational Medicine.
[128] Wei Lu,et al. Combinatorial Photothermal and Immuno Cancer Therapy Using Chitosan-Coated Hollow Copper Sulfide Nanoparticles , 2014, ACS nano.
[129] Jun Zhao,et al. Theranostic CuS Nanoparticles Targeting Folate Receptors for PET Image-Guided Photothermal Therapy. , 2015, Journal of materials chemistry. B.
[130] Zhi Ping Xu,et al. Manganese‐Based Layered Double Hydroxide Nanoparticles as a T1‐MRI Contrast Agent with Ultrasensitive pH Response and High Relaxivity , 2017, Advanced materials.
[131] Dasari Ayodhya,et al. Preparation, Characterization, Photocatalytic, Sensing and Antimicrobial Studies of Calotropis gigantea Leaf Extract Capped CuS NPs by a Green Approach , 2017, Journal of Inorganic and Organometallic Polymers and Materials.
[132] Pamela Habibovic,et al. Angiogenesis in calcium phosphate scaffolds by inorganic copper ion release. , 2009, Tissue engineering. Part A.
[133] Zhenxiang Cheng,et al. Vacancy engineering of Cu2-xSe nanoparticles with tunable LSPR and magnetism for dual-modal imaging guided photothermal therapy of cancer. , 2018, Nanoscale.
[134] Lu Wang. Synthetic methods of CuS nanoparticles and their applications for imaging and cancer therapy , 2016 .
[135] Carla Renata Arciola,et al. Biofilm formation in Staphylococcus implant infections. A review of molecular mechanisms and implications for biofilm-resistant materials. , 2012, Biomaterials.
[136] Dong Liang,et al. CuS Nanodots with Ultrahigh Efficient Renal Clearance for Positron Emission Tomography Imaging and Image-Guided Photothermal Therapy. , 2015, ACS nano.
[137] G. G. Stokes. "J." , 1890, The New Yale Book of Quotations.
[138] Faqi Li,et al. Engineering Inorganic Nanoemulsions/Nanoliposomes by Fluoride‐Silica Chemistry for Efficient Delivery/Co‐Delivery of Hydrophobic Agents , 2012 .
[139] Wei Lu,et al. A comparative study of hollow copper sulfide nanoparticles and hollow gold nanospheres on degradability and toxicity. , 2013, ACS nano.
[140] Jie Tian,et al. High‐Efficient Clearable Nanoparticles for Multi‐Modal Imaging and Image‐Guided Cancer Therapy , 2018 .
[141] A Paul Alivisatos,et al. Localized surface plasmon resonances arising from free carriers in doped quantum dots. , 2011, Nature materials.
[142] Longfei Tan,et al. Plasmonic copper sulfide nanocrystals exhibiting near-infrared photothermal and photodynamic therapeutic effects. , 2015, ACS nano.
[143] Shuyan Song,et al. Multifunctional Cu-Ag2S nanoparticles with high photothermal conversion efficiency for photoacoustic imaging-guided photothermal therapy in vivo. , 2018, Nanoscale.
[144] Ben Zhong Tang,et al. Assembly strategies of organic-based imaging agents for fluorescence and photoacoustic bioimaging applications. , 2019, Chemical Society reviews.
[145] Qiwei Tian,et al. Surface Plasmon Resonance-Enhanced Photoacoustic Imaging and Photothermal Therapy of Endogenous H2 S-Triggered Au@Cu2 O. , 2019, Small.
[146] Chun Li,et al. Copper-Based Nanomaterials for Cancer Imaging and Therapy. , 2016, Bioconjugate chemistry.
[147] Yan Mei,et al. Preparation of copper nanoparticles coated cellulose films with antibacterial properties through one-step reduction. , 2012, ACS applied materials & interfaces.
[148] Chunyu Zhu,et al. Enhanced Intracellular Ca2+ Nanogenerator for Tumor-Specific Synergistic Therapy via Disruption of Mitochondrial Ca2+ Homeostasis and Photothermal Therapy. , 2018, ACS nano.
[149] Alexander Hoppe,et al. In vitro reactivity of Cu doped 45S5 Bioglass® derived scaffolds for bone tissue engineering. , 2013, Journal of materials chemistry. B.
[150] Luodan Yu,et al. Catalytic chemistry of iron-free Fenton nanocatalysts for versatile radical nanotherapeutics , 2020, Materials Horizons.
