Human virus detection with graphene-based materials
Jazyk angličtina Země Velká Británie, Anglie Médium print-electronic
Typ dokumentu časopisecké články, přehledy
PubMed
32750677
PubMed Central
PMC7375321
DOI
10.1016/j.bios.2020.112436
PII: S0956-5663(20)30430-9
Knihovny.cz E-zdroje
- Klíčová slova
- Biosensor, Graphene, Nanocomposite, SARS-CoV-2, Virus,
- MeSH
- Betacoronavirus genetika izolace a purifikace patogenita MeSH
- biosenzitivní techniky * přístrojové vybavení metody trendy MeSH
- COVID-19 MeSH
- design vybavení MeSH
- DNA virů analýza genetika MeSH
- elektrochemické techniky MeSH
- grafit * chemie MeSH
- hybridizace nukleových kyselin MeSH
- klinické laboratorní techniky * přístrojové vybavení metody statistika a číselné údaje MeSH
- kolorimetrie MeSH
- koronavirové infekce diagnóza epidemiologie virologie MeSH
- kvantové tečky chemie MeSH
- lidé MeSH
- luminiscence MeSH
- nanostruktury chemie MeSH
- pandemie MeSH
- povrchová plasmonová rezonance MeSH
- Ramanova spektroskopie MeSH
- reakce antigenu s protilátkou MeSH
- SARS-CoV-2 MeSH
- testování na COVID-19 MeSH
- virologie metody MeSH
- virová pneumonie diagnóza epidemiologie virologie MeSH
- viry genetika izolace a purifikace patogenita MeSH
- Check Tag
- lidé MeSH
- Publikační typ
- časopisecké články MeSH
- přehledy MeSH
- Názvy látek
- DNA virů MeSH
- grafit * MeSH
Our recent experience of the COVID-19 pandemic has highlighted the importance of easy-to-use, quick, cheap, sensitive and selective detection of virus pathogens for the efficient monitoring and treatment of virus diseases. Early detection of viruses provides essential information about possible efficient and targeted treatments, prolongs the therapeutic window and hence reduces morbidity. Graphene is a lightweight, chemically stable and conductive material that can be successfully utilized for the detection of various virus strains. The sensitivity and selectivity of graphene can be enhanced by its functionalization or combination with other materials. Introducing suitable functional groups and/or counterparts in the hybrid structure enables tuning of the optical and electrical properties, which is particularly attractive for rapid and easy-to-use virus detection. In this review, we cover all the different types of graphene-based sensors available for virus detection, including, e.g., photoluminescence and colorimetric sensors, and surface plasmon resonance biosensors. Various strategies of electrochemical detection of viruses based on, e.g., DNA hybridization or antigen-antibody interactions, are also discussed. We summarize the current state-of-the-art applications of graphene-based systems for sensing a variety of viruses, e.g., SARS-CoV-2, influenza, dengue fever, hepatitis C virus, HIV, rotavirus and Zika virus. General principles, mechanisms of action, advantages and drawbacks are presented to provide useful information for the further development and construction of advanced virus biosensors. We highlight that the unique and tunable physicochemical properties of graphene-based nanomaterials make them ideal candidates for engineering and miniaturization of biosensors.
Zobrazit více v PubMed
Abd Muain M.F., Cheo K.H., Omar M.N., Amir Hamzah A.S., Lim H.N., Salleh A.B., Tan W.S., Ahmad Tajudin A. Bioelectrochemistry. 2018;122:199–205. PubMed
Afsahi S., Lerner M.B., Goldstein J.M., Lee J., Tang X., Bagarozzi D.A., Pan D., Locascio L., Walker A., Barron F., Goldsmith B.R. Biosens. Bioelectron. 2018;100:85–88. PubMed
Agrawal A., Tripp R.A., Anderson L.J., Nie S. J. Virol. 2005;79:8625–8628. PubMed PMC
Ahour F., Shamsi A. Anal. Biochem. 2017;532:64–71. PubMed
Alizadeh N., Hallaj R., Salimi A. Electroanalysis. 2018;30:402–414.
Allen M.J., Tung V.C., Kaner R.B. Chem. Rev. 2010;110:132–145. PubMed
Alwarappan S., Boyapalle S., Kumar A., Li C.Z., Mohapatra S. J. Phys. Chem. C. 2012;116:6556–6559.
