A highly selective long-wavelength fluorescent probe for the detection of human carboxylesterase 2 and its biomedical applications.
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Liang Xu | Guangbo Ge | Ling Yang | Jingnan Cui | X. Lv | Lei Feng | J. Ning | J. Hou | Zhao-ming Liu | Jing Ning
[1] Q. Zheng,et al. A long-wavelength-emitting fluorescent turn-on probe for imaging hydrogen sulfide in living cells , 2014 .
[2] S. Botchway,et al. Ditopic boronic acid and imine-based naphthalimide fluorescence sensor for copper(II). , 2014, Chemical communications.
[3] Xiao‐Qi Yu,et al. A highly selective water-soluble optical probe for endogenous peroxynitrite. , 2014, Chemical communications.
[4] Guangbo Ge,et al. A highly selective ratiometric fluorescent probe for in vitro monitoring and cellular imaging of human carboxylesterase 1. , 2014, Biosensors & bioelectronics.
[5] Qian Sun,et al. Rational design of biotinylated probes: fluorescent turn-on detection of (strept)avidin and bioimaging in cancer cells. , 2014, Chemical communications.
[6] H. Ihmels,et al. Selective ratiometric detection of H2O2 in water and in living cells with boronobenzo[b]quinolizinium derivatives. , 2014, Chemical communications.
[7] Shih-Hsiung Wu,et al. Synthesis and evaluation of turn-on fluorescent probes for imaging steroid sulfatase activities in cells. , 2014, Chemical communications.
[8] Fang Zeng,et al. Ratiometric fluorescence assay for γ-glutamyltranspeptidase detection based on a single fluorophore via analyte-induced variation of substitution. , 2014, Chemical communications.
[9] Q. Wei,et al. A highly selective ratiometric visual and red-emitting fluorescent dual-channel probe for imaging fluoride anions in living cells. , 2014, Biosensors & bioelectronics.
[10] Q. Wei,et al. A highly selective colorimetric and long-wavelength fluorescent probe for Hg2+ , 2014 .
[11] Jiangli Fan,et al. A near-infrared fluorescent probe for selective detection of HClO based on Se-sensitized aggregation of heptamethine cyanine dye. , 2014, Chemical communications.
[12] Weihong Zhu,et al. A near-infrared colorimetric fluorescent chemodosimeter for the detection of glutathione in living cells. , 2014, Chemical communications.
[13] Juyoung Yoon,et al. Recent progress in the development of near-infrared fluorescent probes for bioimaging applications. , 2014, Chemical Society reviews.
[14] Yufang Xu,et al. A highly sensitive long-wavelength fluorescence probe for nitroreductase and hypoxia: selective detection and quantification. , 2013, Chemical communications.
[15] Guangbo Ge,et al. A highly selective probe for human cytochrome P450 3A4: isoform selectivity, kinetic characterization and its applications. , 2013, Chemical communications.
[16] D. Angiolillo,et al. Carboxylesterase 1 as a Determinant of Clopidogrel Metabolism and Activation , 2013, The Journal of Pharmacology and Experimental Therapeutics.
[17] Kaibo Zheng,et al. Far-red to near infrared analyte-responsive fluorescent probes based on organic fluorophore platforms for fluorescence imaging. , 2013, Chemical Society reviews.
[18] Yuichiro Sato,et al. Simultaneous Absolute Protein Quantification of Carboxylesterases 1 and 2 in Human Liver Tissue Fractions using Liquid Chromatography-Tandem Mass Spectrometry , 2012, Drug Metabolism and Disposition.
[19] M. Ross,et al. Examination of the carboxylesterase phenotype in human liver. , 2012, Archives of biochemistry and biophysics.
[20] Jianjun Du,et al. Fluorescent chemodosimeters using "mild" chemical events for the detection of small anions and cations in biological and environmental media. , 2012, Chemical Society reviews.
[21] E. T. Williams,et al. Characterization of Recombinant Human Carboxylesterases: Fluorescein Diacetate as a Probe Substrate for Human Carboxylesterase 2 , 2011, Drug Metabolism and Disposition.
[22] Shigeki Iwanaga,et al. Superresolution imaging of targeted proteins in fixed and living cells using photoactivatable organic fluorophores. , 2010, Journal of the American Chemical Society.
