PCR followed by mass spectrometry. PLoS One 8:e62108. https://doi.org/10.1371/journal.
pone.0062108
Jung S-A, Lee T-S, Kim WM, Lee K-S, Jeong DS, Lee WS, Kim I (2013) Thickness dependence of
surface plasmon resonance sensor response for metal ion detection. J Phys D Appl Phys
46:315104
Kaur N, Prasad R, Varma A (2013) Antibiotic resistance among clinical isolates of Staphylococcus
aureus and usefulness of antibiogram. Int J Pharm Bio Sci 4(1):957–964
Kaushik A, Tiwari S, Jayant RD, Vashist A, Nikkhah-Moshaie R, El-Hage N, Nair M (2017)
Electrochemical biosensors for early stage Zika diagnostics. Trends Biotechnol 35:308–317.
https://doi.org/10.1016/j.tibtech.2016.10.001
Kim T-H, Park J, Kim C-J, Cho Y-K (2014) Fully integrated lab-on-a-disc for nucleic acid analysis
of food-borne pathogens. Anal Chem 86:3841–3848. https://doi.org/10.1021/ac403971h
Li G, Li X, Wan J, Zhang S (2009) Dendrimers-based DNA biosensors for highly sensitive
electrochemical detection of DNA hybridization using reporter probe DNA modified with au
nanoparticles. Biosens Bioelectron 24:3281–3287. https://doi.org/10.1016/j.bios.2009.04.022
Li B, Yu Q, Duan Y (2015) Fluorescent labels in biosensors for pathogen detection. Crit Rev
Biotechnol 35:82–93. https://doi.org/10.3109/07388551.2013.804487
Lian Y, He F, Wang H, Tong F (2015) A new aptamer/graphene interdigitated gold electrode
piezoelectric sensor for rapid and specific detection of Staphylococcus aureus. Biosens
Bioelectron 65:314–319. https://doi.org/10.1016/j.bios.2014.10.017
Lim S, Koo OK, You YS, Lee YE, Kim M-S, Chang P-S, Kang DH, Yu J-H, Choi YJ, Gunasekaran
S (2012) Enhancing nanoparticle-based visible detection by controlling the extent of aggregation. Sci Rep 2:456. https://doi.org/10.1038/srep00456
Lin Y-H, Chen S-H, Chuang Y-C, Lu Y-C, Shen TY, Chang CA, Lin C-S (2008) Disposable
amperometric immunosensing strips fabricated by au nanoparticles-modified screen-printed
carbon electrodes for the detection of foodborne pathogen Escherichia coli O157: H7. Biosens
Bioelectron 23:1832–1837. https://doi.org/10.1016/j.bios.2008.02.030
Liu X, Hu Y, Zheng S, Liu Y, He Z, Luo F (2016a) Surface plasmon resonance immunosensor for
fast, highly sensitive, and in situ detection of the magnetic nanoparticles-enriched salmonella
enteritidis. Sensor Actuat B: Chem 230:191–198. https://doi.org/10.1016/j.snb.2016.02.043
Liu X, Marrakchi M, Xu D, Dong H, Andreescu S (2016b) Biosensors based on modularly designed
synthetic peptides for recognition, detection and live/dead differentiation of pathogenic bacteria.
Biosens Bioelectron 80:9–16. https://doi.org/10.1016/j.snb.2016.02.043
Maas MB, Maybery GH, Perold WJ, Neveling DP, Dicks LM (2018) Borosilicate glass fiber-optic
biosensor for the detection of Escherichia coli. Curr Microbiol 75:150–155. https://doi.org/10.
1007/s00284-017-1359-y
Martín-Yerga D, González-García MB, Costa-García A (2013) Electrochemical determination of
mercury: a review. Talanta 116:1091–1104
Masdor NA, Altintas Z, Tothill IE (2017) Surface plasmon resonance immunosensor for the
detection of Campylobacter jejuni. Chemosensors 5:16. https://doi.org/10.3390/
chemosensors5020016
Menti C, Henriques JA, Missell FP, Roesch-Ely M (2016) Antibody-based magneto-elastic
biosensors: potential devices for detection of pathogens and associated toxins. Appl Microbiol
Biotechnol 100:6149–6163. https://doi.org/10.1007/s00253-016-7624-3
Miyaji H, Sessler JL (2001) Off-the-shelf colorimetric anion sensors. Angew Chem Int Ed
40:154–157
Monis PT, Giglio S (2006) Nucleic acid amplification-based techniques for pathogen detection and
identification. Infect Genet Evol 6:2–12. https://doi.org/10.1016/j.meegid.2005.08.004
Monzo J, Insua I, Fernandez-Trillo F, Rodriguez P (2015) Fundamentals, achievements and
challenges in the electrochemical sensing of pathogens. Analyst 140:7116–7128. https://doi.
