Nanosensing at the single cell level.
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[1] Tuan Vo-Dinh,et al. Antibody-Based Submicron Biosensor for Benzo[A]Pyrene DNA Adduct , 1996 .
[2] B J Tromberg,et al. Development of antibody-based fiber-optic sensors for detection of a benzo[a]pyrene metabolite. , 1988, Analytical chemistry.
[3] T. Vo‐Dinh,et al. Optical sensor for the detection of caspase-9 activity in a single cell. , 2004, Journal of the American Chemical Society.
[4] B. Eggins. Chemical Sensors and Biosensors , 2002 .
[5] Thomas L. Lentz,et al. Advances in Optical and Electron Microscopy , 1970, The Yale Journal of Biology and Medicine.
[6] Tuan Vo-Dinh,et al. Antibody-based nanoprobe for measurement of a fluorescent analyte in a single cell , 2000, Nature Biotechnology.
[7] T. Vo‐Dinh,et al. A fiber-optic cyclodextrin-based sensor. , 1991, Talanta.
[8] D. Green,et al. Suicidal Tendencies: Apoptotic Cell Death by Caspase Family Proteinases* , 1999, The Journal of Biological Chemistry.
[9] Tuan Vo-Dinh,et al. Nanosensors and biochips: frontiers in biomolecular diagnostics , 2001 .
[10] Tuan Vo-Dinh,et al. Immunosensors: Principles and Applications , 1993 .
[11] Robert J. Chichester,et al. Single Molecules Observed by Near-Field Scanning Optical Microscopy , 1993, Science.
[12] Tuan Vo-Dinh,et al. Fluorescence monitoring of a benzo[a]pyrene metabolite using a regenerable immunochemical-based fiber-optic sensor , 1990 .
[13] M. Sepaniak,et al. Construction and evaluation of a regenerable fluoroimmunochemical-based fibre optic biosensor , 1991 .
[14] T. Vo‐Dinh,et al. Nanosensor for in vivo measurement of the carcinogen benzo[a]pyrene in a single cell. , 2002, Journal of nanoscience and nanotechnology.
[15] Dieter W. Pohl. Scanning Near-field Optical Microscopy (SNOM) , 1991 .
[16] Tuan Vo-Dinh,et al. Nanoprobes and nanobiosensors for monitoring and imaging individual living cells. , 2006, Nanomedicine : nanotechnology, biology, and medicine.
[17] T. Vo‐Dinh,et al. Biosensors and biochips: advances in biological and medical diagnostics , 2000, Fresenius' journal of analytical chemistry.
[18] T. Vo-Dinh,et al. Antibody-Based Fiberoptics Biosensor for the Carcinogen Benzo(a)pyrene , 1987 .
[19] Tuan Vo-Dinh,et al. Surface-enhanced Raman spectroscopy using metallic nanostructures , 1998 .
[20] T. Vo‐Dinh,et al. Antibody-based biosensor for breast cancer with ultrasonic regeneration. , 2000, Journal of biomedical optics.
[21] D. Green,et al. Caspase-mediated loss of mitochondrial function and generation of reactive oxygen species during apoptosis , 2003, The Journal of cell biology.
[22] T. Vo‐Dinh,et al. Intracellular measurements in mammary carcinoma cells using fiber-optic nanosensors. , 2000, Analytical biochemistry.
[23] R Zenobi,et al. Near-Field Surface-Enhanced Raman Imaging of Dye-Labeled DNA with 100-nm Resolution. , 1998, Analytical chemistry.
[24] Catherine Zandonella,et al. Cell nanotechnology: The tiny toolkit , 2003, Nature.
[25] Tuan Vo-Dinh,et al. NEAR-FIELD SURFACE-ENHANCED RAMAN SPECTROSCOPY OF DYE MOLECULES ADSORBED ON SILVER ISLAND FILMS , 1998 .
[26] Raoul Kopelman,et al. Development of submicron chemical fiber optic sensors , 1992 .
[27] H. Hug,et al. Rhodamine 110-linked amino acids and peptides as substrates to measure caspase activity upon apoptosis induction in intact cells. , 1999, Biochemistry.
[28] R. Kopelman,et al. Submicrometer intracellular chemical optical fiber sensors. , 1992, Science.
[29] M. Hengartner. Apoptosis: DNA destroyers , 2001, Nature.