[23] J. Bauman,et al. Utility of the carboxylesterase inhibitor bis-para-nitrophenylphosphate (BNPP) in the plasma unbound fraction determination for a hydrolytically unstable amide derivative and agonist of the TGR5 receptor , 2010, Xenobiotica; the fate of foreign compounds in biological systems.
[24] J. Cashman,et al. Human Carboxylesterase 1 Stereoselectively Binds the Nerve Agent Cyclosarin and Spontaneously Hydrolyzes the Nerve Agent Sarin , 2010, Molecular Pharmacology.
[25] Yan Jiang,et al. Age- and Sex-Related Expression and Activity of Carboxylesterase 1 and 2 in Mouse and Human Liver , 2009, Drug Metabolism and Disposition.
[26] Soma Das,et al. Comprehensive pharmacogenetic analysis of irinotecan neutropenia and pharmacokinetics. , 2009, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[27] W. E. Moerner,et al. A photoactivatable push-pull fluorophore for single-molecule imaging in live cells. , 2008, Journal of the American Chemical Society.
[28] M. Sogorb,et al. Serum albumin is as efficient as paraxonase in the detoxication of paraoxon at toxicologically relevant concentrations. , 2008, Chemical research in toxicology.
[29] Masakiyo Hosokawa,et al. Structure and Catalytic Properties of Carboxylesterase Isozymes Involved in Metabolic Activation of Prodrugs , 2008, Molecules.
[30] Jian Yang,et al. Antiplatelet Agents Aspirin and Clopidogrel Are Hydrolyzed by Distinct Carboxylesterases, and Clopidogrel Is Transesterificated in the Presence of Ethyl Alcohol , 2006, Journal of Pharmacology and Experimental Therapeutics.
[31] M. Wierdl,et al. Intracellular inhibition of carboxylesterases by benzil: modulation of CPT-11 cytotoxicity , 2006, Molecular Cancer Therapeutics.
[32] D. Murry,et al. Hydrolysis of Capecitabine to 5′-Deoxy-5-fluorocytidine by Human Carboxylesterases and Inhibition by Loperamide , 2005, Journal of Pharmacology and Experimental Therapeutics.
[33] M. Redinbo,et al. Mammalian carboxylesterases: from drug targets to protein therapeutics. , 2005, Drug discovery today.
[34] F. Kruyt,et al. Secreted and tumour targeted human carboxylesterase for activation of irinotecan , 2002, British Journal of Cancer.
[35] J Verweij,et al. Clinical pharmacokinetics and metabolism of irinotecan (CPT-11). , 2001, Clinical cancer research : an official journal of the American Association for Cancer Research.
[36] C. Morton,et al. Proficient metabolism of irinotecan by a human intestinal carboxylesterase. , 2000, Cancer research.
[37] M. Dolan,et al. Characterization of CPT-11 hydrolysis by human liver carboxylesterase isoforms hCE-1 and hCE-2. , 2000, Cancer research.
[38] W E Moerner,et al. Enzymatic activation of nitro-aryl fluorogens in live bacterial cells for enzymatic turnover-activated localization microscopy† , 2013, Chemical science.
[39] P. Potter,et al. Organ-specific carboxylesterase profiling identifies the small intestine and kidney as major contributors of activation of the anticancer prodrug CPT-11. , 2011, Biochemical pharmacology.
[40] B. Anderson,et al. Applications of carboxylesterase activity in environmental monitoring and toxicity identification evaluations (TIEs). , 2008, Reviews of environmental contamination and toxicology.
[41] Teruko Imai,et al. Human carboxylesterase isozymes: catalytic properties and rational drug design. , 2006, Drug metabolism and pharmacokinetics.
[42] Rui Wang,et al. Molecular dynamics simulations of interaction between protein-tyrosine phosphatase 1B and a bidentate inhibitor , 2006, Acta Pharmacologica Sinica.
[43] H. McLeod,et al. Lessons learned from the irinotecan metabolic pathway. , 2003, Current medicinal chemistry.
[44] M Hosokawa,et al. The mammalian carboxylesterases: from molecules to functions. , 1998, Annual review of pharmacology and toxicology.
[45] Stephen E. Flower,et al. Opus: University of Bath Online Publication Store Chemical Science a Water-soluble Boronate-based Fluorescent Probe for the Selective Detection of Peroxynitrite and Imaging in Living Cells † , 2022 .