[151] Jun Lin,et al. A Multifunctional Cascade Bioreactor Based on Hollow‐Structured Cu2MoS4 for Synergetic Cancer Chemo‐Dynamic Therapy/Starvation Therapy/Phototherapy/Immunotherapy with Remarkably Enhanced Efficacy , 2019, Advanced materials.
[152] Lihong V. Wang,et al. Photoacoustic Tomography: In Vivo Imaging from Organelles to Organs , 2012, Science.
[153] Jon A. Schwartz,et al. Gold nanoshell-localized photothermal ablation of prostate tumors in a clinical pilot device study , 2019, Proceedings of the National Academy of Sciences.
[154] Antony Ananth,et al. Copper oxide nanomaterials: Synthesis, characterization and structure-specific antibacterial performance , 2015 .
[155] Zhen Zhao,et al. Copper chalcogenide materials as photothermal agents for cancer treatment. , 2020, Nanoscale.
[156] Ruyi Zhou,et al. Tumor Microenvironment-Responsive Cu2(OH)PO4 Nanocrystals for Selective and Controllable Radiosentization via the X-ray-Triggered Fenton-like Reaction. , 2019, Nano letters.
[157] Yang Yang,et al. Copper(I) Phosphide Nanocrystals for In Situ Self‐Generation Magnetic Resonance Imaging‐Guided Photothermal‐Enhanced Chemodynamic Synergetic Therapy Resisting Deep‐Seated Tumor , 2019, Advanced Functional Materials.
[158] P. Ratcliffe,et al. Regulation of angiogenesis by hypoxia: role of the HIF system , 2003, Nature Medicine.
[159] Jing Liu,et al. Smart Cu1.75S nanocapsules with high and stable photothermal efficiency for NIR photo-triggered drug release , 2015, Nano Research.
[160] J. Riess,et al. Injectable microbubbles as contrast agents for diagnostic ultrasound imaging: the key role of perfluorochemicals. , 2003, Angewandte Chemie.
[161] Stefan Vogt,et al. Endothelial Antioxidant-1: a Key Mediator of Copper-dependent Wound Healing in vivo , 2016, Scientific Reports.
[162] Angel Ortega,et al. Glutathione in Cancer Biology and Therapy , 2006, Critical reviews in clinical laboratory sciences.
[163] Zhifei Dai,et al. Targeted delivery of CuS nanoparticles through ultrasound image-guided microbubble destruction for efficient photothermal therapy. , 2013, Nanoscale.
[164] Elodie Boisselier,et al. Gold nanoparticles in nanomedicine: preparations, imaging, diagnostics, therapies and toxicity. , 2009, Chemical Society reviews.
[165] Matthew G. Panthani,et al. Copper selenide nanocrystals for photothermal therapy. , 2011, Nano letters.
[166] Chunlin Xu,et al. Biocomposites of copper-containing mesoporous bioactive glass and nanofibrillated cellulose: Biocompatibility and angiogenic promotion in chronic wound healing application. , 2016, Acta biomaterialia.
[167] Bernd Kreikemeyer,et al. A dual function of copper in designing regenerative implants. , 2015, Biomaterials.
[168] Yu Chen,et al. Construction of homogenous/heterogeneous hollow mesoporous silica nanostructures by silica-etching chemistry: principles, synthesis, and applications. , 2014, Accounts of chemical research.
[169] Yu Chen,et al. Chemistry of Mesoporous Organosilica in Nanotechnology: Molecularly Organic–Inorganic Hybridization into Frameworks , 2016, Advanced materials.
[170] Jingwen Sun,et al. Copper Sulfide Facilitates Hepatobiliary Clearance of Gold Nanoparticles through the Copper-Transporting ATPase ATP7B. , 2019, ACS nano.
[171] Ruchira Chakraborty,et al. Mechanism of antibacterial activity of copper nanoparticles , 2014, Nanotechnology.
[172] Guanglong Li,et al. Graphene Oxide‐Copper Nanocomposite‐Coated Porous CaP Scaffold for Vascularized Bone Regeneration via Activation of Hif‐1α , 2016, Advanced healthcare materials.
[173] Qiwei Tian,et al. The In Situ Sulfidation of Cu2 O by Endogenous H2 S for Colon Cancer Theranostics. , 2018, Angewandte Chemie.
[174] Zhifei Wang,et al. Near-infrared light-induced dissociation of zeolitic imidazole framework-8 (ZIF-8) with encapsulated CuS nanoparticles and their application as a therapeutic nanoplatform. , 2016, Chemical communications.
[175] Jingchao Li,et al. Second Near‐Infrared Absorbing Agents for Photoacoustic Imaging and Photothermal Therapy , 2019, Small Methods.
