Chemistry Reference
In-Depth Information
66. Jensen, T.B., Scopelliti, R., and Bunzli, J.-C.G. (2006) Lanthanide triple-stranded helicates:
controlling the yield of the heterobimetallic species. Inorg. Chem. , 45 , 7806-7814.
67. Horrocks, W.deW. Jr and Collier, W.E. (1981) Lanthanide ion luminescence probes. Measure-
ment of distances between intrinsic protein fluorophores and bound metal ions: quantitation of
enegy transfer between tryptophan and Tb(III) or Eu(III) in the calcium-binding protein par-
valbumin. J. Am. Chem. Soc. , 103 , 2856-2856.
68. Horrocks, W.deW. Jr, Rhee, M.-J., Snyder, A.P., and Sudnick, D.R. (1980) Laser-induced
metal ion luminescence: interlanthanide on energy transfer distance measurements in the cal-
cium-binding proteins parvalbumin and thermolysin. Metalloproteins models address a photo-
physical problem. J. Am. Chem. Soc. , 102 , 3650-3652.
69. Hagan, A.K. and Zuchner, T. (2011) Lanthanide-based time-resolved luminescence immuno-
assays. Anal. Bioanal. Chem. , 400 , 2847-2864.
70. Degorce, F., Card, A., Soh, S. et al. (2009) HTRF: a technology tailored for drug discovery - a
review of theoretical aspects and recent applications. Curr. Chem. Genom. , 3 , 22-32.
71. Bunzli, J.-C.G. (2009) Lanthanide luminescent bioprobes. Chem. Lett. , 38 , 104-109.
72. Algar, W.R., Prasuhn, D.E., Stewart, M.H. et al. (2011) The controlled display of biomole-
cules on nanoparticles: a challenge suited to bioorthogonal chemistry. Bioconjugate Chem. ,
22 , 825-858.
73. Wombacher, R. and Cornish, V.W. (2011) Chemical tags: applications in live cell fluorescence
imaging. J. Biophotonics , 4 , 391-402.
74. Kobayashi, H. and Choyke, P.L. (2011) Target-cancer-cell-specific activatable fluorescence
imaging probes: rational design and in vivo applications. Acc. Chem. Res. , 44 , 83-90.
75. Bunzli, J.-C.G. (2010) Lanthanide luminescence for biomedical analyses and imaging. Chem.
Rev. , 110 , 2729-2755.
76. Song, B., Vandevyver, C.D.B., Deiters, E. et al. (2008) Aversatile method for quantification of
DNA and PCR products based on time-resolved Eu III luminescence. Analyst , 133 , 1749-1756.
77. Song, B., Vandevyver, C.D.B., Chauvin, A.-S., and Bunzli, J.-C.G. (2008) Time-resolved
luminescence microscopy of bimetallic lanthanide helicates in living cells. Org. Biomol.
Chem. , 6 , 4125-4133.
78. Eliseeva, S.V., Aubock, G., van Mourik, F. et al. (2010) Multiphoton-excited luminescent lan-
thanide bioprobes: two- and three-photon cross sections of dipicolinates derivatives and binu-
clear helicates. J. Phys. Chem. B , 114 , 2932-2937.
79. D'Aleo, A., Picot, A., Baldeck, P.L. et al. (2008) Design of dipicolinic acid ligands for the
two-photon sensitized luminescence of europium complexes with optimized cross-sections.
Inorg. Chem. , 47 , 10269-10279.
80. Green, N.M. (1963) Avidin .1. Use of [14C]Biotin for kinetic studies and for assay. Biochem.
J. , 89 , 585-591.
81. Prat, O., Lopez, E., and Mathis, G. (1991) Europium(III) cryptate: a fluorescent label for the
detection of DNSA hybrids on solid support. Anal. Biochem. , 195 , 283-289.
82. Claudel-Gillet, S.P., Steibel, J., Weibel, N. et al. (2008) Lanthanide-based conjugates as poly-
valent probes for biological labeling. Eur. J. Inorg. Chem. , 2008 , 2856-2862.
83. Fernandez-Moreira, V., Song, B., Sivagnanam, V. et al. (2010) Bioconjugated lanthanide
luminescent helicates as multilabels for Lab-on-a-Chip detection of cancer biomarkers.
Analyst , 135 , 42-52.
84. Bunzli, J.-C.G., Vandevyver, C.D.B., Chauvin, A.-S. et al. (2011) Lighting up cancerous cells
with lanthanide luminescence. Chimia , 65 , 361.
85. Comby, S., Stomeo, F., McCoy, C.P., and Gunnlaugsson, T. (2009) Formation of novel dinu-
clear lanthanide luminescent Samarium(III), Europium(III), and Terbium(III) triple-stranded
helicates from a C-2-Symmetrical Pyridine-2,6-dicarboxamide-Based 1,3-Xylenediyl-linked
ligand in MeCN. Helv. Chim. Acta , 92 , 2461-2473.
Search WWH ::




Custom Search