Cellobiose dehydrogenase: Insights on the nanostructuration of electrodes for improved development of biosensors and biofuel cells

Applied Materials Today - Tập 9 - Trang 319-332 - 2017
Paolo Bollella1,2, Roland Ludwig3, Lo Gorton2
1Department of Chemistry and Drug Technologies, Sapienza University of Rome, P.le Aldo Moro, 500185 Rome, Italy
2Department of Analytical Chemistry/Biochemistry and Structural Biology, Lund University, PO Box 124, SE-22100 Lund, Sweden
3Department of Food Sciences and Technology, BOKU University of Natural Resources and Life Sciences, A-1190 Vienna, Austria

Tài liệu tham khảo

Kracher, 2016, Cellobiose dehydrogenase: an essential enzyme for lignocellulose degradation in nature—a review/Cellobiosedehydrogenase, Bodenkultur, 67, 145 Zamocky, 2006, Cellobiose dehydrogenase—a flavocytochrome from wood-degrading, phytopathogenic and saprotropic fungi, Curr, Protein Pept. Sci., 7, 255, 10.2174/138920306777452367 Hallberg, 2000, A new scaffold for binding haem in the cytochrome domain of the extracellular flavocytochrome cellobiose dehydrogenase, Structure, 8, 79, 10.1016/S0969-2126(00)00082-4 Hallberg, 2002, Crystal structure of the flavoprotein domain of the extracellular flavocytochrome cellobiose dehydrogenase, J. Mol. Biol., 315, 421, 10.1006/jmbi.2001.5246 Tan, 2015, Structural basis for cellobiose dehydrogenase action during oxidative cellulose degradation, Nat. Commun., 6, 10.1038/ncomms8542 Cavener, 1992, GMC oxidoreductases: a newly defined family of homologous proteins with diverse catalytic activities, J. Mol. Biol., 223, 811, 10.1016/0022-2836(92)90992-S Henriksson, 2000, A critical review of cellobiose dehydrogenases, J. Biotechnol., 78, 93, 10.1016/S0168-1656(00)00206-6 Kracher, 2016, Extracellular electron transfer systems fuel cellulose oxidative degradation, Science, 352, 1098, 10.1126/science.aaf3165 Larsson, 1996, Electron transfer between cellobiose dehydrogenase and graphite electrodes, Anal. Chim. Acta, 331, 207, 10.1016/0003-2670(96)00136-5 Ludwig, 2013, Cellobiose dehydrogenase modified electrodes: advances by materials science and biochemical engineering, Anal. Bioanal. Chem., 405, 3637, 10.1007/s00216-012-6627-x Ludwig, 2010, Cellobiose dehydrogenase: a versatile catalyst for electrochemical applications, ChemPhysChem, 11, 2674, 10.1002/cphc.201000216 Tasca, 2009, Comparison of direct and mediated electron transfer for cellobiose dehydrogenase from Phanerochaete sordida, Anal. Chem., 81, 2791, 10.1021/ac900225z Holzinger, 2014, Nanomaterials for biosensing applications: a review, Front. Chem., 2, 63, 10.3389/fchem.2014.00063 Pankratov, 2014, The influence of nanoparticles on enzymatic bioelectrocatalysis, RSC Adv., 4, 38164, 10.1039/C4RA08107B Wang, 2005, Carbon-nanotube based electrochemical biosensors: a review, Electroanalysis, 17, 7, 10.1002/elan.200403113 Malel, 2010, Localized deposition of Au nanoparticles by direct electron transfer through cellobiose dehydrogenase, Chem. Eur. J., 16, 11697, 10.1002/chem.201000453 Heller, 1992, Electrical connection of enzyme redox centers to electrodes, J. Phys. Chem., 96, 3579, 10.1021/j100188a007 Heller, 2008, Electrochemical glucose sensors and their applications in diabetes management, Chem. Rev., 108, 2482, 10.1021/cr068069y Kavanagh, 2013, Mediated electron transfer in glucose oxidising enzyme electrodes for application to biofuel cells: recent progress and perspectives, Phys. Chem. Chem. Phys., 15, 4859, 10.1039/c3cp44617d Shao, 2014, Cellobiose dehydrogenase entrapped within specifically designed Os-complex modified