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165. Zhou H, Zhang Z, Yu P et al (2010) Noncovalent Attachment of NAD + Cofactor onto
Carbon Nanotubes for Preparation of Integrated Dehydrogenase-Based Electrochemical
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166. Azzouzi S, Rotariu L, Benito AM et al (2015) A novel amperometric biosensor based on
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169. Ruppert R, Steckhan E (1989) Efficient photoelectrochemical in-situ regeneration of NAD
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170. Bollella P, Gorton L, Ludwig R, Antiochia R (2017) A Third Generation Glucose Biosensor
Based on Cellobiose Dehydrogenase Immobilized on a Glassy Carbon Electrode Decorated
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012
173. Ferri S, Kojima K, Sode K (2011) Review of Glucose Oxidases and Glucose Dehydrogenases: A Bird’s Eye View of Glucose Sensing Enzymes. J Diabetes Sci Technol 5:1068–
1076. https://doi.org/10.1177/193229681100500507
174. Sode K, Ootera T, Shirahane M et al (2000) Increasing the thermal stability of the
water-soluble pyrroloquinoline quinone glucose dehydrogenase by single amino acid
replacement. Enzyme Microb Technol 26:491–496. https://doi.org/10.1016/S0141-0229(99)
00196-9
175. Igarashi S, Sode K (2003) Stabilization of Quaternary Structure of Water-Soluble
Quinoprotein Glucose Dehydrogenase. Mol Biotechnol 24:97–104. https://doi.org/10.
1385/MB:24:2:97
176. Tanaka S, Igarashi S, Ferri S, Sode K (2005) Increasing stability of water-soluble PQQ
glucose dehydrogenase by increasing hydrophobic interaction at dimeric interface. BMC
Biochem 6:1. https://doi.org/10.1186/1471-2091-6-1
177. Sode K, Igarashi S, Morimoto A, Yoshida H (2002) Construction of Engineered
Water-soluble PQQ Glucose Dehydrogenase with Improved Substrate Specificity. Biocatal
Biotransformation 20:405–412. https://doi.org/10.1080/1024242021000058694
178. Igarashi S, Hirokawa T, Sode K (2004) Engineering PQQ glucose dehydrogenase with
improved substrate specificity. Biomol Eng 21:81–89. https://doi.org/10.1016/j.bioeng.2003.
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354
T. Monteiro et al.
multiwalled carbon nanotube-chitosan nanocomposite for application to lactate biosensors.
Sensors Actuators B Chem 125:474–481. https://doi.org/10.1016/j.snb.2007.02.052
162. Tang L, Zhu Y, Xu L et al (2007) Amperometric glutamate biosensor based on self-assembling
glutamate dehydrogenase and dendrimer-encapsulated platinum nanoparticles onto carbon
nanotubes. Talanta 73:438–443. https://doi.org/10.1016/j.talanta.2007.04.008
163. Jena BK, Raj CR (2006) Electrochemical Biosensor Based on Integrated Assembly of
Dehydrogenase Enzymes and Gold Nanoparticles. Anal Chem 78:6332–6339. https://doi.
org/10.1021/ac052143f
164. Wooten M, Gorski W (2010) Facilitation of NADH Electro-oxidation at Treated Carbon
Nanotubes. Anal Chem 82:1299–1304. https://doi.org/10.1021/ac902301b
165. Zhou H, Zhang Z, Yu P et al (2010) Noncovalent Attachment of NAD + Cofactor onto
Carbon Nanotubes for Preparation of Integrated Dehydrogenase-Based Electrochemical
Biosensors. Langmuir 26:6028–6032. https://doi.org/10.1021/la903799n
166. Azzouzi S, Rotariu L, Benito AM et al (2015) A novel amperometric biosensor based on
gold nanoparticles anchored on reduced graphene oxide for sensitive detection of l-lactate
tumor biomarker. Biosens Bioelectron 69:280–286. https://doi.org/10.1016/j.bios.2015.03.
012
167. Wong CH, Whitesides GM (1994) Enzymes in synthetic organic chemistry, tetrahedron
organic chemistry series
168. Yuan M, Kummer MJ, Milton RD et al (2019) Efficient NADH Regeneration by a Redox
Polymer-Immobilized Enzymatic System. ACS Catal 9:5486–5495. https://doi.org/10.1021/
acscatal.9b00513
169. Ruppert R, Steckhan E (1989) Efficient photoelectrochemical in-situ regeneration of NAD
(P) + coupled to enzymatic oxidation of alcohols. J Chem Soc Perkin Trans 2:811. https://
doi.org/10.1039/p29890000811
170. Bollella P, Gorton L, Ludwig R, Antiochia R (2017) A Third Generation Glucose Biosensor
Based on Cellobiose Dehydrogenase Immobilized on a Glassy Carbon Electrode Decorated
with Electrodeposited Gold Nanoparticles: Characterization and Application in Human
Saliva. Sensors (Basel) 17:2033–2036. https://doi.org/10.3390/s17081912
171. Puri D (2006) Textbook of Medical Biochemistry, 2nd edn. Reed Elsevier India, New Delhi
172. Laurinavicius V, Razumiene J, Ramanavicius A, Ryabov AD (2004) Wiring of PQQ–
dehydrogenases. Biosens Bioelectron 20:1217–1222. https://doi.org/10.1016/j.bios.2004.05.
012
173. Ferri S, Kojima K, Sode K (2011) Review of Glucose Oxidases and Glucose Dehydrogenases: A Bird’s Eye View of Glucose Sensing Enzymes. J Diabetes Sci Technol 5:1068–
1076. https://doi.org/10.1177/193229681100500507
174. Sode K, Ootera T, Shirahane M et al (2000) Increasing the thermal stability of the
water-soluble pyrroloquinoline quinone glucose dehydrogenase by single amino acid
replacement. Enzyme Microb Technol 26:491–496. https://doi.org/10.1016/S0141-0229(99)
00196-9
175. Igarashi S, Sode K (2003) Stabilization of Quaternary Structure of Water-Soluble
Quinoprotein Glucose Dehydrogenase. Mol Biotechnol 24:97–104. https://doi.org/10.
1385/MB:24:2:97
176. Tanaka S, Igarashi S, Ferri S, Sode K (2005) Increasing stability of water-soluble PQQ
glucose dehydrogenase by increasing hydrophobic interaction at dimeric interface. BMC
Biochem 6:1. https://doi.org/10.1186/1471-2091-6-1
177. Sode K, Igarashi S, Morimoto A, Yoshida H (2002) Construction of Engineered
Water-soluble PQQ Glucose Dehydrogenase with Improved Substrate Specificity. Biocatal
Biotransformation 20:405–412. https://doi.org/10.1080/1024242021000058694
178. Igarashi S, Hirokawa T, Sode K (2004) Engineering PQQ glucose dehydrogenase with
improved substrate specificity. Biomol Eng 21:81–89. https://doi.org/10.1016/j.bioeng.2003.
12.001
354
T. Monteiro et al.
