Impedimetric detection of Banana bunchy top virus using CdSe quantum dots for signal amplification

S. Majumder1, Bhaskar Bhattacharya2, Pramod K. Singh3, Shivangi Johari1, B. Singh1, Razia Rahman1
1Department of Biotechnology, School of Engineering and Technology, Sharda University, Greater Noida, 201306, India
2Department of Physics, Mahila Maha Vidhyalaya, Banaras Hindu University, Varanasi, 221005, India
3Department of Physics, School of Basic Sciences and Research, Sharda University, Greater Noida, 201310, India

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Jain SM, Swennen R (2004) Banana improvement: cellular, molecular biology, and induced mutations. Science Publishers, Enfield

Frison EE, Escalant JV, Sharrock S (2001) The global Musa genomic consortium: a boost for banana improvement. In: Jain SM, Swennen R (eds) Banana improvement: cellular, molecular biology and induced mutations. Science Publishers, Enfield, pp 24–28

Selvarajan R, Balasubramanian V (2008) Banana viruses. In: Rao GP, Myrta A, Ling KS (eds) Characterization, diagnosis and management of plant viruses. Studium Press LLC, Houston, pp 109–124

Geering ADW (2009) Viral pathogens of banana: outstanding questions and options for control. Acta Hortic 828:39–50. https://doi.org/10.17660/ActaHortic.2009.828.2

Lockhart BE (2011) Viruses that threaten banana and plantain production in the Caribbean. In: Proceedings of the 47th annual meeting of Caribbean food crops society. Barbados

Kumar PL, Selvarajan R, Iskra-Caruana ML, Chabannes M, Hanna R (2015) Biology, etiology, and control of virus diseases of banana and plantain. In: Loebenstein G, Katis NI (eds) Advances in virus research, vol 91. Academic Press, London, pp 229–269

Dale JL (1987) Banana bunchy top: an economically important tropical plant virus disease. Adv Virus Res 33:301–325

Daar AS, Thorsteinsdóttir H, Martin DK, Smith AC, Nast S, Singer PA (2002) Top ten biotechnologies for improving health in developing countries. Nat Genet 32:229–232

Rusling JF, Kumar CV, Gutkind JS, Patel V (2010) Measurement of biomarker proteins for point-of-care early detection and monitoring of cancer. Analyst 135:2496–2511

Storch GA (2000) Diagnostic virology. Clin Infect Dise 31:739–751

Lockhart BE (2013) Certification of virus infection status of banana and plantain germplasm and propagating stock: some questions and a few answers. In: Proceedings of XX Acorbat international meeting. Brazil

Lequin RM (2005) Enzyme immunoassay (EIA)/enzyme-linked immunosorbent assay (ELISA). Clin Chem 51:2415–2418

Luo Y, Zhang B, Chen M, Jiang T, Zhou D, Huang J, Fu W (2012) Sensitive and rapid quantification of C-reactive protein using quantum dot-labeled microplate immunoassay. J Trans Med. https://doi.org/10.1186/1479-5876-10-24

Hnasko R, Lin A, McGarvey JA, Stanker LH (2011) A rapid method to improve protein detection by indirect ELISA. Biochem Biophys Res Commun 410:726–731. https://doi.org/10.1016/j.bbrc.2011.06.005

Ricci F, Adornetto G, Palleschi G (2012) A review of experimental aspects of electrochemical immunosensors. Electrochim Acta 84:74–83. https://doi.org/10.1016/j.electacta.2012.06.033

Aziz N, Nishanian P, Mitsuyasu R, Detels R, Fahey JL (1999) Variables that affect assays for plasma cytokines and soluble activation markers. Clin Diagn Lab Immunol 6:89–95

Zhu Z, Shi L, Feng H, Zhou HS (2015) Single domain antibody coated gold nanoparticles as enhancer for Clostridium difficile toxin detection by electrochemical impedance immunosensors. Bioelectrochem 101:153–158

Patolsky F, Filanovsky B, Katz E, Willner I (1998) Photoswitchable antigen-antibody interactions studied by impedance spectroscopy. J Phys Chem 102:10359–10367. https://doi.org/10.1021/jp983700n

Wang J, Ibáñez A, Chatrathi MP, Escarpa A (2001) Electrochemical enzyme immunoassays on microchip platforms. Anal Chem 73:5323–5327

Wang J (2006) Analytical electrochemistry. Wiley, New York

Loaiza ÓA, Jubete E, Ochoteco E, Cabañero G, Grande H, Rodríguez J (2011) Gold coated ferric oxide nanoparticles based disposable magnetic genosensors for the detection of DNA hybridization processes. Biosens Bioelectron 26:2194–2200. https://doi.org/10.1016/j.bios.2010.09.034

Scheller FW, Schubert F, Fedrowitz J (2013) Frontiers in biosensorics I: fundamental aspects. Birkhäuser Verlag, Basel

Skládal P, Kovář D, Krajíček V, Šišková P, Přibyl J, Švábenská E (2013) Electrochemical immunosensors for detection of microorganisms. Int J Electrochem Sci 8:1635–1649

