References
Ali MA, Jiang H, Mahal NK, Weber RJ, Kumar R, Castellano MJ,
Dong L (2017) Microfluidic impedimetric sensor for soil nitrate
detection using graphene oxide and conductive nanofibers enabled
sensing interface. Sens Actuators B. Chem 239:1289–1299
Bakhori N, Yusof N, Abdullah A, Hussein M (2013) Development of a
fluorescence resonance energy transfer (FRET)-based DNA biosensor for detection of synthetic oligonucleotide of ganoderma
boninense. Biosensors 3:419–428
Bose D, Chatterjee S (2016) Biogenic synthesis of silver nanoparticles
using guava (Psidium guajava) leaf extract and its antibacterial
activity against Pseudomonas aeruginosa. Appl Nanosci 6:895–901
Cesarino I, Moraes FC, Lanza MR, Machado SA (2012) Electrochemical detection of carbamate pesticides in fruit and vegetables with a
biosensor based on acetylcholinesterase immobilised on a composite of polyaniline–carbon nanotubes. Food Chem 135:873–879
Chattopadhyay DP, Patel BH (2016) Synthesis, characterization and
application of nano cellulose for enhanced performance of
textiles. J Text Sci Eng 6:184–215
Chen H, Yada R (2011) Nanotechnologies in agriculture: new tools for
sustainable development. Trends Food Sci Technol 22:585–594
Deng HH, Hong GL, Lin FL, Liu AL, Xia XH, Chen W (2016)
Colorimetric detection of urea, urease, and urease inhibitor based on
the peroxidase-like activity of gold nanoparticles. Anal Chim Acta
915:74–80
DeRosa MC, Monreal C, Schnitzer M, Walsh R, Sultan Y (2010)
Nanotechnology in fertilizers. Nat Nanotechnol 5:91
Dong J, Fan X, Qiao F, Ai S, Xin H (2013) A novel protocol for
ultra-trace detection of pesticides combined electrochemical reduction of Ellman’s reagent with acetylcholinesterase inhibition. Anal
Chim Acta 25:78–83
Dutta S, Padhye S, Narayanaswamy R, Persaud KC (2001) An optical
biosensor employing tiron-immobilised polypyrrole films for estimating monophenolase activity in apple juice. Biosens Bioelectron
16:287–294
Fang A, Chen H, Li H, Liu M, Zhang Y, Yao S (2017) Glutathione
regulation-based dual-functional upconversion sensing-platform for
acetylcholinesterase activity and cadmium ions. Biosens Bioelectron 87:545–551
Feynman R (1960) There’s plenty of room at the bottom. Eng Sci
23:22–36
Ganeshkumar R, Sopiha KV, Wu P, Cheah CW, Zhao R (2016)
Ferroelectric KNbO 3 nanofibers: synthesis, characterization and
their application as a humidity nanosensor. Nanotechnology
27:395607
Ghorbanpour M, Fahimirad S (2017) Plant nanobionics a novel
approach to overcome the environmental challenges. In: Medicinal
plants and environmental challenges. Springer, Berlin, pp 247–257
Giraldo JP, Landry MP, Faltermeier SM, McNicholas TP, Iverson NM,
Boghossian AA, Reuel NF, Hilmer AJ, Sen F, Brew JA, Strano MS
(2014) Erratum: corrigendum: plant nanobionics approach to
augment photosynthesis and biochemical sensing. Nat Mater 13:530
Haddaoui M, Raouafi N (2015) Chlortoluron-induced enzymatic
activity inhibition in tyrosinase/ZnO NPs/SPCE biosensor for the
detection of ppb levels of herbicide. Sens Actuators B: Chem
219:171–178
Hulkoti NI, Taranath TC (2014) Biosynthesis of nanoparticles using
microbes—a review. Colloids Surf, B 121:474–483
Iravani S (2011) Green synthesis of metal nanoparticles using plants.