org/10.1039/c5an01330e
Nguyen TT, Trinh KTL, Yoon WJ, Lee NY, Ju H (2017) Integration of a microfluidic polymerase
chain reaction device and surface plasmon resonance fiber sensor into an inline all-in-one
10 Environment Remediation Tools: Chemosensors and Biosensors
289
pone.0062108
Jung S-A, Lee T-S, Kim WM, Lee K-S, Jeong DS, Lee WS, Kim I (2013) Thickness dependence of
surface plasmon resonance sensor response for metal ion detection. J Phys D Appl Phys
46:315104
Kaur N, Prasad R, Varma A (2013) Antibiotic resistance among clinical isolates of Staphylococcus
aureus and usefulness of antibiogram. Int J Pharm Bio Sci 4(1):957–964
Kaushik A, Tiwari S, Jayant RD, Vashist A, Nikkhah-Moshaie R, El-Hage N, Nair M (2017)
Electrochemical biosensors for early stage Zika diagnostics. Trends Biotechnol 35:308–317.
https://doi.org/10.1016/j.tibtech.2016.10.001
Kim T-H, Park J, Kim C-J, Cho Y-K (2014) Fully integrated lab-on-a-disc for nucleic acid analysis
of food-borne pathogens. Anal Chem 86:3841–3848. https://doi.org/10.1021/ac403971h
Li G, Li X, Wan J, Zhang S (2009) Dendrimers-based DNA biosensors for highly sensitive
electrochemical detection of DNA hybridization using reporter probe DNA modified with au
nanoparticles. Biosens Bioelectron 24:3281–3287. https://doi.org/10.1016/j.bios.2009.04.022
Li B, Yu Q, Duan Y (2015) Fluorescent labels in biosensors for pathogen detection. Crit Rev
Biotechnol 35:82–93. https://doi.org/10.3109/07388551.2013.804487
Lian Y, He F, Wang H, Tong F (2015) A new aptamer/graphene interdigitated gold electrode
piezoelectric sensor for rapid and specific detection of Staphylococcus aureus. Biosens
Bioelectron 65:314–319. https://doi.org/10.1016/j.bios.2014.10.017
Lim S, Koo OK, You YS, Lee YE, Kim M-S, Chang P-S, Kang DH, Yu J-H, Choi YJ, Gunasekaran
S (2012) Enhancing nanoparticle-based visible detection by controlling the extent of aggregation. Sci Rep 2:456. https://doi.org/10.1038/srep00456
Lin Y-H, Chen S-H, Chuang Y-C, Lu Y-C, Shen TY, Chang CA, Lin C-S (2008) Disposable
amperometric immunosensing strips fabricated by au nanoparticles-modified screen-printed
carbon electrodes for the detection of foodborne pathogen Escherichia coli O157: H7. Biosens
Bioelectron 23:1832–1837. https://doi.org/10.1016/j.bios.2008.02.030
Liu X, Hu Y, Zheng S, Liu Y, He Z, Luo F (2016a) Surface plasmon resonance immunosensor for
fast, highly sensitive, and in situ detection of the magnetic nanoparticles-enriched salmonella
enteritidis. Sensor Actuat B: Chem 230:191–198. https://doi.org/10.1016/j.snb.2016.02.043
Liu X, Marrakchi M, Xu D, Dong H, Andreescu S (2016b) Biosensors based on modularly designed
synthetic peptides for recognition, detection and live/dead differentiation of pathogenic bacteria.
Biosens Bioelectron 80:9–16. https://doi.org/10.1016/j.snb.2016.02.043
Maas MB, Maybery GH, Perold WJ, Neveling DP, Dicks LM (2018) Borosilicate glass fiber-optic
biosensor for the detection of Escherichia coli. Curr Microbiol 75:150–155. https://doi.org/10.
1007/s00284-017-1359-y
Martín-Yerga D, González-García MB, Costa-García A (2013) Electrochemical determination of
mercury: a review. Talanta 116:1091–1104
Masdor NA, Altintas Z, Tothill IE (2017) Surface plasmon resonance immunosensor for the
detection of Campylobacter jejuni. Chemosensors 5:16. https://doi.org/10.3390/
chemosensors5020016
Menti C, Henriques JA, Missell FP, Roesch-Ely M (2016) Antibody-based magneto-elastic
biosensors: potential devices for detection of pathogens and associated toxins. Appl Microbiol
Biotechnol 100:6149–6163. https://doi.org/10.1007/s00253-016-7624-3
Miyaji H, Sessler JL (2001) Off-the-shelf colorimetric anion sensors. Angew Chem Int Ed
40:154–157
Monis PT, Giglio S (2006) Nucleic acid amplification-based techniques for pathogen detection and
identification. Infect Genet Evol 6:2–12. https://doi.org/10.1016/j.meegid.2005.08.004
Monzo J, Insua I, Fernandez-Trillo F, Rodriguez P (2015) Fundamentals, achievements and
challenges in the electrochemical sensing of pathogens. Analyst 140:7116–7128. https://doi.
org/10.1039/c5an01330e
Nguyen TT, Trinh KTL, Yoon WJ, Lee NY, Ju H (2017) Integration of a microfluidic polymerase
chain reaction device and surface plasmon resonance fiber sensor into an inline all-in-one
10 Environment Remediation Tools: Chemosensors and Biosensors
289