electrodeposition polymers as potential anodes for biofuel cells, Electrochim. Acta, 128, 318, 10.1016/j.electacta.2013.11.019 Shao, 2013, A low-potential glucose biofuel cell anode based on a toluidine blue modified redox polymer and the flavodehydrogenase domain of cellobiose dehydrogenase, Electrochem. Commun., 29, 59, 10.1016/j.elecom.2013.01.016 Salaj-Kosla, 2013, Mediated electron transfer of cellobiose dehydrogenase and glucose oxidase at osmium polymer-modified nanoporous gold electrodes, Anal. Bioanal. Chem., 405, 3823, 10.1007/s00216-012-6657-4 Shao, 2013, Optimization of a membraneless glucose/oxygen enzymatic fuel cell based on a bioanode with high coulombic efficiency and current density, ChemPhysChem, 14, 2260, 10.1002/cphc.201300046 Shao, 2013, Mutual enhancement of the current density and the coulombic efficiency for a bioanode by entrapping bi-enzymes with Os-complex modified electrodeposition paints, Biosens. Bioelectron., 40, 308, 10.1016/j.bios.2012.07.069 Stoica, 2006, Third-generation biosensor for lactose based on newly discovered cellobiose dehydrogenase, Anal. Chem., 78, 393, 10.1021/ac050327o Stoica, 2004, Biosensor based on cellobiose dehydrogenase for detection of catecholamines, Anal. Chem., 76, 4690, 10.1021/ac049582j Stoica, 2005, Electrochemical investigation of cellobiose dehydrogenase from new fungal sources on Au electrodes, Biosens. Bioelectron., 20, 2010, 10.1016/j.bios.2004.09.018 Stoica, 2006, Direct electron transfer—a favorite electron route for cellobiose dehydrogenase (CDH) from Trametes villosa. Comparison with CDH from Phanerochaete chrysosporium, Langmuir, 22, 10801, 10.1021/la061190f Wang, 2012, Mediatorless sugar/oxygen enzymatic fuel cells based on gold nanoparticle-modified electrodes, Biosens. Bioelectron., 31, 219, 10.1016/j.bios.2011.10.020 Shleev, 2017, Quo vadis, implanted fuel cell?, ChemPlusChem, 82, 522, 10.1002/cplu.201600536 Vivekananthan, 2014, Biofuel-cell cathodes based on bilirubin oxidase immobilized through organic linkers on 3d hierarchically structured carbon electrodes, ChemElectroChem, 1, 1901, 10.1002/celc.201402099 Sane, 2014, Enzymatic fuel cells solely supplied with unpurified cellobiose dehydrogenase and laccase in microorganism's culture supernatants, ChemElectroChem, 1, 1886, 10.1002/celc.201402276 Lamberg, 2014, Performance of enzymatic fuel cell in cell culture, Biosens. Bioelectron., 55, 168, 10.1016/j.bios.2013.12.013 Coman, 2010, A direct electron transfer-based glucose/oxygen biofuel cell operating in human serum, Fuel Cells, 10, 9 Coman, 2008, A membrane-, mediator-, cofactor-less glucose/oxygen biofuel cell, Phys. Chem. Chem. Phys., 10, 6093, 10.1039/b808859d Bartlett, 2017, There is no evidence to support literature claims of direct electron transfer (DET) for native glucose oxidase (GOx) at carbon nanotubes or graphene, J. Electroanal. Chem. Wilson, 2016, Native glucose oxidase does not undergo direct electron transfer, Biosens. Bioelectron., 82, vii, 10.1016/j.bios.2016.04.083 Milton, 2017, Direct enzymatic bioelectrocatalysis: differentiating between myth and reality, J. Roy. Soc. Interf., 14, 10.1098/rsif.2017.0253 Ikeda, 1993, Bioelectrocatalysis at electrodes coated with alcohol-dehydrogenase, a quinohemoprotein with heme-c serving as a built-in mediator, J. Electroanal. Chem., 361, 221, 10.1016/0022-0728(93)87058-4 Kawai, 2014, The electron transfer pathway in direct electrochemical communication of fructose dehydrogenase with electrodes, Electrochem. Commun., 38, 28, 10.1016/j.elecom.2013.10.024 Takeda, 2015, Characterization of