Green Chem 13:2638
Kharat M, Du Z, Zhang G, McClements DJ (2017) Physical and
chemical stability of curcumin in aqueous solutions and emulsions:
impact of pH, temperature, and molecular environment. J Agric
Food Chem 65:1525–1532
Khodakovskaya M, Dervishi E, Mahmood M, Xu Y, Li Z, Watanabe F,
Biris AS (2009) Retraction notice for carbon nanotubes are able to
penetrate plant seed coat and dramatically affect seed germination
and plant growth. ACS Nano 6(8):7541
Kim M, Kim MJ (2003) Isocitrate analysis using a potentiometric
biosensor with immobilized enzyme in a FIA system. Food Res Int
36:223–230
Koedrith P, Thasiphu T, Tuitemwong K, Boonprasert R, Tuitemwong P
(2014) Recent advances in potential nanoparticles and nanotechnology for sensing food-borne pathogens and their toxins in foods
and crops: current technologies and limitations. Sens Mater 711
Kwak SY, Giraldo JP, Wong MH, Koman VB, Lew TT, Ell J,
Weidman MC, Sinclair RM, Landry MP, Tisdale WA, Strano MS
(2017) A nanobionic light-emitting plant. Nano Lett 17(12):7951–
7961
Lin D, Xing B (2008) Root uptake and phytotoxicity of ZnO
nanoparticles. Environm Sci Technol 42:5580–5585
Liu D, Chen W, Wei J, Li X, Wang Z, Jiang X (2012) A highly
sensitive, dual-readout assay based on gold nanoparticles for
organophosphorus and carbamate pesticides. Anal Chem
84:4185–4191
Mandal D, Bolander ME, Mukhopadhyay D, Sarkar G, Mukherjee P
(2005) The use of microorganisms for the formation of metal
nanoparticles and their application. Appl Microbiol Biotechnol
69:85–92
McLamore ES, Diggs A, Calvo Marzal P, Shi J, Blakeslee JJ, Peer WA,
Murphy AS, Porterfield DM (2010) Non-invasive quantification of
endogenous root auxin transport using an integrated flux microsensor technique. Plant J 63:1004–1016
Mukhopadhyay SS (2014) Nanotechnology in agriculture: prospects
and constraints. Nanotechnol Sci Appl 63
Narayanan KB, Sakthivel N (2010) Biological synthesis of metal
nanoparticles by microbes. Adv Coll Interface Sci 156:1–13
Norouzi P (2017) A novel admittometric sensor for determination of
theophylline using FFT coulometric admittance voltammetry and
flow injection analysis. Int J Electrochem Sci 10057–10070
Otles S, Yalcin B (2012) Review on the application of nanobiosensors
in food analysis. Acta Scientiarum Polonorum Technologia Alimentaria 11:7–18
Pan P, Miao Z, Yanhua L, Linan Z, Haiyan R, Pan K, Linpei P (2016)
Preparation and evaluation of a stable solid state ion selective
electrode of polypyrrole/electrochemically reduced graphene/glassy
carbon substrate for soil nitrate sensing. Int J Electrochem Sci
11:4779–4793
Patra CR, Mukherjee S, Kotcherlakota R (2014) Biosynthesized silver
nanoparticles: a step forward for cancer theranostics? Nanomedicine
9(10):1445–1448
Prasad R (2014) Synthesis of silver nanoparticles in photosynthetic
plants. J Nanopart 1–8
Prasad R, Pandey R, Barman I (2015) Engineering tailored nanoparticles with microbes: quo vadis? Wiley Interdisc Rev Nanomed
Nanobiotechnol 8:316–330
Prasad R, Bhattacharyya A, Nguyen QD (2017) Nanotechnology in
sustainable agriculture: recent developments, challenges, and perspectives. Front Microbiol 8:10–14
Raskar SV, Laware SL (2014) Effect of zinc oxide nanoparticles on
cytology and seed germination in onion. Int J Curr Microbiol App
Sci 3:467–473
Rotariu L, Bala C, Magearu (2002) Yeast cells sucrose biosensor based
on a potentiometric oxygen electrode. Analytica Chimica Acta
458:215–222