Ambrosi A., Chua C.K., Latiff N.M., Loo A.H., Wong C.H.A., Eng A.Y.S., Bonanni A., Pumera M. Chem. Soc. Rev. 2016;9:2458–2493. PubMed
Ananthanarayanan A., Wang Y., Routh P., Sk M.A., Than A., Lin M., Zhang J., Chen J., Sun H., Chen P. Nanoscale. 2015;7:8159–8165. PubMed
Anik Ü., Tepeli Y., Sayhi M., Nsiri J., Diouani M.F. Analyst. 2018;143:150–156. PubMed
Arce L.P., Müller M.F., Martinez A., Baiker A., Marranzino G., Agote F., Vizoso-Pinto M.G. Front. Microbiol. 2019;10:2481. PubMed PMC
Badyda A.J., Dabrowiecki P., Lubinski W., Czechowski P.O., Majewski G., Chcialowski A., Kraszewski A. Springer; Dordrecht: 2013. Neurobiology of Respiration; pp. 229–235. PubMed
Bae S., Kim H., Lee Y., Xu X., Park J.S., Zheng Y., Balakrishnan J., Lei T., Ri Kim H., Song Y. Il, Kim Y.J., Kim K.S., Özyilmaz B., Ahn J.H., Hong B.H., Iijima S. Nat. Nanotechnol. 2010;5:574–578. PubMed
Bakandritsos A., Pykal M., Boński P., Jakubec P., Chronopoulos D.D., Poláková K., Georgakilas V., Čépe K., Tomanec O., Ranc V., Bourlinos A.B., Zbořil R., Otyepka M. ACS Nano. 2017;11:2982–2991. PubMed PMC
Baltimore D. Bacteriol. Rev. 1971;35:235–241. PubMed PMC
Banchereau J., Rousset F. Nature. 1991;353:678–679. PubMed
Barré-Sinoussi F., Chermann J.C., Rey F., Nugeyre M.T., Chamaret S., Gruest J., Dauguet C., Axler-Blin C., Vézinet-Brun F., Rouzioux C., Rozenbaum W., Montagnier L. Science. 1983;220:868–871. PubMed
Becerril H.A., Mao J., Liu Z., Stoltenberg R.M., Bao Z., Chen Y. ACS Nano. 2008;2:463–470. PubMed
Bonar M.M., Tilton J.C. Virology. 2017;505:80–90. PubMed PMC
Boonham N., Kreuze J., Winter S., van der Vlugt R., Bergervoet J., Tomlinson J., Mumford R. Virus Res. 2014;186:20–31. PubMed
Boukhvalov D.W., Katsnelson M.I. Nano Lett. 2008;8:4374–4379. PubMed
Briese T., Kapoor A., Mishra N., Jain K., Kumar A., Jabado O.J., Ian Lipkin W. 2015. mBio 6; p. e01491. 15. PubMed PMC
Burghard M., Klauk H., Kern K. Adv. Mater. 2009;21:2586–2600. PubMed
Cao J., Li D. J. Cell. Biochem. 2018;119:4897–4906. PubMed
Castro Neto A.H., Guinea F., Peres N.M.R., Novoselov K.S., Geim A.K. Rev. Mod. Phys. 2009;81:109–162.
Chan C., Shi J., Fan Y., Yang M. Sensor. Actuator. B Chem. 2017;251:927–933.
Chee S.Y., Pumera M. Analyst. 2012;137:2039–2041. PubMed
Chekin F., Bagga K., Subramanian P., Jijie R., Singh S.K., Kurungot S., Boukherroub R., Szunerits S. Sensor. Actuator. B Chem. 2018;262:991–1000.
Chen C., Wang J. Analyst. 2020;145:1605–1628. PubMed
Chen D., Tang L., Li J. Chem. Soc. Rev. 2010;39:3157–3180. PubMed
Cheng C., Li S., Thomas A., Kotov N.A., Haag R. Chem. Rev. 2017;117:1826–1914. PubMed
Cheng W., Ding C., Nie X., Duan T., Ding R. ACS Sustain. Chem. Eng. 2017;5:5503–5511.
Chia X., Ambrosi A., Otyepka M., Zbořil R., Pumera M. Chem. Eur J. 2014;20:6665–6671. PubMed
Chowdhury A.D., Ganganboina A.B., Nasrin F., Takemura K., Doong R.A., Utomo D.I.S., Lee J., Khoris I.M., Park E.Y. Anal. Chem. 2018;90:12464–12474. PubMed
Chowdhury A.D., Takemura K., Li T.C., Suzuki T., Park E.Y. Nat. Commun. 2019;10:1–12. PubMed PMC
Chronopoulos D.D., Bakandritsos A., Pykal M., Zbořil R., Otyepka M. Appl. Mater. Today. 2017;9:60–70. PubMed PMC
Chua C.K., Pumera M. Chem. Soc. Rev. 2014;324:762–772. PubMed
Chung C., Kim Y.K., Shin D., Ryoo S.R., Hong B.H., Min D.H. Acc. Chem. Res. 2013;46:2211–2224. PubMed
Chung S., Revia R.A., Zhang M. Adv. Mater. 2019;69:1426–1544.
Compton O.C., Nguyen S.T. Small. 2010;6:711–723. PubMed
Corman V.M., Landt O., Kaiser M., Molenkamp R., Meijer A., Chu D.K., Bleicker T., Brünink S., Schneider J., Schmidt M.L., Mulders D.G., Haagmans B.L., van der Veer B., van den Brink S., Wijsman L., Goderski G., Romette J.-L., Ellis J., Zambon M., Peiris M., Goossens H., Reusken C., Koopmans M.P., Drosten C. Euro Surveill. 2020;25:2000045. PubMed
Crucian B.E., Stowe R.P., Pierson D.L., Sams C.F. J. Immunol. Methods. 2001;247:35–47. PubMed
Cui J., Li F., Shi Z.L. Nat. Rev. Microbiol. 2019;17:181–192. PubMed PMC
Cui L., Chen Z., Zhu Z., Lin X., Chen X., Yang C.J. Anal. Chem. 2013;85:2269–2275. PubMed
Davis B.M., Rall G.F., Schnell M.J. Annu. Rev. Virol. 2015;2:451–471. PubMed PMC
Dennehy P.H. Infect. Dis. Clin. 2015;29:617–635. PubMed
Ding X., Yin K., Li Z., Liu C. BioRxiv. 2020 doi: 10.1101/2020.03.19.998724. DOI
Draz M.S., Fang B.A., Zhang P., Hu Z., Gu S., Weng K.C., Gray J.W., Chen F.F. Theranostics. 2014;29:617–635. PubMed PMC
Dreyer D.R., Park S., Bielawski C.W., Ruoff R.S. Chem. Soc. Rev. 2010;39:228–240. PubMed
Duinhoven S., Poort R., Van der Voet G., Agterof W.G.M., Norde W., Lyklema J. J. Colloid Interface Sci. 1995;170:340–350.
