Bioinspired Luminescent Europium-Based Probe Capable of Discrimination between Ag+ and Cu.
暂无分享,去创建一个
[1] Céline Cepeda,et al. A novel DOTA-like building block with a picolinate arm for the synthesis of lanthanide complex-peptide conjugates with improved luminescence properties. , 2020, Journal of inorganic biochemistry.
[2] A. Romieu,et al. Using Native Chemical Ligation for Site-specific Synthesis of Hetero-bis-lanthanide Peptide Conjugates: Application to Ratiometric Visible or Near-infrared Detection of Zn2. , 2020, Chemistry.
[3] K. Börjesson,et al. Multiplicity conversion based on intramolecular triplet-to-singlet energy transfer , 2019, Science Advances.
[4] M. Broggini,et al. Silver Ions as a Tool for Understanding Different Aspects of Copper Metabolism , 2019, Nutrients.
[5] M. Kiran,et al. Triarylamine Rhodanine Derivatives as Red Emissive Sensor for Discriminative Detection of Ag+ and Hg2+ ions in Buffer-Free Aqueous Solutions , 2019, ACS Sustainable Chemistry & Engineering.
[6] O. Fedorova,et al. Chemoselective detection of Ag+ in purely aqueous solution using fluorescence ‘turn-on’ probe based on crown-containing 4-methoxy-1,8-naphthalimide , 2019, Mendeleev Communications.
[7] N. McClenaghan,et al. Influence of amino acid sequence in a peptidic Cu+-responsive luminescent probe inspired by the copper chaperone CusF. , 2018, Organic & biomolecular chemistry.
[8] Shang Jia,et al. Tuning the Color Palette of Fluorescent Copper Sensors through Systematic Heteroatom Substitution at Rhodol Cores. , 2017, ACS chemical biology.
[9] A. Roux,et al. Luminescent Zinc Fingers: Zn-Responsive Neodymium Near-Infrared Emission in Water. , 2017, Chemistry.
[10] S. Lutsenko. Copper trafficking to the secretory pathway. , 2016, Metallomics : integrated biometal science.
[11] Juewen Liu,et al. Label-Free Ag+ Detection by Enhancing DNA Sensitized Tb3+ Luminescence , 2016, Sensors.
[12] Antje Sommer,et al. Principles Of Fluorescence Spectroscopy , 2016 .
[13] C. Vidaud,et al. XAS Investigation of Silver(I) Coordination in Copper(I) Biological Binding Sites. , 2015, Inorganic chemistry.
[14] N. McClenaghan,et al. Lanthanide Luminescence Modulation by Cation-π Interaction in a Bioinspired Scaffold: Selective Detection of Copper(I). , 2015, Angewandte Chemie.
[15] K. Binnemans. Interpretation of europium(III) spectra , 2015 .
[16] Dokyoung Kim,et al. Fluorescence sensing systems for gold and silver species. , 2015, Chemical Society reviews.
[17] J. Bünzli. On the design of highly luminescent lanthanide complexes , 2015 .
[18] S. Faulkner,et al. Kinetically Stable Lanthanide Complexes Displaying Exceptionally High Quantum Yields upon Long-Wavelength Excitation: Synthesis, Photophysical Properties, and Solution Speciation. , 2015, Inorganic chemistry.
[19] N. Jackson,et al. Silver resistance in Gram-negative bacteria: a dissection of endogenous and exogenous mechanisms , 2015, The Journal of antimicrobial chemotherapy.
[20] C. Su,et al. Structural mechanisms of heavy-metal extrusion by the Cus efflux system , 2013, BioMetals.
[21] Lisa Gottschlich,et al. Evaluation of quantitative probes for weaker Cu(i) binding sites completes a set of four capable of detecting Cu(i) affinities from nanomolar to attomolar. , 2013, Metallomics : integrated biometal science.
[22] C. Fahrni,et al. High-contrast fluorescence sensing of aqueous Cu(I) with triarylpyrazoline probes: dissecting the roles of ligand donor strength and excited state proton transfer. , 2013, Dalton transactions.
[23] P. Cobine,et al. The copper metallome in eukaryotic cells. , 2013, Metal ions in life sciences.
[24] C. Rensing,et al. The copper metallome in prokaryotic cells. , 2013, Metal ions in life sciences.
