Shaw JJ, Kado CI (1986) Development of a Vibrio bioluminescence gene set to monitor phytopathogenic bacteria during the ongoing disease process in a nondisruptive manner. Biotechnology 4:560–564
Shtykov SN, Rusanova TY (2008) Russ J Gen Chem 78:2521
Singh M, Manikandan S, Kumaraguru AK (2011) Nanoparticles: a new technology with wide
applications. Res J Nanosci Nanotechnol 1:1–11
Song KM, Cho M, Jo H, Min K, Jeon SH, Kim T, Han MS, Ku JK, Ban C (2011) Gold
nanoparticle-based colorimetric detection of kanamycin using a DNA aptamer. Anal Biochem
415(2):175–181
Sun X, Liu B, Xia K (2011) A sensitive and regenerable biosensor for organophosphate pesticide
based on selfassembled multilayer film with CdTe as fluorescence probe. Luminescence 26
(6):616–621. https://doi.org/10.1002/bio.1284
Sun ZH, Wang WH, Wen HB, Gan CF, Lei HT, Liu YJ (2015) Sensitive electrochemical
immunoassay for chlorpyrifos by using flake-like Fe 3 O 4 modified carbon nanotubes as the
enhanced multienzyme label. Anal Chim Acta 899:91–99
Sutariya VKB, Pathak Y (eds) (2014) Biointeractions of nanomaterials. CRC Press, Boca Raton
Tan H, Chen Y (2012) Silver nanoparticle enhanced fluorescence of europium (III) for detection of
tetracycline in milk. Sensors Actuators B Chem 173:262–267
Tang J, Tang D, Niessner R, Knopp D (2011) A novel strategy for ultra-sensitive electrochemical
immunoassay of biomarkers by coupling multifunctional iridium oxide (IrOx) nanospheres with
catalytic recycling of self-produced reactants. Anal Bioanal Chem 400(7):2041–2051
Tedsana W, Tuntulani T, Ngeontae W (2015) A circular dichroism sensor for Ni2+ and Co2+ based
on L-cysteine capped cadmium sulfide quantum dots. Anal Chim Acta 867:1–8
Thakur G, Kumar N, Raghu HV, Khan A, Yadav A, Singh N, Singh VK (2013) Spore based
biosensors for detection of contaminants in milk: a review. Int J Diary Sci Res 2(2):15–21
Tombelli S, Mascini M, Scherm B, Battacone G, Migheli Q (2009) DNA biosensors for the
detection of aflatoxin producing Aspergillus flavus and A. parasiticus. Monatshefte für
Chemie-Chemical Monthly 140(8):901–907
Turan J, Kesik M, Soylemez S, Goker S, Coskun S, Unalan HE, Toppare L (2016) An effective
surface design based on a conjugated polymer and silver nanowires for the detection of
paraoxon in tap water and milk. Sensors Actuators B Chem 228:278–286
USEPA (2007) Classification of nanomaterials. The four main types of intentionally produced
nanomaterials
Vakil A, Engheta N (2011) Transformation optics using graphene. Science 332(6035):1291–1294
Valera E, Ramon-Azcon J, Sanchez FJ, Mcro MP, Rodriguez A (2008) Conductometric
immunosensor for atrazine detection based on antibodies labelled with gold nanoparticles.
Sensors Actuators B 134(1):95–103
Varshney M, Li YB (2007) Interdigitated array microelectrode based impedance biosensor coupled
with magnetic nanoparticle-antibody conjugates for detection of Escherichia coli O157:H7 in
food samples. Biosens Bioelectron 22:2408–2414
Vasilescu A, Nunes G, Hayat A, Latif U, Marty J-L (2016) Electrochemical affinity biosensors
based on disposable screen-printed electrodes for detection of food allergens. Sensors (Basel,
Switzerland) 16(11):1863
Wan Y, Zhang D, Wang Y, Hou B (2010) A 3D-impedimetric immunosensor based on foam Ni for
detection of sulfate-reducing bacteria. Electrochem Commun 12:288–291
Wang Y, Timothy VD (2017) Nanoscale sensors for assuring the safety of food products. Curr Opin
Biotechnol 44:74–86
Wang R, Dong W, Ruan C, Kanayeva D, Lassiter K, Tian R, Li Y (2009) TiO2 nanowire bundle
microelectrode based impedance immunosensor for rapid and sensitive detection of Listeria
monocytogenes. Nano Lett 9:4570–4573
Wang MY, Huang JR, Wang M, Zhang DE, Chen J (2014) Electrochemical nonenzymatic sensor
based on CoO decorated reduced graphene oxide for the simultaneous determination of