Dulbecco R. Proc. Natl. Acad. Sci. Unit. States Am. 1952;38:747–752. PubMed PMC
Elias D.C., Nair R.R., Mohiuddin T.M.G., Morozov S.V., Blake P., Halsall M.P., Ferrari A.C., Boukhvalov D.W., Katsnelson M.I., Geim A.K., Novoselov K.S. Science. 2009;323:610–613. PubMed
Fan J., Yuan L., Liu Q., Tong C., Wang W., Xiao F., Liu B., Liu X. Analyst. 2019;144:3972–3979. PubMed
Fan Z., Li S., Yuan F., Fan L. RSC Adv. 2015;5:19773–19789.
Fan Z., Yust B., Nellore B.P.V., Sinha S.S., Kanchanapally R., Crouch R.A., Pramanik A., Chavva S.R., Sardar D., Ray P.C. J. Phys. Chem. Lett. 2014;5:3216–3221. PubMed
Fang Y., Wang E. Chem. Commun. 2013;49:9526–9539. PubMed
Feng X., Zhang Y., Zhou J., Li Y., Chen S., Zhang L., Ma Y., Wang L., Yan X. Nanoscale. 2015;7:2427–2432. PubMed
Fowler J.D., Allen M.J., Tung V.C., Yang Y., Kaner R.B., Weiller B.H. ACS Nano. 2009;3:301–306. PubMed
Franklin R.E. Nature. 1955;175:379–381. PubMed
Gani A.W., Wei W., Shi R.Z., Ng E., Nguyen M., Chua M.S., So S., Wang S.X. Sci. Rep. 2019;9:15615. PubMed PMC
Gao M., Tang B.Z. ACS Sens. 2017;2:1382–1399. PubMed
Georgakilas V., Otyepka M., Bourlinos A.B., Chandra V., Kim N., Kemp K.C., Hobza P., Zboril R., Kim K.S. Chem. Rev. 2012;112:6156–6214. PubMed
Georgakilas V., Perman J.A., Tucek J., Zboril R. Chem. Rev. 2015;115:4744–4822. PubMed
Georgakilas V., Tiwari J.N., Kemp K.C., Perman J.A., Bourlinos A.B., Kim K.S., Zboril R. Chem. Rev. 2016;116:5464–5519. PubMed
Ghanbari K., Roushani M., Azadbakht A. Anal. Biochem. 2017;534:64–69. PubMed
Gilje S., Han S., Wang M., Wang K.L., Kaner R.B. Nano Lett. 2007;7:3394–3398. PubMed
Goldsmith C.S., Miller S.E. Clin. Microbiol. Rev. 2009;22:552–563. PubMed PMC
Gómez-Navarro C., Weitz R.T., Bittner A.M., Scolari M., Mews A., Burghard M., Kern K. Nano Lett. 2007;7:3499–3503. PubMed
Gong Q., Han H., Yang H., Zhang M., Sun X., Liang Y., Liu Z., Zhang W., Qiao J. J. Mater. 2019;5:313–319.
Gong W., Jiang S., Li Z., Li C., Xu J., Pan J., Huo Y., Man B., Liu A., Zhang C. Optic Express. 2019;27:3483. PubMed
Granatier J., Lazar P., Prucek R., Šafářová K., Zbořil R., Otyepka M., Hobza P. J. Phys. Chem. C. 2012;116:14151–14162.
Grubaugh N.D., Ladner J.T., Lemey P., Pybus O.G., Rambaut A., Holmes E.C., Andersen K.G. Nat. Microbiol. 2019;4:10–19. PubMed PMC
Halstead S.B. Science. 1988;239:476–481. PubMed
Hasanzadeh M., Shadjou N. Mater. Sci. Eng. C. 2017;71:1313–1326. PubMed
He S., Song B., Li D., Zhu C., Qi W., Wen Y., Wang L., Song S., Fang H., Fan C. Adv. Funct. Mater. 2010;20:453–459.
Heng Cheong Y., Nasir M.Z.M., Bakandritsos A., Pykal M., Jakubec P., Zbořil R., Otyepka M., Pumera M. ChemElectroChem. 2019;6:229–234.
Hernandez Y., Nicolosi V., Lotya M., Blighe F.M., Sun Z., De S., McGovern I.T., Holland B., Byrne M., Gun’ko Y.K., Boland J.J., Niraj P., Duesberg G., Krishnamurthy S., Goodhue R., Hutchison J., Scardaci V., Ferrari A.C., Coleman J.N. Nat. Nanotechnol. 2008;3:563–568. PubMed
Hirst G.K. J. Exp. Med. 1942;75:49–64. PubMed PMC
Hola K., Zhang Y., Wang Y., Giannelis E.P., Zboril R., Rogach A.L. Nano Today. 2014;9:590–603.
