A simple, water soluble flavone-based fluorescent probe for fast detection of Cys
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[1] Jianbin Chao,et al. An off-on fluorescent probe for specifically detecting cysteine and its application in bioimaging , 2016 .
[2] Yun Hak Lee,et al. Highly selective two-photon imaging of cysteine in cancerous cells and tissues. , 2015, Chemical communications.
[3] S. Mukherjee,et al. Selective fluorescence swing from cysteine to glutathione by switchover from solid to in situ probe in 100% water and bio-imaging studies for living species , 2015 .
[4] C. Tung,et al. BODIPY-based fluorometric sensor for the simultaneous determination of Cys, Hcy, and GSH in human serum. , 2015, ACS applied materials & interfaces.
[5] G. Liang,et al. Discriminative fluorescence sensing of biothiols in vitro and in living cells. , 2015, Analytical chemistry.
[6] W. Liu,et al. Two-photon fluorescent probe derived from naphthalimide for cysteine detection and imaging in living cells. , 2015, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[7] Zhentao Huang,et al. Dual emission channels for sensitive discrimination of Cys/Hcy and GSH in plasma and cells. , 2015, Chemical communications.
[8] Dokyoung Kim,et al. Ratiometric fluorescence detection of cysteine and homocysteine with a BODIPY dye by mimicking the native chemical ligation. , 2015, The Analyst.
[9] Xianfeng Lin,et al. A multi-functional probe to discriminate Lys, Arg, His, Cys, Hcy and GSH from common amino acids. , 2015, Chemical communications.
[10] Yao Liu,et al. Rapid and ratiometric fluorescent detection of cysteine with high selectivity and sensitivity by a simple and readily available probe. , 2014, ACS applied materials & interfaces.
[11] B. Tang,et al. A highly sensitive near-infrared fluorescent probe for cysteine and homocysteine in living cells. , 2013, Chemical communications.
[12] Yanfeng Dai,et al. A highly selective colorimetric sensor for cysteine and homocysteine based on a new photochromic diarylethene , 2013 .
[13] Xiaoling Zhang,et al. A Chloroacetate-Caged Fluorescein Chemodosimeter for Imaging Cysteine/Homocysteine in Living Cells , 2013 .
[14] B. André,et al. Heptahelical protein PQLC2 is a lysosomal cationic amino acid exporter underlying the action of cysteamine in cystinosis therapy , 2012, Proceedings of the National Academy of Sciences.
[15] Jong Seung Kim,et al. Molecular modulated cysteine-selective fluorescent probe. , 2012, Biomaterials.
[16] Shaomin Ji,et al. A highly selective red-emitting FRET fluorescent molecular probe derived from BODIPY for the detection of cysteine and homocysteine: an experimental and theoretical study , 2012 .
[17] Weili Zhao,et al. A selective fluorescent turn-on NIR probe for cysteine. , 2012, Organic & biomolecular chemistry.
[18] Jin‐Ming Lin,et al. Specific detection of cysteine and homocysteine in biological fluids by tuning the pH values of fluorosurfactant-stabilized gold colloidal solution. , 2011, Biosensors & bioelectronics.
[19] Shaomin Ji,et al. Colorimetric and ratiometric fluorescent chemosensor based on diketopyrrolopyrrole for selective detection of thiols: an experimental and theoretical study. , 2011, The Journal of organic chemistry.
[20] L. Kluijtmans,et al. Cysteamine restores glutathione redox status in cultured cystinotic proximal tubular epithelial cells. , 2011, Biochimica et biophysica acta.
[21] Kyoung Chul Ko,et al. Coumarin-based thiol chemosensor: synthesis, turn-on mechanism, and its biological application. , 2011, Organic letters.
[22] Lin Yuan,et al. Construction of a FRET-based ratiometric fluorescent thiol probe. , 2011, Chemical communications.
[23] Ji Hee Han,et al. A two-photon fluorescent probe for thiols in live cells and tissues. , 2010, Journal of the American Chemical Society.
