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Journal Abstract Search


73 related items for PubMed ID: 21523868

  • 1. Coupling amperometry and total internal reflection fluorescence microscopy at ITO surfaces for monitoring exocytosis of single vesicles.
    Meunier A, Jouannot O, Fulcrand R, Fanget I, Bretou M, Karatekin E, Arbault S, Guille M, Darchen F, Lemaître F, Amatore C.
    Angew Chem Int Ed Engl; 2011 May 23; 50(22):5081-4. PubMed ID: 21523868
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  • 2. Quantifying exocytosis by combination of membrane capacitance measurements and total internal reflection fluorescence microscopy in chromaffin cells.
    Becherer U, Pasche M, Nofal S, Hof D, Matti U, Rettig J.
    PLoS One; 2007 Jun 06; 2(6):e505. PubMed ID: 17551585
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  • 4. Micro- and nanotechnologies for study of cell secretion.
    Huang Y, Cai D, Chen P.
    Anal Chem; 2011 Jun 15; 83(12):4393-406. PubMed ID: 21417447
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  • 6. Imaging exocytosis of single glucagon-like peptide-1 containing granules in a murine enteroendocrine cell line with total internal reflection fluorescent microscopy.
    Ohara-Imaizumi M, Aoyagi K, Akimoto Y, Nakamichi Y, Nishiwaki C, Kawakami H, Nagamatsu S.
    Biochem Biophys Res Commun; 2009 Dec 04; 390(1):16-20. PubMed ID: 19766598
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  • 7. A Dual Functional Electroactive and Fluorescent Probe for Coupled Measurements of Vesicular Exocytosis with High Spatial and Temporal Resolution.
    Liu X, Savy A, Maurin S, Grimaud L, Darchen F, Quinton D, Labbé E, Buriez O, Delacotte J, Lemaître F, Guille-Collignon M.
    Angew Chem Int Ed Engl; 2017 Feb 20; 56(9):2366-2370. PubMed ID: 28117543
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  • 8. Differential properties of GTP- and Ca(2+)-stimulated exocytosis from large dense core vesicles.
    Bai L, Zhu D, Zhou K, Zhou W, Li D, Wang Y, Zhang R, Xu T.
    Traffic; 2006 Apr 20; 7(4):416-28. PubMed ID: 16536740
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  • 9. On-chip amperometric measurement of quantal catecholamine release using transparent indium tin oxide electrodes.
    Sun X, Gillis KD.
    Anal Chem; 2006 Apr 15; 78(8):2521-5. PubMed ID: 16615759
    [Abstract] [Full Text] [Related]

  • 10. Indium Tin Oxide devices for amperometric detection of vesicular release by single cells.
    Meunier A, Fulcrand R, Darchen F, Guille Collignon M, Lemaître F, Amatore C.
    Biophys Chem; 2012 Mar 15; 162():14-21. PubMed ID: 22257976
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  • 11. Spatio-temporal detachment of single cells using microarrayed transparent electrodes.
    Fukuda J, Kameoka Y, Suzuki H.
    Biomaterials; 2011 Oct 15; 32(28):6663-9. PubMed ID: 21665269
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  • 13. Visualization of Rab3A dissociation during exocytosis: a study by total internal reflection microscopy.
    Lin CC, Huang CC, Lin KH, Cheng KH, Yang DM, Tsai YS, Ong RY, Huang YN, Kao LS.
    J Cell Physiol; 2007 May 15; 211(2):316-26. PubMed ID: 17149709
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  • 16. Exocytotic vesicle behaviour assessed by total internal reflection fluorescence microscopy.
    Burchfield JG, Lopez JA, Mele K, Vallotton P, Hughes WE.
    Traffic; 2010 Apr 15; 11(4):429-39. PubMed ID: 20070611
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  • 17. Coupling electrochemistry and TIRF-microscopy with the fluorescent false neurotransmitter FFN102 supports the fluorescence signals during single vesicle exocytosis detection.
    Liu X, Hu L, Pan N, Grimaud L, Labbé E, Buriez O, Delacotte J, Lemaître F, Guille-Collignon M.
    Biophys Chem; 2018 Apr 15; 235():48-55. PubMed ID: 29477767
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  • 18. Renewable and optically transparent electroactive indium tin oxide surfaces for chemoselective ligand immobilization and biospecific cell adhesion.
    Luo W, Westcott NP, Pulsipher A, Yousaf MN.
    Langmuir; 2008 Nov 18; 24(22):13096-101. PubMed ID: 18928305
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