Holmes E.C., Dudas G., Rambaut A., Andersen K.G. Nature. 2016;53:193–200. PubMed PMC
Horiya S., Bailey J.K., Temme J.S., Guillen Schlippe Y.V., Krauss I.J. J. Am. Chem. Soc. 2014;136:5407–5415. PubMed PMC
Hu L., Zhang Y., Nie L., Xie C., Yan Z. Spectrochim. Acta Part A Mol. Biomol. Spectrosc. 2013;104:87–91. PubMed
Huang H., Bai W., Dong C., Guo R., Liu Z. Biosens. Bioelectron. 2015;68:442–446. PubMed
Huang J., Xie Zhixun, Xie Zhiqin, Luo S., Xie L., Huang L., Fan Q., Zhang Y., Wang S., Zeng T. Anal. Chim. Acta. 2016;913:121–127. PubMed
Hutchinson E.C. Trends Microbiol. 2018;26:809–810. PubMed
Iliafar S., Mittal J., Vezenov D., Jagota A. J. Am. Chem. Soc. 2014;136:12947–12957. PubMed
Iravani S., Varma R.S. Environ. Chem. Lett. 2020;18:703–727. PubMed PMC
Islam S., Shukla S., Bajpai V.K., Han Y.K., Huh Y.S., Kumar A., Ghosh A., Gandhi S. Biosens. Bioelectron. 2019;126:792–799. PubMed
Jabłońska A., Jaworska A., Kasztelan M., Berbeć S., Pałys B. Curr. Med. Chem. 2018;26:6878–6895. PubMed
Jacob S.T., Crozier I., Fischer W.A., Hewlett A., Kraft C.S., Vega M.A. de La, Soka M.J., Wahl V., Griffiths A., Bollinger L., Kuhn J.H. Nat. Rev. Dis. Prim. 2020;6:1–31. PubMed PMC
Jacobs S.E., Lamson D.M., Kirsten S., Walsh T.J. Clin. Microbiol. Rev. 2013;26:135–162. PubMed PMC
Jeong S., Kim D.M., An S.Y., Kim D.H., Kim D.E. Anal. Biochem. 2018;561–562:66–69. PubMed
Jiang P., Li Y., Ju T., Cheng W., Xu J., Han K. Chem. Res. Chin. Univ. 2020;36:323–337.
Jin S.A., Poudyal S., Marinero E.E., Kuhn R.J., Stanciu L.A. Electrochim. Acta. 2016;194:422–430.
Jin X., Zhang H., Li Y.T., Xiao M.M., Zhang Z.L., Pang D.W., Wong G., Zhang Z.Y., Zhang G.J. Microchim. Acta. 2019;186:435–453. PubMed
Jorgenson R.C., Yee S.S. Sensors and Acruofors. 1993;8:213–220.
Joshi S.R., Sharma A., Kim G.H., Jang J. Mater. Sci. Eng. C. 2020;108:110–465. PubMed
Jung J.H., Cheon D.S., Liu F., Lee K.B., Seo T.S. Angew. Chem. 2010;122:5844–5847. PubMed
Kanagavalli P., Veerapandian M. Biosens. Bioelectron. 2020;150:456–524. PubMed
Karimi A., Othman A., Uzunoglu A., Stanciu L., Andreescu S. Nanoscale. 2015;150:435–471. PubMed
Karlický F., Kumara Ramanatha Datta K., Otyepka M., Zbořil R. ACS Nano. 2013;7:6434–6464. PubMed
Kashir J., Yaqinuddin A. Med. Hypotheses. 2020;141:109786. PubMed PMC
Kaye K.M., Izumi K.M., Kieff E. Proc. Natl. Acad. Sci. U.S.A. 1993;90:9150–9154. PubMed PMC
Kim J., Cote L.J., Kim F., Yuan W., Shull K.R., Huang J. J. Am. Chem. Soc. 2010;132:8180–8186. PubMed
Kim J., Park S.J., Min D.H. Anal. Chem. 2017;89:232–248. PubMed
Kim S., Ryoo S.R., Na H.K., Kim Y.K., Choi B.S., Lee Y., Kim D.E., Min D.H. Chem. Commun. 2013;49:8241–8243. PubMed
Kong J., Franklin N.R., Zhou C., Chapline M.G., Peng S., Cho K., Dai H. Science. 2000;287:622–625. PubMed
Kosik I., Yewdell J.W. Viruses. 2019;11:34–49. PubMed PMC
Kris Erickson B., Erni Rolf, Lee Zonghoon, Alem Nasim, Gannett Will, Zettl Alex, Erickson K., Alem N., Gannett W., Zettl A., Erni R., Lee Z. Adv. Mater. 2010;11:234–256.
Krishnan S.K., Singh E., Singh P., Meyyappan M., Singh Nalwa H. RSC Adv. 2019;16:123–130. PubMed PMC
Kuila T., Bose S., Khanra P., Mishra A.K., Kim N.H., Lee J.H. Biosens. Bioelectron. 2011;26:4637–4648. PubMed
Kurane I. Comp. Immunol. Microbiol. Infect. Dis. 2007;30:329–340. PubMed
Lawal A.T. Biosens. Bioelectron. 2018;106:149–178. PubMed
Lazar P., Karlický F., Jurecka P., Kocman M., Otyepková E., Šafářová K., Otyepka M. J. Am. Chem. Soc. 2013;135:6372–6377. PubMed
Lee J., Takemura K., Kato C.N., Suzuki T., Park E.Y. ACS Appl. Mater. Interfaces. 2017;9:27298–27304. PubMed
Lee J., Takemura K., Park E.Y. Sensor. Actuator. B Chem. 2018;276:254–261.
Leland D.S., Ginocchio C.C. Clin. Microbiol. Rev. 2007;20:49–78. PubMed PMC
Lenarda A., Bakandritsos A., Bevilacqua M., Tavagnacco C., Melchionna M., Naldoni A., Steklý T., Otyepka M., Zbořil R., Fornasiero P. ACS Omega. 2019;4:19944–19952. PubMed PMC
Li D., Zhang W., Yu X., Wang Z., Su Z., Wei G. Nanoscale. 2016;19:115–132. PubMed
Li J., Li Y., Zhai X., Cao Y., Zhao J., Tang Y., Han K. Electrochem. Commun. 2020;110:345–358.
