Bright Green Light-Emitting Gold Nanoclusters Confined in Insulin as Selective Fluorescent Switch Probes for Sensing and Imaging of Copper Ions and Glutathione
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M. Shamsipur | H. Naderi-manesh | M. Gholivand | A. Barati | Behnaz Shojaedin-Givi | Behnam Hajipour Verdom | E. Babaee | Farimah Mousavi | F. Molaabasi
[1] S. Sadanandan,et al. Ligand-protected nanoclusters and their role in agriculture, sensing and allied applications. , 2021, Talanta.
[2] D. Gianolio,et al. Tuning the Optical Properties of Au Nanoclusters by Designed Proteins , 2021, Advanced Optical Materials.
[3] Z. Murthy,et al. Biomolecules as promising ligands in the synthesis of metal nanoclusters: Sensing, bioimaging and catalytic applications , 2021 .
[4] Xiaofeng Wang,et al. Induction of apoptosis in Trypanosoma brucei following endocytosis of ultra-small noble metal nanoclusters , 2021 .
[5] B. Tang,et al. Fluorescence switch of gold nanoclusters stabilized with bovine serum albumin for efficient and sensitive detection of cysteine and copper ion in mice with Alzheimer's disease. , 2021, Talanta.
[6] Kasturi Muthoosamy,et al. Integrating gold nanoclusters, folic acid and reduced graphene oxide for nanosensing of glutathione based on “turn-off” fluorescence , 2021, Scientific reports.
[7] Zhennan Wu,et al. Luminescent metal nanoclusters: Biosensing strategies and bioimaging applications , 2021, Aggregate.
[8] P. D. Tzanavaras,et al. Determination of glutathione and glutathione disulfide using zone fluidics and fluorimetric detection. , 2021, Talanta.
[9] M. Čuperlović-Culf,et al. Role of Glutathione in Cancer: From Mechanisms to Therapies , 2020, Biomolecules.
[10] Peng Wu,et al. Origin of the Photoluminescence of Metal Nanoclusters: From Metal-Centered Emission to Ligand-Centered Emission , 2020, Nanomaterials.
[11] Hao Tan,et al. Mechanism of Photoluminescence in Ag Nanoclusters: Metal-Centered Emission versus Synergistic Effect in Ligand-Centered Emission , 2019, The Journal of Physical Chemistry C.
[12] M. Shamsipur,et al. A rhodium-decorated carbon nanotube cathode material in the dye-sensitized solar cell: Conversion efficiency reached to 11% , 2019, Electrochimica Acta.
[13] Feng-xia Shen,et al. Fluorescent methionine-capped gold nanoclusters for ultra-sensitive determination of copper(II) and cobalt(II), and their use in a test strip , 2019, Microchimica Acta.
[14] M. Shamsipur,et al. Determination of Hg2+ and Cu2+ ions by dual-emissive Ag/Au nanocluster/carbon dots nanohybrids: Switching the selectivity by pH adjustment. , 2019, Journal of hazardous materials.
[15] M. Shamsipur,et al. A highly selective semiconducting polymer dots-based "off-on" fluorescent nanoprobe for iron, copper and histidine detection and imaging in living cells. , 2019, Talanta.
[16] M Jayasree,et al. Fluorescence turn on detection of bilirubin using Fe (III) modulated BSA stabilized copper nanocluster; A mechanistic perception. , 2018, Analytica chimica acta.
[17] M. Shamsipur,et al. Photoluminescence Mechanisms of Dual-Emission Fluorescent Silver Nanoclusters Fabricated by Human Hemoglobin Template: From Oxidation- and Aggregation-Induced Emission Enhancement to Targeted Drug Delivery and Cell Imaging , 2018, ACS Sustainable Chemistry & Engineering.
[18] M. Shamsipur,et al. Facile preparation and characterization of new green emitting carbon dots for sensitive and selective off/on detection of Fe3+ ion and ascorbic acid in water and urine samples and intracellular imaging in living cells. , 2018, Talanta.
[19] M. Shamsipur,et al. One-step synthesis and characterization of highly luminescent nitrogen and phosphorus co-doped carbon dots and their application as highly selective and sensitive nanoprobes for low level detection of uranyl ion in hair and water samples and application to cellular imaging , 2018 .
[20] Weisheng Liu,et al. Fluorescent glutathione probe based on MnO2–Si quantum dots nanocomposite directly used for intracellular glutathione imaging , 2018 .
[21] M. Behmanesh,et al. The Static Magnetic Field Remotely Boosts the Efficiency of Doxorubicin through Modulating ROS Behaviors , 2018, Scientific Reports.
[22] A. Patra,et al. Core-Size Dependent Fluorescent Gold Nanoclusters and Ultrasensitive Detection of Pb2+ Ion , 2017 .
[23] S. Friedman,et al. Light Control of Protein Solubility Through Isoelectric Point Modulation. , 2017, Journal of the American Chemical Society.