a novel PQQ-dependent quinohemoprotein pyranose dehydrogenase from Coprinopsis cinerea classified into auxiliary activities family 12 in carbohydrate-active enzymes, PLoS ONE, 10, 10.1371/journal.pone.0115722 Igarashi, 2002, Kinetics of inter-domain electron transfer in flavocytochrome cellobiose dehydrogenase from the white-rot fungus Phanerochaete chrysosporium, Biochem. J., 365, 521, 10.1042/bj20011809 Kadek, 2015, Structural insight into the calcium ion modulated interdomain electron transfer in cellobiose dehydrogenase, FEBS Lett., 589, 1194, 10.1016/j.febslet.2015.03.029 Kadek, 2017, Interdomain electron transfer in cellobiose dehydrogenase is governed by surface electrostatics, Biochim. Biophys. Acta, 1861, 157, 10.1016/j.bbagen.2016.11.016 Kielb, 2015, Spectroscopic observation of calcium-induced reorientation of cellobiose dehydrogenase immobilized on electrodes and its effect on electrocatalytic activity, ChemPhysChem, 16, 1960, 10.1002/cphc.201500112 Kracher, 2015, Inter-domain electron transfer in cellobiose dehydrogenase: modulation by pH and divalent cations, FEBS J., 282, 3136, 10.1111/febs.13310 Harreither, 2011, Catalytic properties and classification of cellobiose dehydrogenases from ascomycetes, Appl. Environ. Microbiol., 77, 1804, 10.1128/AEM.02052-10 Schulz, 2016, Direct electron transfer from the FAD cofactor of cellobiose dehydrogenase to electrodes, ACS Catal., 6, 555, 10.1021/acscatal.5b01854 Knöös, 2014, Quantifying the release of lactose from polymer matrix tablets with an amperometric biosensor utilizing cellobiose dehydrogenase, Int. J. Pharm., 468, 121, 10.1016/j.ijpharm.2014.03.060 Harreither, 2009, Cellobiose dehydrogenase from the ligninolytic basidiomycete Ceriporiopsis subvermispora, Appl. Environ. Microbiol., 75, 2750, 10.1128/AEM.02320-08 Henriksson, 1998, Substrate specificity of cellobiose dehydrogenase from Phanerochaete chrysosporium, Biochim. Biophys. Acta, 1383, 48, 10.1016/S0167-4838(97)00180-5 Igarashi, 2005, Electron transfer chain reaction of the extracellular flavocytochrome cellobiose dehydrogenase from the basidiomycete Phanerochaete chrysosporium, FEBS J., 272, 2869, 10.1111/j.1742-4658.2005.04707.x Safina, 2010, A simple and sensitive method for lactose detection based on direct electron transfer between immobilised cellobiose dehydrogenase and screen-printed carbon electrodes, Electrochim. Acta, 55, 7690, 10.1016/j.electacta.2009.10.052 Yakovleva, 2012, A novel combined thermometric and amperometric biosensor for lactose determination based on immobilised cellobiose dehydrogenase, Biosens. Bioelectron., 31, 251, 10.1016/j.bios.2011.10.027 Glithero, 2013, At-line measurement of lactose in dairy-processing plants, Anal. Bioanal. Chem., 405, 3791, 10.1007/s00216-012-6598-y Tasca, 2013, Determination of lactose by a novel third generation biosensor based on a cellobiose dehydrogenase and aryl diazonium modified single wall carbon nanotubes electrode, Sens. Actuat. B, 177, 64, 10.1016/j.snb.2012.10.114 Gorton, 1999, Direct electron transfer between heme-containing enzymes and electrodes as basis for third generation biosensors, Anal. Chim. Acta, 400, 91, 10.1016/S0003-2670(99)00610-8 Lindgren, 2001, Direct electron transfer of cellobiose dehydrogenase from various biological origins at gold and graphite electrodes, J. Electroanal. Chem., 496, 76, 10.1016/S0022-0728(00)00251-5 Lindgren, 2000, Direct electron transfer between the heme of cellobiose dehydrogenase and thiol modified gold electrodes, J. Electroanal. Chem., 494, 105, 10.1016/S0022-0728(00)00326-0 Stoica, 