Li M., Wang C., Chen L., Liu D. Anal. Chim. Acta. 2019;1090:57–63. PubMed
Li Q., Froning J.P., Pykal M., Zhang S., Wang Z., Vondrák M., Banáš P., Čépe K., Jurečka P., Šponer J., Zbořil R., Dong M., Otyepka M. 2D Mater. 2018;5
Li R.S., Yuan B., Liu J.H., Liu M.L., Gao P.F., Li Y.F., Li M., Huang C.Z. J. Mater. Chem. B. 2017;5:8719–8724. PubMed
Li X., Wang X., Zhang L., Lee S., Dai H. Science. 2008;319:1229–1232. PubMed
Li Z., Yi Y., Luo X., Xiong N., Liu Y., Li S., Sun R., Wang Y., Hu B., Chen W., Zhang Y., Wang J., Huang B., Lin Y., Yang J., Cai W., Wang X., Cheng J., Chen Z., Sun K., Pan W., Zhan Z., Chen L., Ye F. J. Med. Virol. 2020;16:25727. PubMed PMC
Lim S.Y., Shen W., Gao Z. Chem. Soc. Rev. 2015;44:362–381. PubMed
Liu-Helmersson J., Quam M., Wilder-Smith A., Stenlund H., Ebi K., Massad E., Rocklöv J. EBioMedicine. 2016;7:267–277. PubMed PMC
Liu F., Choi K.S., Park T.J., Lee S.Y., Seo T.S. Biochip J. 2011;5:123–128.
Liu F., Kim Y.H., Cheon D.S., Seo T.S. Sensor. Actuator. B Chem. 2013;186:252–257.
Liu M.L., Chen B. Bin, Li C.M., Huang C.Z. Green Chem. 2019;32:567–581.
Liu Y., Dong X., Chen P. Chem. Soc. Rev. 2012;41:2283–2307. PubMed
Liu Z., Robinson J.T., Sun X., Dai H. J. Am. Chem. Soc. 2008;130:10876–10877. PubMed PMC
Lu C.H., Yang H.H., Zhu C.L., Chen X., Chen G.N. Angew. Chem. Int. Ed. 2009;48:4785–4787. PubMed
Lu L. Biosens. Bioelectron. 2018;110:180–192. PubMed
Maartens G., Griesel R., Dube F., Nicol M., Mendelson M. Clin. Infect. Dis. 2020;70:1147–1152. PubMed PMC
Maity A., Sui X., Jin B., Pu H., Bottum K.J., Huang X., Chang J., Zhou G., Lu G., Chen J. Anal. Chem. 2018;90:14230–14238. PubMed
Malecka K., Grabowska I., Radecki J., Stachyra A., Góra-Sochacka A., Sirko A., Radecka H. Electroanalysis. 2012;24:439–446.
Malmqvist M. Nature. 1993;361:186–187. PubMed
Martínez P.M., Torres A.R., Lejarazu R.O. de, Montoya A., Martín J.F., Eiros J.M. J. Clin. Microbiol. 1999;37:1100–1106. PubMed PMC
Mcsharry J.J. Clin. Microbiol. Rev. 1994;7:576–604. PubMed PMC
Meng Y., Bai W., Zhang Y., Sun H., Li Y. Talanta. 2020;210:120597. PubMed
Mishra N., Ng J., Rakeman J.L., Perry M.J., Centurioni D.A., Dean A.B., Price A., Thakkar R., Angus A.G., Williamson P., Delwart E., Carrington C., Sahadeo N., Che X., Briese T., Tokarz R., Lipkin W.I. J. Clin. Virol. 2019;120:44–50. PubMed PMC
Moço A.C.R., Guedes P.H., Flauzino J.M.R., da Silva H.S., Vieira J.G., Castro A.C.H., Gomes É.V.R., Tolentino F.M., Soares M.M.C.N., Madurro J.M., Brito‐Madurro A.G. Electroanalysis. 2019;31:1580–1587.
Morales-Narváez E., Dincer C. Biosens. Bioelectron. 2020;13:112274. PubMed PMC
Nagar B., Balsells M., de la Escosura-Muñiz A., Gomez-Romero P., Merkoçi A. Biosens. Bioelectron. 2019;129:238–244. PubMed
Nair R.R., Ren W., Jalil R., Riaz I., Kravets V.G., Britnell L., Blake P., Schedin F., Mayorov A.S., Yuan S., Katsnelson M.I., Cheng H.M., Strupinski W., Bulusheva L.G., Okotrub A.V., Grigorieva I.V., Grigorenko A.N., Novoselov K.S., Geim A.K. Small. 2010;6:2877–2884. PubMed
Narita A., Wang X.Y., Feng X., Müllen K. Chem. Soc. Rev. 2015;44:6616–6643. PubMed
Navakul K., Warakulwit C., Yenchitsomanus P. thai, Panya A., Lieberzeit P.A., Sangma C. Nanomed. Nanotechnol. Biol. Med. 2017;13:549–557. PubMed
Nehra A., Chen W., Dimitrov D.S., Puri A., Singh K.P. ACS Appl. Mater. Interfaces. 2017;9:32621–32634. PubMed
Nie S., Emory S.R. Science. 1997;275:1102–1106. PubMed
Notomi T., Okayama H., Masubuchi H., Yonekawa T., Watanabe K., Amino N., Hase T. Nucleic Acids Res. 2000;28:e63. PubMed PMC
Novoselov K.S., Fal’Ko V.I., Colombo L., Gellert P.R., Schwab M.G., Kim K. Nature. 2012;490:192–200. PubMed
Novoselov K.S., Geim A.K., Morozov S.V., Jiang D., Zhang Y., Dubonos S.V., Grigorieva I.V., Firsov A.A. Science. 2004;306:666–669. PubMed
Obraztsov A.N. Nat. Nanotechnol. 2009;4:212–213. PubMed
Oliveira D.A., Silva J.V., Flauzino J.M.R., Sousa H.S., Castro A.C.H., Moço A.C.R., Soares M.M.C.N., Madurro J.M., Brito-Madurro A.G. J. Electroanal. Chem. 2019;844:6–13.
