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66. So HM, Park DW, Jeon EK, et al. Small 2006; 4 :197 .
67. Zelada-Guillen GA, Bhosale SV, Riu J, Rius FX. Real-time potentiometric detection of
bacteria in complex samples. Analytical Chemistry 2010; 82 (22):9254-60 .
68. Garcia-Aljaro G, Celia LN, Shirale DJ, et al. Carbon nanotubes-based chemiresistive bio-
sensors for detection of microorganisms. Biosensors & Bioelectronics 2010; 26 (4):1437-41 .
69. Huang Y, Dong X, Liu Y, Li L-J, Chen P. Graphene-based biosensors for detection of
bacteria and their metabolic activities. Journal of Material Chemistry 2011; 21 :12358-62 .
70. Setterington EB, Alocija EC. Rapid electrocial biosensing of polyaniline labelled Esch-
erichia coli O157:H7. Biosensors & Bioelectronics 2011; 26 (5):2208-14 .
71. Dill K, Stanker LH, Young CR. Detection of salmonella in poultry using a silicon chip
based biosensor. Journal of Biochemical and Biophysical Methods 1999; 41 :61-7 .
72. Gehring AG, Paterson DL, Tu S . Use of a light addressable potentiometric sensor for the
detection of Escherichia coli O157:H7. Analytical Biochemistry 1998; 258 :293-8 .
73. Pinijsuwan S, Rijiravanich P, Somasundrum M, Surareungchai W. Sub-Femtomolar
Electrochemical Detection of DNA Hybridization Based on Latex/Gold Nanoparticle-
Assisted Signal Amplification. Analytical Chemistry 2008; 80 :6779-84 .
74. Lin YH, Chen SH, Chuang Y-C, et al. Biosensors & Bioelectronics 2008; 23 :1832 .
75. Yang Q, Liang Y, Zhou T, Shi G, Jin L. Electrochemical Communications 2009; 11 :893 .
76. Sanvicens N, Pastells C, Pascual N, Pilar Marco M. Nanoparticle-based biosensors for
the detection of pathogenic bacteria. Trends in Analytical Chemistry 2009; 28 (11):1243-50 .
77. Marinakos SM, Chen S, Chilkoti A. Plasmonic detection of a model analyte in serum by
a gold nanorod sensor. Analytical Chemistry 2007; 14 :5278-83 .
78. Wang C, Irudayaraj J. Gold nanorod probes for the detection of multiple pathogens.
Small 2008; 12 :2204-8 .
79. Weeks BL, Camarero J, Nov A, Miller AE, Stanker L, De Yoreo JJ. A microcantilever-
based pathogen detector. Scanning 2003; 25 (6):297-9 .
80. Ma L, Wang C, Zhang M. Detecting protein adsorption and binding using magnetic
nanoparticle probes. Sensors and Actuators B: Chemical 2011; 160 (1):650-655 .
81. Wang LJ, Wei QS, Wu C S, Hu ZY. J. J, Wang P. The Escherichia coli O157:H7 DNA
detection on a gold nanoparticle-enhanced piezoelectric biosensor. Chinese Science Bul-
letin 2008; 53 (8):1175-84 .
82. Mao X, Yang L, Su X-L, Li A. A nanoparticle amplification based quartz crystal micro-
balance DNA sensor for detection of Escherichia coli O157:H7. Biosensors & Bioelectron-
ics 2006; 21 :1178-85 .
83. Olsen EV, Sorokulova IB, Petrenko VA, Chen IH, Barbaree JM, Vodyanoy VJ. Affinity
selected filamentous bacteriophage as a probe for acoustic wave biodetectors of Salmo-
nella typhimurium. Biosensors & Bioelectronics 2006; 21 (8):1434-42 .
84. Koets M, van der Wijk T, van Eemeren JTWM, van Amerongen A, Pfins MWJ. Rapid
DNA multi-analyte immunoassay on a magneto-resistance biosensor. Biosensors & Bio-
electronics 2009; 24 :1893-8 .
85. Adler M, Wacker R, Niemeyer CM. Sensitivity by combination: immuno-PCR and
related technologies. Analyst 2008; 6 :702-18 .
86. Zhang D, Huarng MC, Alocilja EC. A multiplex nanoparticle based biobarcoded DNA
sensor for the simultaneous detection of multiple pathogens. Biosensors & Bioelectronics
2010; 4 :1736-42 .
87. Perez JM, Josephson L, O'Loughlin T, Hogemann D, Weissleder R. Magnetic relaxation
switches capable of sensing molecular interactions. Nat Biotechnol 2002; 20 :816-20 .
88. Perez JM, Simeone FJ, Saeki Y, Josephson L, Weissleder R. Viral-induced selfassembly of
magnetic nanoparticles allows the detection of viral particles in biological media. J Am
Chem Soc 2003; 125 :10192-3 .
89. Mujika M, Arana S, Castano E, et al. Magnetoresistive immunosensor for the detection
of Escherichia coli O157:H7 including a microfluidic network. Biosensors & Bioelectronics
2009; 24 :1253-8 .
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