Willner B, Blonder R, Heleg-Shabtai V, Bückmann AF (1997) Assembly of functionalized monolayers of redox proteins on electrode surfaces: novel bioelectronic and optobioelectronic systems. Biosens Bioelectron 12:337–356

Ghindilis AL, Atanasov P, Wilkins M, Wilkins E (1998) Immunosensors: electrochemical sensing and other engineering approaches. Biosens Bioelectron 13:113–131. https://doi.org/10.1016/S0956-5663(97)00031-6

Chikkaveeraiah BV, Bhirde AA, Morgan NY, Eden HS, Chen X (2012) Electrochemical immunosensors for detection of cancer protein biomarkers. ACS Nano 6:6546–6561. https://doi.org/10.1021/nn3023969

Pei R, Cheng Z, Wang E, Yang X (2001) Amplification of antigen–antibody interactions based on biotin labeled protein–streptavidin network complex using impedance spectroscopy. Biosens Bioelectron 16:355–361. https://doi.org/10.1016/S0956-5663(01)00150-6

Daniel MC, Astruc D (2004) Gold nanoparticles: assembly, supramolecular chemistry, quantum-size-related properties, and applications toward biology, catalysis, and nanotechnology. Chem Rev 104:293–346. https://doi.org/10.1021/cr030698+

Cui R, Pan HC, Zhu JJ, Chen HY (2007) Versatile immunosensor using CdTe quantum dots as electrochemical and fluorescent labels. Anal Chem 79:8494–8501. https://doi.org/10.1021/ac070923d

Li Y, Schluesener HJ, Xu S (2010) Gold nanoparticle-based biosensors. Gold Bull 43:29–41

Cao X, Ye Y, Liu S (2011) Gold nanoparticle-based signal amplification for biosensing. Anal Biochem 41:1–16. https://doi.org/10.1016/j.ab.2011.05.027

Majumder S, Bhattacharya B, Singh PK, Johari S (2013) Detection of banana bunchy top virus using impedance spectroscopy. Sens Lett 11:2055–2059. https://doi.org/10.1166/sl.2013.3061

Majumder S, Johari S (2018) Development of a gold-nano particle based novel dot immunobinding assay for rapid and sensitive detection of Banana bunchy top virus. J Virol Methods 255:23–28. https://doi.org/10.1016/j.jviromet.2018.01.015

Surana K, Salisu IT, Mehra RM, Bhattacharya B (2018) A simple synthesis route of low temperature CdSe–CdS core-shell quantum dots and its application in solar cell. Opt Mater 82:135–140

Kumar A, Boruah BM, Liang XJ (2011) Gold nanoparticles: promising nanomaterials for the diagnosis of cancer and HIV/AIDS. J Nanomater 22:1–18

Morales-Narváeza E, Pérez-Lópeza B, Pires LB, Merkoçi A (2012) Simple Förster resonance energy transfer evidence for the ultrahigh quantum dot quenching efficiency by graphene oxide compared to other carbon structures. Carbon 50:2987–2993

Jacobs M, Selvam AP, Craven JE, Prasad S (2014) Antibody-conjugated gold nanoparticle-based immunosensor for ultra-sensitive detection of troponin-T. J Lab Autom 19:546–554. https://doi.org/10.1177/2211068214538971

Ambrosi A, Castañeda MT, Killard AJ, Smyth MR, Alegret S, Merkoçi A (2007) Double-codified gold nanolabels for enhanced immunoanalysis. Anal Chem 79:5232–5240. https://doi.org/10.1021/ac070357m

Ambrosi A, Airo F, Merkoçi A (2009) Enhanced gold nanoparticle based ELISA for a breast cancer biomarker. Anal Chem 82:1151–1156. https://doi.org/10.1021/ac902492c

de la Escosura-Muñiz A, Sánchez-Espinel C, Díaz-Freitas B, González-Fernández Á, Maltez-da Costa M, Merkoçi A (2009) Rapid identification and quantification of tumor cells using an electrocatalytic method based on gold nanoparticles. Anal Chem 81:10268–10274. https://doi.org/10.1021/ac902087k

Xing Y, Chaudry Q, Shen C, Kong KY, Zhau HE, Chung LW, Wang MD (2007) Bioconjugated quantum dots for multiplexed and quantitative immunohistochemistry. Nat Protoc 2:1152–1165

Xing Y, Rao J (2008) Quantum dot bioconjugates for in vitro diagnostics & in vivo imaging. Cancer Biomark 4:307–319

Lakowicz JR (1999) Principles of fluorescence spectroscopy. Plenum Press, New York

Chivers CE, Koner AL, Lowe ED, Howarth M (2011) How the biotin–streptavidin interaction was made even stronger: investigation via crystallography and a chimaeric tetramer. Biochem J 435:55–63

Otieno BA, Krause CE, Rusling JF (2016) Bioconjugation of antibodies and enzyme labels onto magnetic beads. In: Kumar CV (ed) Methods in enzymology. Academic Press, London, pp 135–150