2009, Electrochemical evidence of self-substrate inhibition as functions regulation for cellobiose dehydrogenase from Phanerochaete chrysosporium, Bioelectrochemistry, 76, 42, 10.1016/j.bioelechem.2009.06.007 Schulz, 2012, Enhancement of enzymatic activity and catalytic current of cellobiose dehydrogenase by calcium ions, Electrochem. Commun., 17, 71, 10.1016/j.elecom.2012.01.031 Matsumura, 2012, Direct electrochemistry of Phanerochaete chrysosporium cellobiose dehydrogenase covalently attached onto gold nanoparticle modified solid gold electrodes, Langmuir, 28, 10925, 10.1021/la3018858 Tasca, 2008, Direct electron transfer at cellobiose dehydrogenase modified anodes for biofuel cells, J. Phys. Chem. C, 112, 9956, 10.1021/jp802099p Tasca, 2011, Cellobiose dehydrogenase aryl diazonium modified single walled carbon nanotubes: enhanced direct electron transfer through a positively charged surface, Anal. Chem., 83, 3042, 10.1021/ac103250b Harreither, 2012, Investigation of the pH-dependent electron transfer mechanism of ascomycetous class II cellobiose dehydrogenases on electrodes, Langmuir, 28, 6714, 10.1021/la3005486 Ortiz, 2017, Engineering of cellobiose dehydrogenases for improved glucose sensitivity and reduced maltose affinity, ChemElectroChem, 4, 846, 10.1002/celc.201600781 Tasca, 2008, Highly efficient and versatile anodes for biofuel cells based on cellobiose dehydrogenase from Myriococcum thermophilum, J. Phys. Chem. C, 112, 13668, 10.1021/jp805092m Schulz, 2014, Polyethyleneimine as a promoter layer for the immobilization of cellobiose dehydrogenase from Myriococcum thermophilum on graphite electrodes, Anal. Chem., 86, 4256, 10.1021/ac403957t Coman, 2007, Investigation of electron transfer between cellobiose dehydrogenase from Myriococcum Thermophilum and gold electrodes, Chem. Anal., 52, 945 Harreither, 2007, Investigation of graphite electrodes modified with cellobiose dehydrogenase from the ascomycete Myriococcum thermophilum, Electroanalysis, 19, 172, 10.1002/elan.200603688 Harreither, 2012, Recombinantly produced cellobiose dehydrogenase from Corynascus thermophilus for glucose biosensors and biofuel cells, Biotechnol. J., 7, 1359, 10.1002/biot.201200049 Krikstolaityte, 2014, Mediatorless carbohydrate/oxygen biofuel cells with improved cellobiose dehydrogenase based bioanode, Fuel Cells, 14, 792, 10.1002/fuce.201400003 Cipri, 2016, A novel bio-electronic tongue using different cellobiose dehydrogenases to resolve mixtures of various sugars and interfering analytes, Biosens. Bioelectron., 79, 515, 10.1016/j.bios.2015.12.069 Ma, 2017, Molecular and catalytic properties of fungal extracellular cellobiose dehydrogenase produced in prokaryotic and eukaryotic expression systems, Microb. Cell Factor., 16, 10.1186/s12934-017-0653-5 Ortiz, 2012, Effect of deglycosylation of cellobiose dehydrogenases on the enhancement of direct electron transfer with electrodes, Anal. Chem., 84, 10315, 10.1021/ac3022899 Scida, 2011, Recent applications of carbon-based nanomaterials in analytical chemistry: critical review, Anal. Chim. Acta, 691, 6, 10.1016/j.aca.2011.02.025 Yang, 2012, Immobilization technology: a sustainable solution for biofuel cell design, Energy Environ. Sci., 5, 5540, 10.1039/C1EE02391H Meredith, 2012, Biofuel cells: enhanced enzymatic bioelectrocatalysis, Ann. Rev. Anal. Chem., 5, 157, 10.1146/annurev-anchem-062011-143049 Chekin, 2015, Direct and mediated electrochemistry of peroxidase and its electrocatalysis on a variety of screen-printed carbon electrodes: amperometric hydrogen peroxide and phenols