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Santonico M, Pennazza G, Romana PF et al (2017) A gas sensor device for oxygen and carbon
dioxide detection. J Proc. https://doi.org/10.3390/proceedings1040447
Schofield CL, Field RA, Russell DA (2007) Glyconanoparticles for the colorimetric detection of
cholera toxin. Anal Chem 79(4):1356–1361. https://doi.org/10.1021/ac061462j
Schwartz DC, Cantor CR (1984) Separation of yeast chromosome-sized DNAs by pulsed field
gradient gel electrophoresis. Cell. https://doi.org/10.1016/0092-8674(84)90301-5
Shankaran D, Gobi H, Miura N (2007) Recent advencements in surface plasmon resonance
immunosensor for detection of small molecules of biomedical, food, enviromnetal interst.
Sensors Actuators B Chem 121:158–177. https://doi.org/10.1016/j.snb.2006.09.014
Sharma VK (2006) Real-time reverse transcription-multiplex PCR for simultaneous and specific
detection of rfbEand eae genes of Escherichia coli O157:H7. Mol Cell Probes. https://doi.org/
10.1016/j.mcp.2006.03.001
Sharma A, Matharu Z, Sumana G, Solanki P, Kim CG, Malhotra BD (2010) Antibody immobilized
cysteamine functionalized-gold nanoparticles for aflatoxin detection. Thin Solid Films 519
(2010):1213–1218
Shi XM, Long F, Suo B (2010) Molecular methods for the detection and characterization of
foodborne pathogens. Pure Appl Chem. https://doi.org/10.1351/PAC-CON-09-02-07
Silbernagel K, Jechorek R, Kaufer AL et al (2005) Evaluation of the VIDAS Listeria immunoassay
for the detetion of Listeria in foods using Demi–Fraser and Fraser enrichment broths, as
modification of AOAC Official Method 999.06 (AOAC Official Method 2004.06). J AOAC
Int 88:750–760
Solve M, Boel J, Norrung B (2000) Evaluation of a monoclonal antibody able to detect live Listeria
monocytogenes and Listeria innocua. Int J Food Microbiol 57(3):219–224
Spratt BG (1999) Multilocus sequence typing: molecular typing of bacterial pathogens in an era of
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Stanker LH, Scotcher MC, Hnasko R (2013) A monoclonal antibody based capture ELISA for
botulinum neurotoxin serotype B: toxin detection in food. Toxin (Base) 5(11):2212–2228
Su YC, Yu CY, Lin JL, Lai JM, Chen SW, Tu PC, Chu C (2011) Emergence of Salmonella enterica
Serovar Potsdam as a major serovar in waterfowl hatcheries and chicken eggs. Avian Dis.
https://doi.org/10.1637/9420-060910-Reg
Subramanian A, Irudayaraj J, Ryan T (2006) A mixed self-assembled monolayer-based surface
plasmon immunosensor for detection of E-coli O157: H7. Biosens Bioelectron 21:998–1006
Taitt CR, Shubin YS, Angel R et al (2004) Detection of Salmonella enterica serovar typhimurium
by using a rapid, array-based immunosensor. Appl Environ Microbiol 70(1):152–158
Tobes R, Ramos JL (2005) REP code: defining bacterial identity in extragenic space. Environ
Microbiol. https://doi.org/10.1111/j.1462-2920.2004.00704.x
Trindade PA, McCulloch JA, Oliveira GA et al (2003) Molecular techniques for MRSA typing:
current issues and perspectives. Braz J Infect Dis 7:32–43
Urwin R, Maiden MC (2003) Multi-locus sequence typing: a tool for global epidemiology. Trends
Microbiol. https://doi.org/10.1016/j.tim.2003.08.006
Vargas GH, Hernandez JES, Hernandez SS et al (2018) Electrochemical biosensor: a solution to
pollution detection with reference to environmental contaminants. Biosensors. https://doi.org/
10.3390/bios8020029
Versalovic J, Kapur V, Lupski JR (1991) Distribution of repetitive DNA sequences in eubacteria
and application to fingerprinting of bacterial genomes. Nucleic Acids Res. https://doi.org/10.