Oliveira D.A., Silva J.V., Flauzino J.M.R., Sousa H.S., Castro A.C.H., Moço A.C.R., Soares M.M.C.N., Madurro J.M., Brito-Madurro A.G. J. Electroanal. Chem. 2019;844:6–13.
Omar N.A.S., Fen Y.W., Abdullah J., Mustapha Kamil Y., Daniyal W.M.E.M.M., Sadrolhosseini A.R., Mahdi M.A. Sci. Rep. 2020;10:1–15. PubMed PMC
Omar N.A.S., Fen Y.W., Abdullah J., Sadrolhosseini A.R., Kamil Y.M., Fauzi N.I.M., Hashim H.S., Mahdi M.A. 2020. Nanomaterials 10. PubMed PMC
Omar N.A.S., Fen Y.W., Abdullah J., Zaid M.H.M., Daniyal W.M.E.M.M., Mahdi M.A. Optic Laser. Technol. 2019;114:204–208.
Oshin O., Kireev D., Akinwande D., Adetiba E., Idachaba F., Atayero A. J. Phys. Conf. Ser. 2019;1378
Panchakarla L.S., Subrahmanyam K.S., Saha S.K., Govindaraj A., Krishnamurthy H.R., Waghmare U.V., Rao C.N.R. Adv. Mater. 2009;21:4726–4730.
Park J.K., Taubenberger J.K. ACS Infect. Dis. 2016;2:5–7. PubMed PMC
Parker C.G., Domaoal R.A., Anderson K.S., Spiegel D.A. J. Am. Chem. Soc. 2009;131:16392–16394. PubMed PMC
Parviz D., Das S., Ahmed H.S.T., Irin F., Bhattacharia S., Green M.J. ACS Nano. 2012;6:8857–8867. PubMed
Passaretti P., Sun Y., Khan I., Chan K., Sabo R., White H., Dafforn T.R., Goldberg Oppenheimer P. Nanoscale. 2019;11:458–469. PubMed
Pathirana J., Groome M., Dorfman J., Kwatra G., Boppana S., Cutland C., Jones S., Madhi S.A. Clin. Infect. Dis. 2019;69:1789–1796. PubMed
Peng J., Gao W., Gupta B.K., Liu Z., Romero-Aburto R., Ge L., Song L., Alemany L.B., Zhan X., Gao G., Vithayathil S.A., Kaipparettu B.A., Marti A.A., Hayashi T., Zhu J.J., Ajayan P.M. Nano Lett. 2012;12:844–849. PubMed
Petti S., Lodi G. Oral Dis. 2019;25:1850–1865. PubMed
Piro B., Kapella A., Le V.H., Anquetin G., Zhang Q.D., Reisberg S., Noel V., Tran L.D., Duc H.T., Pham M.C. Elsevier Ltd; 2011. Electrochimica Acta; pp. 10688–10693.
Prangishvili D., Forterre P., Garrett R.A. Nat. Rev. Microbiol. 2006;4:837–848. PubMed
Pumera M., Ambrosi A., Bonanni A., Chng E.L.K., Poh H.L. TrAC Trends Anal. Chem. (Reference Ed.) 2010;14
Purcell R.H. Proc. Natl. Acad. Sci. U.S.A. 1994;91:2401–2406. PubMed PMC
Qian X., Tan S., Li Z., Qu Q., Li L., Yang L. Biosens. Bioelectron. 2020;153:112051. PubMed
Ramanathan S., Gopinath S.C.B., Md Arshad M.K., Poopalan P. Biosens. Bioelectron. 2019;141:478–503. PubMed
Reijans M., Dingemans G., Klaassen C.H., Meis J.F., Keijdener J., Mulders B., Eadie K., Van Leeuwen W., Van Belkum A., Horrevorts A.M., Simons G. J. Clin. Microbiol. 2008;46:1232–1240. PubMed PMC
Reina G., Chau N.D.Q., Nishina Y., Bianco A. Nanoscale. 2018;10:5965–5974. PubMed
Robinson J.T., Perkins F.K., Snow E.S., Wei Z., Sheehan P.E. Nano Lett. 2008;8:3137–3140. PubMed
Roh C., Lee H.Y., Kim S.E., Jo S.K. Int. J. Nanomed. 2010;5:323–329. PubMed PMC
Santiago G.A., Vázquez J., Courtney S., Matías K.Y., Andersen L.E., Colón C., Butler A.E., Roulo R., Bowzard J., Villanueva J.M., Muñoz-Jordan J.L. Nat. Commun. 2018;9:1–10. PubMed PMC
Sapsford K.E., Blanco-Canosa J.B., Dawson P.E., Medintz I.L. Bioconjugate Chem. 2010;21:393–398. PubMed
Schedin F., Geim A.K., Morozov S.V., Hill E.W., Blake P., Katsnelson M.I., Novoselov K.S. Nat. Mater. 2007;6:652–655. PubMed
Schwierz F. Nat. Nanotechnol. 2010;5:487–496/. PubMed
Seelajaroen H., Bakandritsos A., Otyepka M., Zbořil R., Sariciftci N.S. ACS Appl. Mater. Interfaces. 2020;12:250–259. PubMed PMC
Seo G., Lee G., Kim M.J., Baek S.-H., Choi M., Ku B., Lee C.-S., Jun S., Park D., Kim H.G., Kim S.-J., Lee J.-O., Kim T., Changkyun Park E., Kim S., Il ACS Nano. 2020;14:5142. PubMed
Shang N.G., Papakonstantinou P., McMullan M., Chu M., Stamboulis A., Potenza A., Dhesi S.S., Marchetto H. Adv. Funct. Mater. 2008;18:3506–3514.