biosensor, Anal. Bioanal. Chem., 407, 439, 10.1007/s00216-014-8282-x Mazzei, 2015, Recent trends in electrochemical nanobiosensors for environmental analysis, Int. J. Environ. Health, 7, 267, 10.1504/IJENVH.2015.073210 Favero, 2015, Electrochemical characterization of graphene and MWCNT screen-printed electrodes modified with AuNPs for laccase biosensor development, Nanomaterials, 5, 1995, 10.3390/nano5041995 Bollella, 2017, Beyond graphene: electrochemical sensors and biosensors for biomarkers detection, Biosens. Bioelectron., 89, 152, 10.1016/j.bios.2016.03.068 Bollella, 2017, Green synthesis and characterization of gold and silver nanoparticles and their application for development of a third generation lactose biosensor, Electroanalysis, 29, 77, 10.1002/elan.201600476 Bollella, 2017, Improved DET communication between cellobiose dehydrogenase and a gold electrode modified with a rigid self-assembled monolayer and green metal nanoparticles: the role of an ordered nanostructuration, Biosens. Bioelectron., 88, 196, 10.1016/j.bios.2016.08.027 Tavahodi, 2017, Direct electron transfer of cellobiose dehydrogenase on positively charged polyethyleneimine gold nanoparticles, ChemPlusChem, 82, 546, 10.1002/cplu.201600453 Al-Lolage, 2017, A flexible method for the stable, covalent immobilization of enzymes at electrode surfaces, ChemElectroChem, 4, 1528, 10.1002/celc.201700135 Trashin, 2009, Improvement of direct bioelectrocatalysis by cellobiose dehydrogenase on screen printed graphite electrodes using polyaniline modification, Bioelectrochemistry, 76, 87, 10.1016/j.bioelechem.2009.06.004 Bozorgzadeh, 2015, Direct electron transfer of Phanerochaete chrysosporium cellobiose dehydrogenase at platinum and palladium nanoparticles decorated carbon nanotubes modified electrodes, Phys. Chem. Chem. Phys., 17, 24157, 10.1039/C5CP03812J Balasubramanian, 2005, Chemically functionalized carbon nanotubes, Small, 1, 180, 10.1002/smll.200400118 Gooding, 2005, Nanostructuring electrodes with carbon nanotubes: a review on electrochemistry and applications for sensing, Electrochim. Acta, 50, 3049, 10.1016/j.electacta.2004.08.052 Gooding, 2003, Protein electrochemistry using aligned carbon nanotube arrays, J. Am. Chem. Soc., 125, 9006, 10.1021/ja035722f Vairavapandian, 2008, Preparation and modification of carbon nanotubes: review of recent advances and applications in catalysis and sensing, Anal. Chim. Acta, 626, 119, 10.1016/j.aca.2008.07.052 Merkoci, 2005, New materials for electrochemical sensing VI: carbon nanotubes, Trends Anal. Chem., 24, 826, 10.1016/j.trac.2005.03.019 Thostenson, 2001, Advances in the science and technology of carbon nanotubes and their composites: a review, Composites Sci. Technol., 61, 1899, 10.1016/S0266-3538(01)00094-X Wang, 2012, A review of electrode materials for electrochemical supercapacitors, Chem. Soc. Rev., 41, 797, 10.1039/C1CS15060J Carbone, 2015, An overview of the latest graphene-based sensors for glucose detection: the effects of graphene defects, Electroanalysis, 27, 16, 10.1002/elan.201400409 Pumera, 2010, Graphene for electrochemical sensing and biosensing, Trends Anal. Chem., 29, 954, 10.1016/j.trac.2010.05.011 Yang, 2010, Carbon nanomaterials in biosensors: should you use nanotubes or graphene?, Angew. Chem. Int. Ed., 49, 2114, 10.1002/anie.200903463 Shao, 2010, Facile and controllable electrochemical reduction of graphene oxide and its applications, J. Mater. Chem., 20, 743, 10.1039/B917975E Pingarrón, 2008, Gold nanoparticle-based electrochemical biosensors, Electrochim. Acta, 53, 5848, 10.1016/j.electacta.2008.03.005 