Feldstine PT, Lienau AH, Forgey RL (1997) Assurance polyclonal enzyme immunoassay for
detection of Listeria monocytogenes and related Listeria species in selected foods: collaborative
study. J AOAC Int 80:775–790
Foley SL, Lynne AM, Nayak R (2009) Molecular typing methodologies for microbial source
tracking and epidemiological investigations of Gram-negative bacterial foodborne pathogens.
Infect Genet Evol. https://doi.org/10.1016/j.meegid.2009.03.004
Fowler JM, Wong DKY, Brian HH, Heineman WR (2008) Recent developments in electrochemical
immunoassays and immunosensors. In: Electrochemical sensors, biosensors and their biomedical applications. Elsevier, Amsterdam, pp 115–143, ISBN 9780123737380
Gong Q, Yang H, Dong Y, Wenchan Zhang W (2015) A sensitive impedimetric DNA biosensor for
the determination of the HIV gene based on electrochemically reduced graphene oxide. Anal
Methods 7:2554–2562
Harris B (1999) Exploiting antibody-based technologies to manage environmental pollution.
TIBTECH 17:290–296
Heid CA, Stevens J, Livak KJ et al (1996) Real time quantitative PCR. Genome Res 6(10):986–994
Holford TRJ, Davis F, Higson SPJ (2012) Recent trends in antibody based sensors. Biosens
Bioelectron 34:12–24
Huang KJ, Sun JY, Xu CX, Niu DJ, Xie WZ (2010) A disposable immunosensor based on gold
colloid modified chitosan nanoparticles-entrapped carbon paste electrode. Microchim Acta
168:51–58
Jain S, Singh SR, Horn DW, Davis VA, Pillai S et al (2012) Development of an antibody
functionalized carbon nanotube biosensor for foodborne bacterial pathogens. J Biosens
Bioelectron S11:002. https://doi.org/10.4172/2155-6210.S11-002
Jonathan SD, Pourmand N (2007) Label-free impedance biosensors: opportunities and challenges.
Electroanalysis 19(12):1239–1257
Joo J, Yim C, Kwon D, Jeon S et al (2007) A facile and sensitive detection of pathogenic bacteria
using magnetic nanoparticles and optical nanocrystal probes. Analyst 137(16):3609–3612
Karen L, Cox BS, Viswanath D et al (2012) Immunoassay methods. In: Markossian S, Sittampalam
GS, Grossman A et al (eds) Assay guidance manual. Eli Lilly & Company and the National
Center for Advancing Translational Sciences, 2004, Bethesda, MD
Koubova V, Brynda E, Karasova L (2001) Detection of foodborne pathogens using surface plasmon
resonance biosensors. Sens Actuators B Chem 74:100
Kuswandi B, Futra D, Lee HY (2017) Nanosensors for the detection of food contaminants. In:
Nanotechnology applications in food: flavor, stability, nutrition and safety. Elsevier. https://doi.
org/10.1016/B978-0-12-811942-6.00015-7
Lai JJ, Liang HF, Peng ZL et al (2011) Journal of Physics: Conference Series, 3rd international
photonics and optoelectronics electronics meetings 276:012129
Lee S, Choi B, Yi SM et al (2009) Characterization of microbial community during Asian dust
events in Korea. Sci Total Environ 407(20):5308–5314
Liao JY, Li H (2010) Lateral flow immunodipstick for visual detection of aflatoxin B1 in food using
immuno-nanoparticles composed of a silver core and a gold shell. Microchim Acta 171(3):289–
295
Liedberg B, Nylander C, Lunström I (1983) Surface plasmon resonance for gas detection and
biosensing. Sensors Actuators 4:299–304
Liu AL, Wang K, Weng HS (2012) Development of electrochemical DNA biosensors. TrAC
Trends Anal Chem 37:101–111
Magistrado P, Carcia M, Raymundo A (2001) Isolation and polymerase chain reaction-base
detection of Campylobacter jejuni and Campylobacter coli from poultry in Philippines. Int J
Food Microbiol. https://doi.org/10.1016/S0168-1605(01)00537-2
Maiden MC, Bygraves JA, Feil E (1998) Multilocus sequence typing: a portable approach to the
identification of clones within populations of pathogenic microorganisms. Proc Natl Acad Sci U
S A. https://doi.org/10.1073/pnas.95.6.3140
9 Development of Modern Tools for Environmental Monitoring of Pathogens and. . .
207
detection of Listeria monocytogenes and related Listeria species in selected foods: collaborative
study. J AOAC Int 80:775–790
Foley SL, Lynne AM, Nayak R (2009) Molecular typing methodologies for microbial source
tracking and epidemiological investigations of Gram-negative bacterial foodborne pathogens.