Sabir S, Arshad M, Chaudhari SK (2014) Zinc oxide nanoparticles for
revolutionizing agriculture: synthesis and applications. Sci World J
1–8
Bio-nanosensors: Synthesis and Their Substantial Role …
171
Ali MA, Jiang H, Mahal NK, Weber RJ, Kumar R, Castellano MJ,
Dong L (2017) Microfluidic impedimetric sensor for soil nitrate
detection using graphene oxide and conductive nanofibers enabled
sensing interface. Sens Actuators B. Chem 239:1289–1299
Bakhori N, Yusof N, Abdullah A, Hussein M (2013) Development of a
fluorescence resonance energy transfer (FRET)-based DNA biosensor for detection of synthetic oligonucleotide of ganoderma
boninense. Biosensors 3:419–428
Bose D, Chatterjee S (2016) Biogenic synthesis of silver nanoparticles
using guava (Psidium guajava) leaf extract and its antibacterial
activity against Pseudomonas aeruginosa. Appl Nanosci 6:895–901
Cesarino I, Moraes FC, Lanza MR, Machado SA (2012) Electrochemical detection of carbamate pesticides in fruit and vegetables with a
biosensor based on acetylcholinesterase immobilised on a composite of polyaniline–carbon nanotubes. Food Chem 135:873–879
Chattopadhyay DP, Patel BH (2016) Synthesis, characterization and
application of nano cellulose for enhanced performance of
textiles. J Text Sci Eng 6:184–215
Chen H, Yada R (2011) Nanotechnologies in agriculture: new tools for
sustainable development. Trends Food Sci Technol 22:585–594
Deng HH, Hong GL, Lin FL, Liu AL, Xia XH, Chen W (2016)
Colorimetric detection of urea, urease, and urease inhibitor based on
the peroxidase-like activity of gold nanoparticles. Anal Chim Acta
915:74–80
DeRosa MC, Monreal C, Schnitzer M, Walsh R, Sultan Y (2010)
Nanotechnology in fertilizers. Nat Nanotechnol 5:91
Dong J, Fan X, Qiao F, Ai S, Xin H (2013) A novel protocol for
ultra-trace detection of pesticides combined electrochemical reduction of Ellman’s reagent with acetylcholinesterase inhibition. Anal
Chim Acta 25:78–83
Dutta S, Padhye S, Narayanaswamy R, Persaud KC (2001) An optical
biosensor employing tiron-immobilised polypyrrole films for estimating monophenolase activity in apple juice. Biosens Bioelectron
16:287–294
Fang A, Chen H, Li H, Liu M, Zhang Y, Yao S (2017) Glutathione
regulation-based dual-functional upconversion sensing-platform for
acetylcholinesterase activity and cadmium ions. Biosens Bioelectron 87:545–551
Feynman R (1960) There’s plenty of room at the bottom. Eng Sci
23:22–36
Ganeshkumar R, Sopiha KV, Wu P, Cheah CW, Zhao R (2016)
Ferroelectric KNbO 3 nanofibers: synthesis, characterization and
their application as a humidity nanosensor. Nanotechnology
27:395607
Ghorbanpour M, Fahimirad S (2017) Plant nanobionics a novel
approach to overcome the environmental challenges. In: Medicinal
plants and environmental challenges. Springer, Berlin, pp 247–257
Giraldo JP, Landry MP, Faltermeier SM, McNicholas TP, Iverson NM,
Boghossian AA, Reuel NF, Hilmer AJ, Sen F, Brew JA, Strano MS
(2014) Erratum: corrigendum: plant nanobionics approach to
augment photosynthesis and biochemical sensing. Nat Mater 13:530
Haddaoui M, Raouafi N (2015) Chlortoluron-induced enzymatic
activity inhibition in tyrosinase/ZnO NPs/SPCE biosensor for the
detection of ppb levels of herbicide. Sens Actuators B: Chem
219:171–178
Hulkoti NI, Taranath TC (2014) Biosynthesis of nanoparticles using
microbes—a review. Colloids Surf, B 121:474–483
Iravani S (2011) Green synthesis of metal nanoparticles using plants.