[25] Kedong Song,et al. Enhanced fluorescent chemosensor for Ag+ in absolute aqueous solution and living cells: an experimental and theoretical study. , 2012, The Analyst.
[26] Lok Nath Neupane,et al. Highly sensitive turn-on detection of Ag+ in aqueous solution and live cells with a symmetric fluorescent peptide. , 2012, Chemical communications.
[27] T. Hirayama,et al. Near-infrared fluorescent sensor for in vivo copper imaging in a murine Wilson disease model , 2012, Proceedings of the National Academy of Sciences.
[28] J. McCusker,et al. Angular Momentum Conservation in Dipolar Energy Transfer , 2011, Science.
[29] M. J. Jang,et al. Highly selectively monitoring heavy and transition metal ions by a fluorescent sensor based on dipeptide. , 2011, Talanta.
[30] C. Fahrni,et al. Designed to dissolve: suppression of colloidal aggregation of Cu(I)-selective fluorescent probes in aqueous buffer and in-gel detection of a metallochaperone. , 2011, Journal of the American Chemical Society.
[31] S. Singh,et al. Crystal Structures of Multicopper Oxidase CueO Bound to Copper(I) and Silver(I) , 2011, The Journal of Biological Chemistry.
[32] Jun Feng Zhang,et al. Recent progress in fluorescent and colorimetric chemosensors for detection of precious metal ions (silver, gold and platinum ions). , 2011, Chemical Society reviews.
[33] W. Tan,et al. An anion-conjugated polyelectrolyte designed for the selective and sensitive detection of silver(I). , 2011, Chemistry, an Asian journal.
[34] M. Ward. Mechanisms of sensitization of lanthanide(III)-based luminescence in transition metal/lanthanide and anthracene/lanthanide dyads , 2010 .
[35] M. McEvoy,et al. Chaperone-mediated copper handling in the periplasm. , 2010, Natural product reports.
[36] S. Faulkner,et al. Sensitised luminescence in lanthanide containing arrays and d-f hybrids. , 2009, Dalton transactions.
[37] M. Taki,et al. Rosamine-based fluorescent chemosensor for selective detection of silver(I) in an aqueous solution. , 2008, Inorganic chemistry.
[38] T. O’Halloran,et al. A place for thioether chemistry in cellular copper ion recognition and trafficking. , 2008, Nature chemical biology.
[39] D. Thiele,et al. Mechanisms for copper acquisition, distribution and regulation. , 2008, Nature chemical biology.
[40] T. O’Halloran,et al. Cu(I) recognition via cation-pi and methionine interactions in CusF. , 2008, Nature chemical biology.
[41] S. Quici,et al. Luminescence properties and solution dynamics of lanthanide complexes composed by a macrocycle hosting site and naphthalene or quinoline appended chromophore , 2007 .
[42] M. McEvoy,et al. A novel copper-binding fold for the periplasmic copper resistance protein CusF. , 2005, Biochemistry.
[43] Chuan He,et al. A general strategy to convert the MerR family proteins into highly sensitive and selective fluorescent biosensors for metal ions. , 2004, Journal of the American Chemical Society.
[44] J. Verhoeven,et al. The emission spectrum and the radiative lifetime of Eu3+ in luminescent lanthanide complexes , 2002 .
[45] R. Jordan,et al. Complex formation constants for the aqueous copper(I)-acetonitrile system by a simple general method. , 2001, Inorganic chemistry.
[46] W. Horrocks,et al. Photosensitized Near Infrared Luminescence of Ytterbium(III) in Proteins and Complexes Occurs via an Internal Redox Process , 1997 .
[47] J. Williams,et al. Getting excited about lanthanide complexation chemistry , 1996 .
[48] G. Rotilio,et al. Purification and characterization of Ag,Zn-superoxide dismutase from Saccharomyces cerevisiae exposed to silver. , 1994, The Journal of biological chemistry.
[49] H. Shioyama,et al. Fluorescence quenching mechanism of aromatic hydrocarbons by closed-shell heavy metal ions in aqueous and organic solutions , 1984 .
[50] S. Weissman,et al. Intramolecular Energy Transfer The Fluorescence of Complexes of Europium , 1942 .