Infect Genet Evol. https://doi.org/10.1016/j.meegid.2009.03.004
Fowler JM, Wong DKY, Brian HH, Heineman WR (2008) Recent developments in electrochemical
immunoassays and immunosensors. In: Electrochemical sensors, biosensors and their biomedical applications. Elsevier, Amsterdam, pp 115–143, ISBN 9780123737380
Gong Q, Yang H, Dong Y, Wenchan Zhang W (2015) A sensitive impedimetric DNA biosensor for
the determination of the HIV gene based on electrochemically reduced graphene oxide. Anal
Methods 7:2554–2562
Harris B (1999) Exploiting antibody-based technologies to manage environmental pollution.
TIBTECH 17:290–296
Heid CA, Stevens J, Livak KJ et al (1996) Real time quantitative PCR. Genome Res 6(10):986–994
Holford TRJ, Davis F, Higson SPJ (2012) Recent trends in antibody based sensors. Biosens
Bioelectron 34:12–24
Huang KJ, Sun JY, Xu CX, Niu DJ, Xie WZ (2010) A disposable immunosensor based on gold
colloid modified chitosan nanoparticles-entrapped carbon paste electrode. Microchim Acta
168:51–58
Jain S, Singh SR, Horn DW, Davis VA, Pillai S et al (2012) Development of an antibody
functionalized carbon nanotube biosensor for foodborne bacterial pathogens. J Biosens
Bioelectron S11:002. https://doi.org/10.4172/2155-6210.S11-002
Jonathan SD, Pourmand N (2007) Label-free impedance biosensors: opportunities and challenges.
Electroanalysis 19(12):1239–1257
Joo J, Yim C, Kwon D, Jeon S et al (2007) A facile and sensitive detection of pathogenic bacteria
using magnetic nanoparticles and optical nanocrystal probes. Analyst 137(16):3609–3612
Karen L, Cox BS, Viswanath D et al (2012) Immunoassay methods. In: Markossian S, Sittampalam
GS, Grossman A et al (eds) Assay guidance manual. Eli Lilly & Company and the National
Center for Advancing Translational Sciences, 2004, Bethesda, MD
Koubova V, Brynda E, Karasova L (2001) Detection of foodborne pathogens using surface plasmon
resonance biosensors. Sens Actuators B Chem 74:100
Kuswandi B, Futra D, Lee HY (2017) Nanosensors for the detection of food contaminants. In:
Nanotechnology applications in food: flavor, stability, nutrition and safety. Elsevier. https://doi.
org/10.1016/B978-0-12-811942-6.00015-7
Lai JJ, Liang HF, Peng ZL et al (2011) Journal of Physics: Conference Series, 3rd international
photonics and optoelectronics electronics meetings 276:012129
Lee S, Choi B, Yi SM et al (2009) Characterization of microbial community during Asian dust
events in Korea. Sci Total Environ 407(20):5308–5314
Liao JY, Li H (2010) Lateral flow immunodipstick for visual detection of aflatoxin B1 in food using
immuno-nanoparticles composed of a silver core and a gold shell. Microchim Acta 171(3):289–
295
Liedberg B, Nylander C, Lunström I (1983) Surface plasmon resonance for gas detection and
biosensing. Sensors Actuators 4:299–304
Liu AL, Wang K, Weng HS (2012) Development of electrochemical DNA biosensors. TrAC
Trends Anal Chem 37:101–111
Magistrado P, Carcia M, Raymundo A (2001) Isolation and polymerase chain reaction-base
detection of Campylobacter jejuni and Campylobacter coli from poultry in Philippines. Int J
Food Microbiol. https://doi.org/10.1016/S0168-1605(01)00537-2
Maiden MC, Bygraves JA, Feil E (1998) Multilocus sequence typing: a portable approach to the
identification of clones within populations of pathogenic microorganisms. Proc Natl Acad Sci U
S A. https://doi.org/10.1073/pnas.95.6.3140
9 Development of Modern Tools for Environmental Monitoring of Pathogens and. . .
207