[176] Zhuang Liu,et al. Hollow Cu2Se Nanozymes for Tumor Photothermal-Catalytic Therapy , 2019, Chemistry of Materials.
[177] Guoqiang Guan,et al. Design and Functionalization of the NIR-Responsive Photothermal Semiconductor Nanomaterials for Cancer Theranostics. , 2017, Accounts of chemical research.
[178] Mengya Liu,et al. Surface plasmon resonance enhanced light absorption and photothermal therapy in the second near-infrared window. , 2014, Journal of the American Chemical Society.
[179] Urs O. Häfeli,et al. Metal nanoparticles: understanding the mechanisms behind antibacterial activity , 2017, Journal of Nanobiotechnology.
[180] Peng Wan,et al. Biodegradable Mg-Cu alloy implants with antibacterial activity for the treatment of osteomyelitis: In vitro and in vivo evaluations. , 2016, Biomaterials.
[181] J. Blusztajn,et al. Deletion of murine choline dehydrogenase results in diminished sperm motility , 2010, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[182] Ligeng Xu,et al. Immunological Responses Triggered by Photothermal Therapy with Carbon Nanotubes in Combination with Anti‐CTLA‐4 Therapy to Inhibit Cancer Metastasis , 2014, Advanced materials.
[183] Yufeng Zheng,et al. Noninvasive rapid bacteria-killing and acceleration of wound healing through photothermal/photodynamic/copper ion synergistic action of a hybrid hydrogel. , 2018, Biomaterials science.
[184] Kai Yang,et al. High near-infrared absorbing Cu5FeS4 nanoparticles for dual-modal imaging and photothermal therapy. , 2016, Nanoscale.
[185] Wei Li,et al. Bioinspired Construction of a Nanozyme-Based H2O2 Homeostasis Disruptor for Intensive Chemodynamic Therapy. , 2020, Journal of the American Chemical Society.
[186] Artur Bednarkiewicz,et al. Revisiting the classification of NIR-absorbing/emitting nanomaterials for in vivo bioapplications , 2016 .
[187] M. Zilberman,et al. Antibiotic-eluting medical devices for various applications. , 2008, Journal of controlled release : official journal of the Controlled Release Society.
[188] Pedro J J Alvarez,et al. Negligible particle-specific antibacterial activity of silver nanoparticles. , 2012, Nano letters.
[189] Milan Kolar,et al. Silver colloid nanoparticles: synthesis, characterization, and their antibacterial activity. , 2006, The journal of physical chemistry. B.
[190] Fernando Baquero,et al. Interactions among Strategies Associated with Bacterial Infection: Pathogenicity, Epidemicity, and Antibiotic Resistance , 2002, Clinical Microbiology Reviews.
[191] Ligeng Xu,et al. Photothermal therapy with immune-adjuvant nanoparticles together with checkpoint blockade for effective cancer immunotherapy , 2016, Nature Communications.
[192] Bin He,et al. Highly Stable, Coordinated Polymeric Nanoparticles Loading Copper(II) Diethyldithiocarbamate for Combinational Chemo/Chemodynamic Therapy of Cancer. , 2019, Biomacromolecules.
[193] Yin Xiao,et al. Copper-doped mesoporous silica nanospheres, a promising immunomodulatory agent for inducing osteogenesis. , 2016, Acta Biomaterialia.
[194] Jian He,et al. Light-Activatable Synergistic Therapy of Drug-Resistant Bacteria Infected Cutaneous Chronic Wound and Non-Healing Keratitis by Cupriferous Hollow Nanoshells. , 2020, ACS nano.
[195] C. Robic,et al. Magnetic iron oxide nanoparticles: synthesis, stabilization, vectorization, physicochemical characterizations, and biological applications. , 2008, Chemical reviews.
[196] Peng Huang,et al. Biomineralization-Inspired Synthesis of Copper Sulfide-Ferritin Nanocages as Cancer Theranostics. , 2016, ACS nano.
[197] Kai Li,et al. A highly active (102) surface-induced rapid degradation of a CuS nanotheranostic platform for in situ T1-weighted magnetic resonance imaging-guided synergistic therapy. , 2019, Nanoscale.
[198] Thomas Shin,et al. Marginal Copper Deficiency Increases Liver Neutrophil Accumulation After Ischemia/Reperfusion in Rats , 2011, Biological Trace Element Research.
[199] Jean-Christophe Leroux,et al. Nanopharmaceuticals: A focus on their clinical translatability. , 2020, International journal of pharmaceutics.