Crespilho, 2006, A strategy for enzyme immobilization on layer-by-layer dendrimer–gold nanoparticle electrocatalytic membrane incorporating redox mediator, Electrochem. Commun., 8, 1665, 10.1016/j.elecom.2006.07.032 Hayat, 2012 Xiao, 2003, Plugging into enzymes: nanowiring of redox enzymes by a gold nanoparticle, Science, 299, 1877, 10.1126/science.1080664 Tasca, 2008, Increasing amperometric biosensor sensitivity by length fractionated single-walled carbon nanotubes, Biosen. Bioelectron., 24, 272, 10.1016/j.bios.2008.03.038 Tasca, 2011, A third generation glucose biosensor based on cellobiose dehydrogenase from Corynascus thermophilus and single-walled carbon nanotubes, Analyst, 136, 2033, 10.1039/C0AN00311E Zafar, 2012, Characteristics of third-generation glucose biosensors based on Corynascus thermophilus cellobiose dehydrogenase immobilized on commercially available screen-printed electrodes working under physiological conditions, Anal. Biochem., 425, 36, 10.1016/j.ab.2012.02.026 Arduini, 2016, Electrochemical biosensors based on nanomodified screen-printed electrodes: recent applications in clinical analysis, Trends Anal. Chem., 79, 114, 10.1016/j.trac.2016.01.032 Fletcher, 2015, Screen-printed carbon electrodes, Adv. Electrochem. Sci. Eng., 16, 425 Jaiswal, 2017, Recent build outs in electroanalytical biosensors based on carbon-nanomaterial modified screen printed electrode platforms, Anal. Meth., 9, 3895, 10.1039/C7AY01276D Zhang, 2016, Recent development of carbon electrode materials and their bioanalytical and environmental applications, Chem. Soc. Rev., 45, 715, 10.1039/C5CS00297D Kanso, 2017, Novel thin layer flow-cell screen-printed graphene electrode for enzymatic sensors, Biosens. Bioelectron., 93, 298, 10.1016/j.bios.2016.08.069 Kanso, 2017, Dual biosensor for simultaneous monitoring of lactate and glucose based on thin-layer flow cell screen-printed electrode, Electroanalysis, 29, 87, 10.1002/elan.201600487 Marcus, 1965, J. Chem. Phys., 43, 679, 10.1063/1.1696792 Marcus, 1985, Biochim. Biophys. Acta Rev. Bioenerg., 811, 265, 10.1016/0304-4173(85)90014-X Ortiz, 2014, Highly efficient membraneless glucose bioanode based on Corynascus thermophilus cellobiose dehydrogenase on aryl diazonium-activated single-walled carbon nanotubes, ChemElectroChem, 1, 1948, 10.1002/celc.201402197 Tanne, 2014, Carboxylated or aminated polyaniline-multiwalled carbon nanotubes nanohybrids for immobilization of cellobiose dehydrogenase on gold electrodes, Biosensors, 4, 370, 10.3390/bios4040370 Wang, 2001, Electrical transport properties of carbon aerogels, J. Porous Mater., 8, 167, 10.1023/A:1009611329483 Biener, 2011, Advanced carbon aerogels for energy applications, Energ. Environ. Sci, 4, 656, 10.1039/c0ee00627k Fort, 2016, Carbon aerogel as electrode material for improved direct electron transfer in biosensors incorporating cellobiose dehydrogenase, Electroanalysis, 28, 2311, 10.1002/elan.201600219 Kumar, 2007, Modeling of formation of gold nanoparticles by citrate method, Indust. Engin. Chem. Res., 46, 3128, 10.1021/ie060672j Mafuné, 2001, Formation of gold nanoparticles by laser ablation in aqueous solution of surfactant, J. Phys. Chem. B, 105, 5114, 10.1021/jp0037091 Lamberg, 2017, Electrical activity of cellobiose dehydrogenase adsorbed on thiols: influence of charge and hydrophobicity, Bioelectrochemistry, 115, 26, 10.1016/j.bioelechem.2017.02.001 Kovacs, 2012, Influence of sam structure on direct electron transfer at au electrodes modified with cellobiose dehydrogenase from Neurospora crassa, Rev. Roum. Chim., 