[24] M. Shamsipur,et al. Ultrasensitive aflatoxin B1 assay based on FRET from aptamer labelled fluorescent polymer dots to silver nanoparticles labeled with complementary DNA , 2017, Microchimica Acta.
[25] Shenghong Yang,et al. Reversible Fluorescence Probe Based on N-Doped Carbon Dots for the Determination of Mercury Ion and Glutathione in Waters and Living Cells. , 2017, Analytical sciences : the international journal of the Japan Society for Analytical Chemistry.
[26] Chen Zhou,et al. Glutathione-Mediated Cu(I)/Cu(II) Complexes: Valence-Dependent Effects on Clearance and In Vivo Imaging Application , 2017, Nanomaterials.
[27] Lin Li,et al. Multi-talented applications for cell imaging, tumor cells recognition, patterning, staining and temperature sensing by using egg white-encapsulated gold nanoclusters , 2017 .
[28] M. Shamsipur,et al. Efficient On-Off Ratiometric Fluorescence Probe for Cyanide Ion Based on Perturbation of the Interaction between Gold Nanoclusters and a Copper(II)-Phthalocyanine Complex. , 2016, ACS applied materials & interfaces.
[29] H. Speisky,et al. Redox-implications associated with the formation of complexes between copper ions and reduced or oxidized glutathione. , 2016, Journal of inorganic biochemistry.
[30] Ting Xu,et al. Green synthesis of fluorescent copper nanoclusters for reversible pH-sensors , 2015 .
[31] Z. Li,et al. A rapid fluorescence "switch-on" assay for glutathione detection by using carbon dots-MnO2 nanocomposites. , 2015, Biosensors & bioelectronics.
[32] Xingguo Chen,et al. Switch-on fluorescence sensing of glutathione in food samples based on a graphitic carbon nitride quantum dot (g-CNQD)-Hg²⁺ chemosensor. , 2015, Journal of agricultural and food chemistry.
[33] M. Shamsipur,et al. Novel blue-emitting gold nanoclusters confined in human hemoglobin, and their use as fluorescent probes for copper(II) and histidine , 2015, Microchimica Acta.
[34] Paolo Tosco,et al. Bringing the MMFF force field to the RDKit: implementation and validation , 2014, Journal of Cheminformatics.
[35] M. Kim,et al. A label-free method for detecting biological thiols based on blocking of Hg2+-quenching of fluorescent gold nanoclusters. , 2013, Biosensors & bioelectronics.
[36] X. Wen,et al. Metallophilic Bond‐Induced Quenching of Delayed Fluorescence in Au25@BSA Nanoclusters , 2013 .
[37] R. Leblanc,et al. Human insulin fibril-assisted synthesis of fluorescent gold nanoclusters in alkaline media under physiological temperature. , 2013, Colloids and surfaces. B, Biointerfaces.
[38] Changqing Zhu,et al. Gold nanocluster-based fluorescent probes for near-infrared and turn-on sensing of glutathione in living cells. , 2012, Langmuir : the ACS journal of surfaces and colloids.
[39] Buyin Li,et al. Facile preparation of highly blue fluorescent metal nanoclusters in organic media , 2012 .
[40] Y. Hsiao,et al. Insulin-directed synthesis of fluorescent gold nanoclusters: preservation of insulin bioactivity and versatility in cell imaging. , 2011, Angewandte Chemie.
[41] Hongzheng Chen,et al. Blending of HAuCl4 and histidine in aqueous solution: a simple approach to the Au10 cluster. , 2011, Nanoscale.
[42] W. Tseng,et al. Ultrasensitive sensing of Hg(2+) and CH(3)Hg(+) based on the fluorescence quenching of lysozyme type VI-stabilized gold nanoclusters. , 2010, Analytical chemistry.
[43] C. Marzano,et al. Copper in diseases and treatments, and copper‐based anticancer strategies , 2009, Medicinal research reviews.
[44] Laurent Ducry,et al. Antibody-drug conjugates: linking cytotoxic payloads to monoclonal antibodies. , 2010, Bioconjugate chemistry.
[45] Jianping Xie,et al. Protein-directed synthesis of highly fluorescent gold nanoclusters. , 2009, Journal of the American Chemical Society.
[46] J. Stewart. Optimization of parameters for semiempirical methods V: Modification of NDDO approximations and application to 70 elements , 2007, Journal of molecular modeling.
[47] O. Wolfbeis,et al. Optical multiple chemical sensing: status and current challenges. , 2007, The Analyst.
[48] A. Henglein,et al. Radiolytic Preparation of Ultrafine Colloidal Gold Particles in Aqueous Solution: Optical Spectrum, Controlled Growth, and Some Chemical Reactions , 1999 .
[49] J. D. Winefordner,et al. Limit of detection. A closer look at the IUPAC definition , 1983 .
[50] R. Hilf,et al. A fluorometric method for determination of oxidized and reduced glutathione in tissues. , 1976, Analytical biochemistry.
[51] E. Wehry,et al. Interactions of transition-metal ions with photoexcited states of flavins. Fluorescence quenching studies. , 1972, Journal of the American Chemical Society.