Biomedical Engineering Reference
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40. H. Cai, Y. Wang, P. He, and Y. Fang, Electrochemical detection of DNA hybridization based on silver-
enhanced gold nanoparticle label. Anal. Chim. Acta 469 , 165-172 (2002).
41. T.M.H. Lee, L.L. Li, and I.M. Hsing, Enhanced electrochemical detection of DNA hybridization based
on electrode-surface modifi cation. Langmuir 19 , 4338-4343 (2003).
42. T.M.H. Lee, M. Carles, and I.M. Hsing, Microfabricated PCR-electrochemical device for simultaneous
DNA amplifi cation and detection. Lab. Chip 3 , 100-105 (2003).
43. J. Wang, O. Rincon, R. Polsky, and E. Dominguez, Electrochemical detection of DNA hybridization
based on DNA-templated assembly of silver cluster. Electrochem. Commun . 5 , 83-86 (2003).
44. E. Braun, Y. Eichen, U. Sivan, and G. Ben-Yoseph, DNA-templated assembly and electrode attachment
of a conducting silver wire. Nature 391 , 775-778 (1998).
45. J. Richter, R. Seidel, R. Kirsch, M. Mertig, W. Pompe, J. Plashke, and H. Schackert, Nanoscale palla-
dium metallization of DNA. Adv. Mater. 12 , 507-510 (2000).
46. M. Mertig, L.C. Ciacchi, R. Siedel, W. Pompe, and A. de Vita, DNA as a selective metallization tem-
plate. Nano Lett. 2 , 841-844 (2002).
47. S. Park, T.A. Taton, and C.A. Mirkin, Array-based electrical detection of DNA with nanoparticle probes.
Science 295 , 1503-1506 (2002).
48. M. Urban, R. Moller, and W. Fritzsche, A paralleled readout system for an electrical DNA-hybridization
assay based on a microstructured electrode array. Rev. Sci. Instrum . 74 , 1077-1081 (2003).
49. H. Cai, C. Xu, P. He, and Y. Fang, Colloid Au-enhanced DNA immobilization for the electrochemical
detection of sequence-specifi c DNA. J. Electroanal. Chem. 510 , 78-85(2001).
50. I. Willner, P. Patolsky, and J. Wasserman, Photoelectrochemistry with controlled DNA-cross-linked CdS
nanoparticle arrays. Angew. Chem. Int. Ed. 40 , 1861-1864 (2001).
51. M. Cais, S. Dani, Y. Eden, O. Gandolfi , M. Horn, E.E. Isaacs, Y. Joseph, Y. Saar, E. Slovin, and L.
Snarskt, Metalloimmunoassay. Nature 270, 534-535 (1977).
52. M.J. Doyle, H.B. Halsall, and W.R. Heineman, Heterogeneous immunoassay for serum proteins by dif-
ferential pulse anodic stripping voltammetry. Anal. Chem . 54 , 2318-2322 (1982).
53. B. Limoges, C. Degrand, and P.J. Brossier, Redox cationic or procationic labeled drugs detected at a
perfl uorosulfonated ionomer fi lm-coated electrode. J. Electroanal. Chem. 402 , 175-187 (1996).
54. F.J. Hayes, H.B. Halsall, and W.R. Heineman, Simultaneous immunoassay using electrochemical detec-
tion of metal ion labels. Anal. Chem . 66 , 1860-1865 (1994).
55. J. Wang, B. Tian, and K.R. Rogers, Thick-fi lm electrochemical immunosensor based on stripping poten-
tiometric detection of a metal ion label. Anal. Chem . 70, 1682-1685 (1998).
56. M. Dequaire, C. Degrand, and B. Limoges, An electrochemical metalloimmunoassay based on a colloi-
dal gold label. Anal. Chem. 72 , 5521-5528 (2000).
57. X. Chu, X. Fu, K. Chen, G. Shen, and R. Yu, An electrochemical stripping metalloimmunoassay based
on silver-enhanced gold nanoparticle label. Biosens. Bioelectron. 20 , 1805-1812 (2005).
58. X. Mao, J.H. Jiang, J.W. Chen, Y. Huang, G.L. Shen, and R.Q. Yu, Cyclic accumulation of nanoparti-
cles: a new strategy for electrochemical immunoassay based on the reversible reaction between dethio-
biotin and avidin. Anal. Chim. Acta 557 , 159-163 (2006).
59. G.Z. Zhou, J.S. Li, J.H. Jiang, G.L. Shen, and R. Yu, Chronopotentiometry based on nano-Au labeled
aggregate enlargement used for the immunoassay of complement C 3. Acta Chimi. Sinica 63 , 2093-2097
(2005).
60. K.T. Liao and H.J. Huang, Femtomolar immunoassay based on coupling gold nanoparticle enlargement
with square wave stripping voltammetry. Anal. Chim. Acta 538 , 159-164 (2005).
61. G. Liu and Y. Lin, Electrochemical magnetic immunosensor based on gold nanoparticle labels. J.
Nanosci. Nanotech . 5 , 1060-1065 (2005).
62. J. Wang, G. Liu, and Y. Lin, Bioassay label based on electroactive silica beads. Small 2 , 1134-1138
(2006).
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