Green Chem 13:2638
Kharat M, Du Z, Zhang G, McClements DJ (2017) Physical and
chemical stability of curcumin in aqueous solutions and emulsions:
impact of pH, temperature, and molecular environment. J Agric
Food Chem 65:1525–1532
Khodakovskaya M, Dervishi E, Mahmood M, Xu Y, Li Z, Watanabe F,
Biris AS (2009) Retraction notice for carbon nanotubes are able to
penetrate plant seed coat and dramatically affect seed germination
and plant growth. ACS Nano 6(8):7541
Kim M, Kim MJ (2003) Isocitrate analysis using a potentiometric
biosensor with immobilized enzyme in a FIA system. Food Res Int
36:223–230
Koedrith P, Thasiphu T, Tuitemwong K, Boonprasert R, Tuitemwong P
(2014) Recent advances in potential nanoparticles and nanotechnology for sensing food-borne pathogens and their toxins in foods
and crops: current technologies and limitations. Sens Mater 711
Kwak SY, Giraldo JP, Wong MH, Koman VB, Lew TT, Ell J,
Weidman MC, Sinclair RM, Landry MP, Tisdale WA, Strano MS
(2017) A nanobionic light-emitting plant. Nano Lett 17(12):7951–
7961
Lin D, Xing B (2008) Root uptake and phytotoxicity of ZnO
nanoparticles. Environm Sci Technol 42:5580–5585
Liu D, Chen W, Wei J, Li X, Wang Z, Jiang X (2012) A highly
sensitive, dual-readout assay based on gold nanoparticles for
organophosphorus and carbamate pesticides. Anal Chem
84:4185–4191
Mandal D, Bolander ME, Mukhopadhyay D, Sarkar G, Mukherjee P
(2005) The use of microorganisms for the formation of metal
nanoparticles and their application. Appl Microbiol Biotechnol
69:85–92
McLamore ES, Diggs A, Calvo Marzal P, Shi J, Blakeslee JJ, Peer WA,
Murphy AS, Porterfield DM (2010) Non-invasive quantification of
endogenous root auxin transport using an integrated flux microsensor technique. Plant J 63:1004–1016
Mukhopadhyay SS (2014) Nanotechnology in agriculture: prospects
and constraints. Nanotechnol Sci Appl 63
Narayanan KB, Sakthivel N (2010) Biological synthesis of metal
nanoparticles by microbes. Adv Coll Interface Sci 156:1–13
Norouzi P (2017) A novel admittometric sensor for determination of
theophylline using FFT coulometric admittance voltammetry and
flow injection analysis. Int J Electrochem Sci 10057–10070
Otles S, Yalcin B (2012) Review on the application of nanobiosensors
in food analysis. Acta Scientiarum Polonorum Technologia Alimentaria 11:7–18
Pan P, Miao Z, Yanhua L, Linan Z, Haiyan R, Pan K, Linpei P (2016)
Preparation and evaluation of a stable solid state ion selective
electrode of polypyrrole/electrochemically reduced graphene/glassy
carbon substrate for soil nitrate sensing. Int J Electrochem Sci
11:4779–4793
Patra CR, Mukherjee S, Kotcherlakota R (2014) Biosynthesized silver
nanoparticles: a step forward for cancer theranostics? Nanomedicine
9(10):1445–1448
Prasad R (2014) Synthesis of silver nanoparticles in photosynthetic
plants. J Nanopart 1–8
Prasad R, Pandey R, Barman I (2015) Engineering tailored nanoparticles with microbes: quo vadis? Wiley Interdisc Rev Nanomed
Nanobiotechnol 8:316–330
Prasad R, Bhattacharyya A, Nguyen QD (2017) Nanotechnology in
sustainable agriculture: recent developments, challenges, and perspectives. Front Microbiol 8:10–14
Raskar SV, Laware SL (2014) Effect of zinc oxide nanoparticles on
cytology and seed germination in onion. Int J Curr Microbiol App
Sci 3:467–473
Rotariu L, Bala C, Magearu (2002) Yeast cells sucrose biosensor based
on a potentiometric oxygen electrode. Analytica Chimica Acta
458:215–222
Sabir S, Arshad M, Chaudhari SK (2014) Zinc oxide nanoparticles for
revolutionizing agriculture: synthesis and applications. Sci World J
1–8
Bio-nanosensors: Synthesis and Their Substantial Role …
171