Shao Y., Wang J., Wu H., Liu J., Aksay I.A., Lin Y. Electroanalysis. 2010;22:1027–1036.
Shen J., Zhu Y., Yang X., Li C. Chem. Commun. 2012;48:3686–3699. PubMed
Shrivastava N., Shrivastava A., Ninawe S.M., Sharma S., Kumar J.S., Alam S.I., Kanani A., Sharma S.K., Dash P.K. Front. Microbiol. 2019;10 PubMed PMC
Singh P. Sensor. Actuator. B Chem. 2016;229:110–130.
Singh R., Hong S., Jang J. Sci. Rep. 2017;7:42–771. PubMed PMC
Sinha S.S., Jones S., Pramanik A., Ray P.C. Acc. Chem. Res. 2016;49:2725–2735. PubMed PMC
Song C., Xie G., Wang L., Liu L., Tian G., Xiang H. Biosens. Bioelectron. 2014;58:68–74. PubMed
Song J., Lau P.S., Liu M., Shuang S., Dong C., Li Y. ACS Appl. Mater. Interfaces. 2014;6:21806–21812. PubMed
Song W., Zhao B., Wang C., Ozaki Y., Lu X. J. Mater. Chem. B. 2019;7:850–875. PubMed
Sreeprasad T.S., Berry V. Small. 2013;9:341–350. PubMed
Stankovich S., Dikin D.A., Piner R.D., Kohlhaas K.A., Kleinhammes A., Jia Y., Wu Y., Nguyen S.B.T., Ruoff R.S. Carbon N. Y. 2007;45:1558–1565.
Stern D., Pauly D., Zydek M., Miller L., Piesker J., Laue M., Lisdat F., Dorner M.B., Dorner B.G., Nitsche A. PloS One. 2016;11:545–562. PubMed PMC
Sujai P.T., Joseph M.M., Saranya G., Nair J.B., Murali V.P., Maiti K.K. Nanoscale. 2020;12:6971–6975. PubMed
Sun H., Wu L., Wei W., Qu X. Mater. Today. 2013;19:434–465.
Suvarnaphaet P., Pechprasarn S. Sensors (Switzerland) 2017;17:34–50. PubMed PMC
Swathi R.S., Sebastian K.L. J. Chem. Phys. 2008;129 PubMed
Tan S.M., Sofer Z., Pumera M. Electroanalysis. 2013;25:703–705.
Tanner W.D., Toth D.J.A., Gundlapalli A.V. Epidemiol. Infect. 2015;143:3359–3374. PubMed PMC
Teymourian H., Salimi A., Khezrian S. Biosens. Bioelectron. 2013;49:1–8. PubMed
Thu V.T., Tien B.Q., Ngoc Nga D.T., Thanh L.C., Sinh L.H., Le T.C., Lam T.D. RSC Adv. 2018;8:25361–25367. PubMed PMC
Tian F., Lyu J., Shi J., Yang M. Biosens. Bioelectron. 2017;89:123–135. PubMed
Umadevi D., Sastry G.N. J. Phys. Chem. Lett. 2011;2:1572–1576.
Urbanová V., Holá K., Bourlinos A.B., Čépe K., Ambrosi A., Loo A.H., Pumera M., Karlický F., Otyepka M., Zbořil R. Adv. Mater. 2015;27:2305–2310. PubMed
Valipour A., Roushani M. Biosens. Bioelectron. 2017;89:946–951. PubMed
Veerapandian M., Hunter R., Neethirajan S. Talanta. 2016;155:250–257. PubMed
Vellucci A., Leibovitch E.C., Jacobson S. Humana Press Inc.; 2018. Methods in Molecular Biology; pp. 99–109. PubMed
Vermisoglou E.C., Jakubec P., Malina O., Kupka V., Schneemann A., Fischer R.A., Zbořil R., Jayaramulu K., Otyepka M. Front. Chem. 2020;8:544. PubMed PMC
Waiwijit U., Phokaratkul D., Kampeera J., Lomas T., Wisitsoraat A., Kiatpathomchai W., Tuantranont A. J. Biotechnol. 2015;212:44–49. PubMed
Wang D., Zheng Y., Kang X., Zhang X., Hao H., Chen W., Liu L., Li X., Li L., Yuan Q., Chen F., Yang Y., Jiang Y., Jiang H. Eur. J. Clin. Microbiol. Infect. Dis. 2015;34:1327–1336. PubMed
Wang H., Maiyalagan T., Wang X. ACS Catal. 2012;2:781–794.
Wang J. Electroanalysis. 2005;17:7–14.