1093/nar/19.24.6823
Viswanathan S, Wu L-C, Huang M-R, Ho J-A (2006) Electrochemical immunosensor for cholera
toxin using liposomes and poly(3,4-ethylenedioxythiophene)-coated carbon nanotubes. Anal
Chem 78:1115–1121
9 Development of Modern Tools for Environmental Monitoring of Pathogens and. . .
209
(30):6205–6209
Santonico M, Pennazza G, Romana PF et al (2017) A gas sensor device for oxygen and carbon
dioxide detection. J Proc. https://doi.org/10.3390/proceedings1040447
Schofield CL, Field RA, Russell DA (2007) Glyconanoparticles for the colorimetric detection of
cholera toxin. Anal Chem 79(4):1356–1361. https://doi.org/10.1021/ac061462j
Schwartz DC, Cantor CR (1984) Separation of yeast chromosome-sized DNAs by pulsed field
gradient gel electrophoresis. Cell. https://doi.org/10.1016/0092-8674(84)90301-5
Shankaran D, Gobi H, Miura N (2007) Recent advencements in surface plasmon resonance
immunosensor for detection of small molecules of biomedical, food, enviromnetal interst.
Sensors Actuators B Chem 121:158–177. https://doi.org/10.1016/j.snb.2006.09.014
Sharma VK (2006) Real-time reverse transcription-multiplex PCR for simultaneous and specific
detection of rfbEand eae genes of Escherichia coli O157:H7. Mol Cell Probes. https://doi.org/
10.1016/j.mcp.2006.03.001
Sharma A, Matharu Z, Sumana G, Solanki P, Kim CG, Malhotra BD (2010) Antibody immobilized
cysteamine functionalized-gold nanoparticles for aflatoxin detection. Thin Solid Films 519
(2010):1213–1218
Shi XM, Long F, Suo B (2010) Molecular methods for the detection and characterization of
foodborne pathogens. Pure Appl Chem. https://doi.org/10.1351/PAC-CON-09-02-07
Silbernagel K, Jechorek R, Kaufer AL et al (2005) Evaluation of the VIDAS Listeria immunoassay
for the detetion of Listeria in foods using Demi–Fraser and Fraser enrichment broths, as
modification of AOAC Official Method 999.06 (AOAC Official Method 2004.06). J AOAC
Int 88:750–760
Solve M, Boel J, Norrung B (2000) Evaluation of a monoclonal antibody able to detect live Listeria
monocytogenes and Listeria innocua. Int J Food Microbiol 57(3):219–224
Spratt BG (1999) Multilocus sequence typing: molecular typing of bacterial pathogens in an era of
rapid DNA sequencing and the internet. Curr Opin Microbiol. https://doi.org/10.1016/S13695274(99)80054-X
Stanker LH, Scotcher MC, Hnasko R (2013) A monoclonal antibody based capture ELISA for
botulinum neurotoxin serotype B: toxin detection in food. Toxin (Base) 5(11):2212–2228
Su YC, Yu CY, Lin JL, Lai JM, Chen SW, Tu PC, Chu C (2011) Emergence of Salmonella enterica
Serovar Potsdam as a major serovar in waterfowl hatcheries and chicken eggs. Avian Dis.
https://doi.org/10.1637/9420-060910-Reg
Subramanian A, Irudayaraj J, Ryan T (2006) A mixed self-assembled monolayer-based surface
plasmon immunosensor for detection of E-coli O157: H7. Biosens Bioelectron 21:998–1006
Taitt CR, Shubin YS, Angel R et al (2004) Detection of Salmonella enterica serovar typhimurium
by using a rapid, array-based immunosensor. Appl Environ Microbiol 70(1):152–158
Tobes R, Ramos JL (2005) REP code: defining bacterial identity in extragenic space. Environ
Microbiol. https://doi.org/10.1111/j.1462-2920.2004.00704.x
Trindade PA, McCulloch JA, Oliveira GA et al (2003) Molecular techniques for MRSA typing:
current issues and perspectives. Braz J Infect Dis 7:32–43
Urwin R, Maiden MC (2003) Multi-locus sequence typing: a tool for global epidemiology. Trends
Microbiol. https://doi.org/10.1016/j.tim.2003.08.006
Vargas GH, Hernandez JES, Hernandez SS et al (2018) Electrochemical biosensor: a solution to
pollution detection with reference to environmental contaminants. Biosensors. https://doi.org/
10.3390/bios8020029
Versalovic J, Kapur V, Lupski JR (1991) Distribution of repetitive DNA sequences in eubacteria
and application to fingerprinting of bacterial genomes. Nucleic Acids Res. https://doi.org/10.
1093/nar/19.24.6823
Viswanathan S, Wu L-C, Huang M-R, Ho J-A (2006) Electrochemical immunosensor for cholera
toxin using liposomes and poly(3,4-ethylenedioxythiophene)-coated carbon nanotubes. Anal
Chem 78:1115–1121
9 Development of Modern Tools for Environmental Monitoring of Pathogens and. . .
209