[200] Yanqing Hua,et al. A core/satellite multifunctional nanotheranostic for in vivo imaging and tumor eradication by radiation/photothermal synergistic therapy. , 2013, Journal of the American Chemical Society.
[201] Meifang Zhu,et al. Hydrophilic Flower‐Like CuS Superstructures as an Efficient 980 nm Laser‐Driven Photothermal Agent for Ablation of Cancer Cells , 2011, Advanced materials.
[202] Abdul Hameed,et al. Investigations into the antibacterial behavior of copper nanoparticles against Escherichia coli , 2010, Annals of Microbiology.
[203] Dulal Panda,et al. Anticancer and antimicrobial metallopharmaceutical agents based on palladium, gold, and silver N-heterocyclic carbene complexes. , 2007, Journal of the American Chemical Society.
[204] Wenpei Fan,et al. In Situ Polymerized Hollow Mesoporous Organosilica Biocatalysis Nanoreactor for Enhancing ROS‐Mediated Anticancer Therapy , 2019, Advanced functional materials.
[205] Jianlin Shi,et al. Enhanced Tumor-Specific Disulfiram Chemotherapy by In Situ Cu2+ Chelation-Initiated Nontoxicity-to-Toxicity Transition. , 2019, Journal of the American Chemical Society.
[206] Mingyuan Gao,et al. Boosting the Radiosensitizing and Photothermal Performance of Cu2- xSe Nanocrystals for Synergetic Radiophotothermal Therapy of Orthotopic Breast Cancer. , 2019, ACS nano.
[207] Qiwei Tian,et al. A hollow Cu9S8 theranostic nanoplatform based on a combination of increased active sites and photothermal performance in enhanced chemodynamic therapy , 2020 .
[208] Shaobing Zhou,et al. NIR-I-to-NIR-II fluorescent nanomaterials for biomedical imaging and cancer therapy. , 2018, Journal of materials chemistry. B.
[209] Sefik Suzer,et al. Synthesis, characterization and antibacterial investigation of silver-copper nanoalloys , 2011 .
[210] Matthias Epple,et al. Silver as antibacterial agent: ion, nanoparticle, and metal. , 2013, Angewandte Chemie.
[211] You Han Bae,et al. Recent progress in tumor pH targeting nanotechnology. , 2008, Journal of controlled release : official journal of the Controlled Release Society.
[212] Yuan Ping,et al. Laser-Activatable CuS Nanodots to Treat Multidrug-Resistant Bacteria and Release Copper Ion to Accelerate Healing of Infected Chronic Nonhealing Wounds , 2019, ACS applied materials & interfaces.
[213] Lizeng Gao,et al. Copper/carbon hybrid nanozyme: tuning catalytic activity by copper state for antibacterial therapy. , 2019, Nano letters.
[214] Yaru Cheng,et al. Biodegradable Biomimic Copper/Manganese Silicate Nanospheres for Chemodynamic/Photodynamic Synergistic Therapy with Simultaneous Glutathione Depletion and Hypoxia Relief. , 2019, ACS nano.
[215] Nan Li,et al. A single-light triggered and dual-imaging guided multifunctional platform for combined photothermal and photodynamic therapy based on TD-controlled and ICG-loaded CuS@mSiO2. , 2017, Nanoscale.
[216] Shuang Liang,et al. Monodispersed Copper(I)‐Based Nano Metal–Organic Framework as a Biodegradable Drug Carrier with Enhanced Photodynamic Therapy Efficacy , 2019, Advanced science.
[217] A. Gopal,et al. Chitosan-based copper nanocomposite accelerates healing in excision wound model in rats. , 2014, European journal of pharmacology.
[218] Rui Tian,et al. Synthesis of Copper Peroxide Nanodots for H2O2 Self-Supplying Chemodynamic Therapy. , 2019, Journal of the American Chemical Society.
[219] Ronghua Wang,et al. NIR‐Laser‐Switched In Vivo Smart Nanocapsules for Synergic Photothermal and Chemotherapy of Tumors , 2016, Advanced materials.
[220] Wing-Cheung Law,et al. Au-Cu(2-x)Se heterodimer nanoparticles with broad localized surface plasmon resonance as contrast agents for deep tissue imaging. , 2013, Nano letters.
[221] Edward D Harris,et al. A requirement for copper in angiogenesis. , 2004, Nutrition reviews.
[222] Weibo Cai,et al. Activatable Hybrid Nanotheranostics for Tetramodal Imaging and Synergistic Photothermal/Photodynamic Therapy , 2018, Advanced materials.