Wang L., Tian J., Yang W., Zhao Y., Zhao S. Luminescence. 2016;31:573–579. PubMed
Wang X., Li X., Zhang L., Yoon Y., Weber P.K., Wang H., Guo J., Dai H. Science. 2009;324:768–771. PubMed
Wang X., Shang L., Zhang W., Jia L.P., Ma R.N., Jia W.L., Wang H.S. Biosens. Bioelectron. 2019;141:234–250. PubMed
Wang Y., Bai X., Wen W., Zhang X., Wang S. ACS Appl. Mater. Interfaces. 2015;7:18872–18879. PubMed
Wang Y., Li Z., Wang J., Li J., Lin Y. 2011. Trends Biotechnol. PubMed
Wang Y., Shao Y., Matson D.W., Li J., Lin Y. ACS Nano. 2010;4:1790–1798. PubMed
Wei D., Liu Y., Wang Y., Zhang H., Huang L., Yu G. Nano Lett. 2009;9:1752–1758. PubMed
Wen J., Li W., Li J., Tao B., Xu Y., Li H., Lu A., Sun S. Sensor. Actuator. B Chem. 2016;227:655–659.
Wong W.R., Sekaran S.D., Mahamd Adikan F.R., Berini P. Biosens. Bioelectron. 2016;78:132–139. PubMed
Wu J.F., Gao X., Ge L., Zhao G.C., Wang G.F. RSC Adv. 2019;9:19813–19818. PubMed PMC
Xiang Q., Huang J., Huang H., Mao W., Ye Z. RSC Adv. 2018;8:1820–1825. PubMed PMC
Xie R., Wang Z., Zhou W., Liu Y., Fan L., Li Y., Li X. Anal. Methods. 2016;36:568–591.
Xie Zhixun, Huang J., Luo S., Xie Zhiqin, Xie L., Liu J., Pang Y., Deng X., Fan Q. PloS One. 2014;9 PubMed PMC
Xu G., Chen X., Hu J., Yang P., Yang D., Wei L. Analyst. 2012;137:2757–2761. PubMed
Xu W., Mao N., Zhang J. Small. 2013;6:123–136.
Xu X., Ray R., Gu Y., Ploehn H.J., Gearheart L., Raker K., Scrivens W.A. J. Am. Chem. Soc. 2004;126:12736–12737. PubMed
Yakimovich A., Andriasyan V., Witte R., Wang I.H., Prasad V., Suomalainen M., Greber U.F. PloS One. 2015;10:3535. PubMed PMC
Yan Z., Yuan H., Zhao Q., Xing L., Zheng X., Wang W., Zhao Y., Yu Y., Hu L., Yao W. Analyst. 2020;35:1323–1333. PubMed
Yang C., Huang Y., Cheng H., Jiang L., Qu L. Adv. Mater. 2019;31:3454–3468. PubMed
Yang L., Yamamoto T. Front. Microbiol. 2016;7:1500. PubMed PMC
Yang X., Zhang X., Liu Z., Ma Y., Huang Y., Chen Y. J. Phys. Chem. C. 2008;112:17554–17558.
Yang Y., Hu G.B., Liang W. Bin, Yao L.Y., Huang W., Zhang Y.J., Zhang J.L., Wang J.M., Yuan R., Xiao D.R. Nanoscale. 2020;12:5932–5941. PubMed
Yang Z.H., Zhuo Y., Yuan R., Chai Y.Q. Biosens. Bioelectron. 2015;69:321–327. PubMed
Yoo S.M., Lee S.Y. Trends Biotechnol. 2016;372:229–234. PubMed
Young L.S., Murray P.G. Oncogene. 2003;22:5108–5121. PubMed
Yu X., Cai H., Zhang W., Li X., Pan N., Luo Y., Wang X., Hou J.G. ACS Nano. 2011;5:952–958. PubMed
Yun B.J., Koh W.G. J. Ind. Eng. Chem. 2020;82:341–348.
Zamora J.L.R., Aguilar H.C. Methods. 2018;134:87–97. PubMed PMC
Zari N., Amine A., Ennaji M.M. Anal. Lett. 2009;42:519–535.
Zbořil R., Karlický F., Bourlinos A.B., Steriotis T.A., Stubos A.K., Georgakilas V., Šafářová K., Jančík D., Trapalis C., Otyepka M. Small. 2010;6:2885–2891. PubMed PMC
Zerboni L., Sen N., Oliver S.L., Arvin A.M. Nat. Rev. Microbiol. 2014;12:197–210. PubMed PMC
Zhan L., Li C.M., Wu W.B., Huang C.Z. Chem. Commun. 2014;50:11526–11528. PubMed
Zhang Huan, Zhang Honglu, Aldalbahi A., Zuo X., Fan C., Mi X. Biosens. Bioelectron. 2017;89:96–106. PubMed
Zhang X., Zhou D., Sheng S., Yang J., Chen X., Xie G., Xiang H. Microchim. Acta. 2016;183:2055–2062.
Zhang Y., Wu C., Zhang J. Nanotechnol. Rev. 2013;2:27–45.
Zhang Y., Zhang Z., Rong S., Yu H., Gao H., Sha Q., Ding P., Pan H., Chang D. Anal. Chim. Acta. 2020;1109:98–106. PubMed
Zhao F., Bai Y., Zeng R., Cao L., Zhu J., Han G., Chen Z. Electroanalysis. 2018;30:2774–2780.
Zhao F., Cao L., Liang Y., Wu Z., Chen Z., Zeng R. J. Biomed. Nanotechnol. 2017;13:1300–1308.
Zhou S., Xu H., Gan W., Yuan Q. RSC Adv. 2016;16:454–469.
Zribi B., Castro-Arias J.M., Decanini D., Gogneau N., Dragoe D., Cattoni A., Ouerghi A., Korri-Youssoufi H., Haghiri-Gosnet A.M. Nanoscale. 2016;8:15479–15485. PubMed