57, 361 Laviron, 1979, General expression of the linear potential sweep voltammogram in the case of diffusionless electrochemical systems, J. Electroanal. Chem., 101, 19, 10.1016/S0022-0728(79)80075-3 Feifel, 2012, Catalytically active silica nanoparticle-based supramolecular architectures of two proteins—cellobiose dehydrogenase and cytochrome c on electrodes, Langmuir, 28, 9189, 10.1021/la301290z Sarauli, 2012, Investigation of the mediated electron transfer mechanism of cellobiose dehydrogenase at cytochrome c-modified gold electrodes, Bioelectrochemistry, 87, 9, 10.1016/j.bioelechem.2011.07.003 Feifel, 2013, Electrocatalytically active multi-protein assemblies using nanoscaled building blocks, RSC Adv., 3, 3428, 10.1039/c2ra22819j Feifel, 2014, Nanobiomolecular multiprotein clusters on electrodes for the formation of a switchable cascadic reaction scheme, Angew. Chem. Int. Ed., 53, 5676, 10.1002/anie.201310437 Walcarius, 2013, Nanomaterials for bio-functionalized electrodes: recent trends, J. Mater. Chem. B, 1, 4878, 10.1039/c3tb20881h Minteer, 2012, New materials for biological fuel cells, Mater. Today, 15, 166, 10.1016/S1369-7021(12)70070-6 Barton, 2004, Enzymatic biofuel cells for Implantable and microscale devices, Chem. Rev., 104, 4867, 10.1021/cr020719k Leech, 2012, Enzymatic fuel cells: recent progress, Electrochim. Acta, 84, 223, 10.1016/j.electacta.2012.02.087 Falk, 2013, Biofuel cells for biomedical applications: colonizing the animal kingdom, ChemPhysChem, 14, 2045, 10.1002/cphc.201300044 Cooney, 2008, Enzyme catalysed biofuel cells, Energy Environ. Sci., 1, 320, 10.1039/b809009b Minteer, 2007, Enzyme-based biofuel cells, Curr. Opin. Biotechnol., 18, 228, 10.1016/j.copbio.2007.03.007 Rasmussen, 2016, Enzymatic biofuel cells: 30 years of critical advancements, Biosens. Bioelectron., 76, 91, 10.1016/j.bios.2015.06.029 Falk, 2012, Direct electron transfer based enzymatic fuel cells, Electrochim. Acta, 82, 191, 10.1016/j.electacta.2011.12.133 Falk, 2012, Biofuel cell as a power source for electronic contact lenses, Biosens. Bioelectron., 37, 38, 10.1016/j.bios.2012.04.030 Andoralov, 2013, Biofuel cell based on microscale nanostructured electrodes with inductive coupling to rat brain neurons, Sci. Rep., 3, 10.1038/srep03270 Pankratov, 2015, Transparent and flexible, nanostructured and mediatorless glucose/oxygen enzymatic fuel cells, J. Power Sources, 294, 501, 10.1016/j.jpowsour.2015.06.041 Pankratov, 2016, Tear based bioelectronics, Electroanalysis, 28, 1250, 10.1002/elan.201501116 Efron, 2016 Falk, 2014, Miniature direct electron transfer based enzymatic fuel cell operating in human sweat and saliva, Fuel Cells, 14, 1050, 10.1002/fuce.201400037 Falk, 2014, Self-powered wireless carbohydrate/oxygen sensitive biodevice based on radio signal transmission, PLoS ONE, 9, e109104, 10.1371/journal.pone.0109104 Gonzalez-Arribas, 2017, Transparent, mediator- and membrane-free enzymatic fuel cell based on nanostructured chemically modified indium tin oxide electrodes, Biosens. Bioelectron., 97, 46, 10.1016/j.bios.2017.05.040 Xiao, 2017, A symmetric supercapacitor/biofuel cell hybrid device based on enzyme-modified nanoporous gold: an autonomous pulse generator, Biosens. Bioelectron., 90, 96, 10.1016/j.bios.2016.11.012 Pankratov, 2014, Hybrid electric power biodevices, ChemElectroChem, 1, 1798, 10.1002/celc.201402158 Simon, 2008, Materials for electrochemical capacitors, Nat. Mater., 7, 845, 10.1038/nmat2297 Pankratov, 2014, Self-charging electrochemical biocapacitor, ChemElectroChem, 1, 343, 10.1002/celc.201300142