[223] Mengli Li,et al. Large Pore‐Sized Hollow Mesoporous Organosilica for Redox‐Responsive Gene Delivery and Synergistic Cancer Chemotherapy , 2016, Advanced materials.
[224] Yi Wang,et al. Biodegradable Mesoporous Silica Achieved via Carbon Nanodots-Incorporated Framework Swelling for Debris-mediated Photothermal Synergistic Immunotherapy. , 2019, Nano letters.
[225] Weihong Tan,et al. Molecular Self-assembly of Bioorthogonal Aptamer-Prodrug Conju-gate Micelles for Hydrogen Peroxide and pH-Independent Cancer Chemodynamic Therapy. , 2019, Journal of the American Chemical Society.
[226] Kai Yang,et al. Biodegradable Hollow Mesoporous Organosilica Nanotheranostics for Mild Hyperthermia-Induced Bubble-Enhanced Oxygen-Sensitized Radiotherapy. , 2018, ACS nano.
[227] Qian Wang,et al. Folic acid-conjugated hollow mesoporous silica/CuS nanocomposites as a difunctional nanoplatform for targeted chemo-photothermal therapy of cancer cells. , 2014, Journal of materials chemistry. B.
[228] Liang Song,et al. Compact chelator-free Ni-integrated CuS nanoparticles with tunable near-infrared absorption and enhanced relaxivity for in vivo dual-modal photoacoustic/MR imaging. , 2015, Nanoscale.
[229] Wing-Fu Lai,et al. Development of Copper Nanoclusters for In Vitro and In Vivo Theranostic Applications , 2020, Advanced materials.
[230] Jiann-Yang Hwang,et al. Vermiculite decorated with copper nanoparticles: Novel antibacterial hybrid material , 2011 .
[231] Xing-Jie Liang,et al. Theranostic nanoparticles engineered for clinic and pharmaceutics. , 2011, Accounts of chemical research.
[232] Tianming Xu,et al. Manganese‐Based Functional Nanoplatforms: Nanosynthetic Construction, Physiochemical Property, and Theranostic Applicability , 2019, Advanced Functional Materials.
[233] Betty Y. S. Kim,et al. Current concepts: Nanomedicine , 2010 .
[234] W. Zimmerli,et al. Management of Infection Associated with Prosthetic Joints , 2003, Infection.
[235] James B. Mitchell,et al. Noninvasive imaging of tumor redox status and its modification by tissue glutathione levels. , 2002, Cancer research.
[236] Carla Renata Arciola,et al. The significance of infection related to orthopedic devices and issues of antibiotic resistance. , 2006, Biomaterials.
[237] Sang Cheon Lee,et al. Fenton-like reaction performing mineralized nanocarriers as oxidative stress amplifying anticancer agents , 2019 .
[238] Matthew P. Jacobson,et al. Dysregulated pH: a perfect storm for cancer progression , 2011, Nature Reviews Cancer.
[239] Peng Huang,et al. Tri-stimuli-responsive biodegradable theranostics for mild hyperthermia enhanced chemotherapy. , 2017, Biomaterials.
[240] Qian Wang,et al. A Low‐Toxic Multifunctional Nanoplatform Based on Cu9S5@mSiO2 Core‐Shell Nanocomposites: Combining Photothermal‐ and Chemotherapies with Infrared Thermal Imaging for Cancer Treatment , 2013 .
[241] Daxiang Cui,et al. Photo‐Fenton‐like Metal–Protein Self‐Assemblies as Multifunctional Tumor Theranostic Agent , 2019, Advanced healthcare materials.
[242] Ruhong Zhou,et al. N-Oxide polymer-cupric ion nanogels potentiate disulfiram for cancer therapy. , 2020, Biomaterials science.
[243] Lei Chen,et al. Copper-containing mesoporous bioactive glass scaffolds with multifunctional properties of angiogenesis capacity, osteostimulation and antibacterial activity. , 2013, Biomaterials.
[244] Naomi J Halas,et al. Nanoshell-enabled photothermal cancer therapy: impending clinical impact. , 2008, Accounts of chemical research.
[245] Yan Liu,et al. Metal-based NanoEnhancers for Future Radiotherapy: Radiosensitizing and Synergistic Effects on Tumor Cells , 2018, Theranostics.
[246] Wenhai Huang,et al. Wound dressings composed of copper-doped borate bioactive glass microfibers stimulate angiogenesis and heal full-thickness skin defects in a rodent model. , 2015, Biomaterials.