carbofuran and carbaryl in fruits and vegetables. Food Chem 151:191–197
128
H. V. Raghu et al.
Shtykov SN, Rusanova TY (2008) Russ J Gen Chem 78:2521
Singh M, Manikandan S, Kumaraguru AK (2011) Nanoparticles: a new technology with wide
applications. Res J Nanosci Nanotechnol 1:1–11
Song KM, Cho M, Jo H, Min K, Jeon SH, Kim T, Han MS, Ku JK, Ban C (2011) Gold
nanoparticle-based colorimetric detection of kanamycin using a DNA aptamer. Anal Biochem
415(2):175–181
Sun X, Liu B, Xia K (2011) A sensitive and regenerable biosensor for organophosphate pesticide
based on selfassembled multilayer film with CdTe as fluorescence probe. Luminescence 26
(6):616–621. https://doi.org/10.1002/bio.1284
Sun ZH, Wang WH, Wen HB, Gan CF, Lei HT, Liu YJ (2015) Sensitive electrochemical
immunoassay for chlorpyrifos by using flake-like Fe 3 O 4 modified carbon nanotubes as the
enhanced multienzyme label. Anal Chim Acta 899:91–99
Sutariya VKB, Pathak Y (eds) (2014) Biointeractions of nanomaterials. CRC Press, Boca Raton
Tan H, Chen Y (2012) Silver nanoparticle enhanced fluorescence of europium (III) for detection of
tetracycline in milk. Sensors Actuators B Chem 173:262–267
Tang J, Tang D, Niessner R, Knopp D (2011) A novel strategy for ultra-sensitive electrochemical
immunoassay of biomarkers by coupling multifunctional iridium oxide (IrOx) nanospheres with
catalytic recycling of self-produced reactants. Anal Bioanal Chem 400(7):2041–2051
Tedsana W, Tuntulani T, Ngeontae W (2015) A circular dichroism sensor for Ni2+ and Co2+ based
on L-cysteine capped cadmium sulfide quantum dots. Anal Chim Acta 867:1–8
Thakur G, Kumar N, Raghu HV, Khan A, Yadav A, Singh N, Singh VK (2013) Spore based
biosensors for detection of contaminants in milk: a review. Int J Diary Sci Res 2(2):15–21
Tombelli S, Mascini M, Scherm B, Battacone G, Migheli Q (2009) DNA biosensors for the
detection of aflatoxin producing Aspergillus flavus and A. parasiticus. Monatshefte für
Chemie-Chemical Monthly 140(8):901–907
Turan J, Kesik M, Soylemez S, Goker S, Coskun S, Unalan HE, Toppare L (2016) An effective
surface design based on a conjugated polymer and silver nanowires for the detection of
paraoxon in tap water and milk. Sensors Actuators B Chem 228:278–286
USEPA (2007) Classification of nanomaterials. The four main types of intentionally produced
nanomaterials
Vakil A, Engheta N (2011) Transformation optics using graphene. Science 332(6035):1291–1294
Valera E, Ramon-Azcon J, Sanchez FJ, Mcro MP, Rodriguez A (2008) Conductometric
immunosensor for atrazine detection based on antibodies labelled with gold nanoparticles.
Sensors Actuators B 134(1):95–103
Varshney M, Li YB (2007) Interdigitated array microelectrode based impedance biosensor coupled
with magnetic nanoparticle-antibody conjugates for detection of Escherichia coli O157:H7 in
food samples. Biosens Bioelectron 22:2408–2414
Vasilescu A, Nunes G, Hayat A, Latif U, Marty J-L (2016) Electrochemical affinity biosensors
based on disposable screen-printed electrodes for detection of food allergens. Sensors (Basel,
Switzerland) 16(11):1863
Wan Y, Zhang D, Wang Y, Hou B (2010) A 3D-impedimetric immunosensor based on foam Ni for
detection of sulfate-reducing bacteria. Electrochem Commun 12:288–291
Wang Y, Timothy VD (2017) Nanoscale sensors for assuring the safety of food products. Curr Opin
Biotechnol 44:74–86
Wang R, Dong W, Ruan C, Kanayeva D, Lassiter K, Tian R, Li Y (2009) TiO2 nanowire bundle
microelectrode based impedance immunosensor for rapid and sensitive detection of Listeria
monocytogenes. Nano Lett 9:4570–4573
Wang MY, Huang JR, Wang M, Zhang DE, Chen J (2014) Electrochemical nonenzymatic sensor
based on CoO decorated reduced graphene oxide for the simultaneous determination of
carbofuran and carbaryl in fruits and vegetables. Food Chem 151:191–197
128
H. V. Raghu et al.