[24] M. Tian,et al. A fluorescent chemodosimeter specific for cysteine: effective discrimination of cysteine from homocysteine. , 2009, Chemical communications.
[25] Hong Zheng,et al. A colorimetric and fluorescent merocyanine-based probe for biological thiols. , 2009, Organic & biomolecular chemistry.
[26] Shelly C. Lu. Regulation of glutathione synthesis. , 2009, Molecular aspects of medicine.
[27] X. Guan,et al. Determination of thiols and disulfides via HPLC quantification of 5-thio-2-nitrobenzoic acid. , 2008, Journal of pharmaceutical and biomedical analysis.
[28] Jong‐In Hong,et al. Fluorescence turn-on probe for homocysteine and cysteine in water. , 2008, Chemical communications.
[29] Lin Yuan,et al. A ratiometric fluorescent probe for cysteine and homocysteine displaying a large emission shift. , 2008, Organic letters.
[30] Shusheng Zhang,et al. Determination of physiological thiols by electrochemical detection with piazselenole and its application in rat breast cancer cells 4T-1. , 2008, Journal of the American Chemical Society.
[31] T. Nolin,et al. Simultaneous determination of total homocysteine, cysteine, cysteinylglycine, and glutathione in human plasma by high-performance liquid chromatography: application to studies of oxidative stress. , 2007, Journal of chromatography. B, Analytical technologies in the biomedical and life sciences.
[32] Rong-Hua Yang,et al. A spiropyran-based ensemble for visual recognition and quantification of cysteine and homocysteine at physiological levels. , 2006, Angewandte Chemie.
[33] Hideki Kandori,et al. Reactive cysteine is protonated in the triplet excited state of the LOV2 domain in Adiantum phytochrome3. , 2005, Journal of the American Chemical Society.
[34] Perminder Sachdev,et al. Homocysteine, cerebrovascular disease and brain atrophy , 2004, Journal of the Neurological Sciences.
[35] G. Werstuck,et al. Role of hyperhomocysteinemia in endothelial dysfunction and atherothrombotic disease , 2004, Cell Death and Differentiation.
[36] Siyuan Zhang,et al. Critical roles of intracellular thiols and calcium in parthenolide-induced apoptosis in human colorectal cancer cells. , 2004, Cancer letters.
[37] Guoyao Wu,et al. Glutathione metabolism and its implications for health. , 2004, The Journal of nutrition.
[38] R. Cortvrindt,et al. Capacity of adult and prepubertal mouse oocytes to undergo embryo development in the presence of cysteamine , 2003, Molecular reproduction and development.
[39] S. Shahrokhian,et al. Lead phthalocyanine as a selective carrier for preparation of a cysteine-selective electrode. , 2001, Analytical chemistry.
[40] G. Federici,et al. Determination of blood total, reduced, and oxidized glutathione in pediatric subjects. , 2001, Clinical chemistry.
[41] Y. Menezo,et al. Oxidative stress and protection against reactive oxygen species in the pre-implantation embryo and its surroundings. , 2001, Human reproduction update.
[42] R. Schirmer,et al. The Thioredoxin System of the Malaria Parasite Plasmodium falciparum , 2000, The Journal of Biological Chemistry.
[43] T. Inoue,et al. Electrochemical detection of thiols with a coenzyme pyrroloquinoline quinone modified electrode. , 2000, Analytical chemistry.
[44] M. MacCoss,et al. Measurement of homocysteine concentrations and stable isotope tracer enrichments in human plasma. , 1999, Analytical chemistry.
[45] Jong Seung Kim,et al. A cysteine-selective fluorescent probe for the cellular detection of cysteine. , 2012, Biomaterials.
[46] Neil Burford,et al. Definitive identification of cysteine and glutathione complexes of bismuth by mass spectrometry: assessing the biochemical fate of bismuth pharmaceutical agents. , 2003, Chemical communications.