RECENT ADVANCEMENT IN ELECTROCHEMICAL BIOSENSOR BASED ON REDOX ENZYME COMPOSITE MODIFIED ELECTRODE FOR THE DETECTION OF BIOMOLECULES
Enzymatic Electrochemical Biosensor
DOI:
https://doi.org/10.55766/sujst-2024-04-e04439Keywords:
Biomolecules, Electrochemical biosensors, Enzyme, Immobilization, NanocompositesAbstract
Recent developments in electrochemical biosensors have resulted in new applications in a variety of disciplines, such as clinical diagnosis, food processing quality control, and environmental monitoring. The electrochemical biosensor is a widely used sensing device that transmits an electrical signal from biological activities. Electrochemical biosensors have led to significant advancements in detecting various biomolecules such as uric acid, glucose, cholesterol, lactate, and DNA, including cancer biomarkers, viruses, and antibodies. An electrode is a vital part of this kind of sensor since it serves as a strong support for immobilizing biomolecules (enzyme, antibody, and nucleic acid) and allowing electron flow. Redox enzymes are the foundation of enzymatic electrochemical biosensors, which use oxidation or reduction reactions to detect a substrate, which is then converted into an electrical signal. Immobilizing enzymes onto solid supports is a common method to enhance the performance of an enzymatic electrochemical biosensor. However, there are some challenges, such as potential loss of enzyme activity, difficulties in maintaining enzyme stability, and issues related to the reproducibility and consistency of enzyme immobilization. This review covers all challenges in enzymatic electrochemical biosensors. Numerous new biosensor platforms are announced each year as researchers look for various electrode materials. Additionally, the researchers should familiarize themselves with the practical methods used in electrode production in order to build a successful biosensor. This review highlights current developments in modifying enzyme-immobilized biosensors for detection of different biomolecules. The article further describes methods of enzyme immobilization and various enzymes with different nanomaterials for the development of novel enzymatic electrochemical biosensors.
References
Anik, Ü., Çubukçu, M. and Ertaş, F.N., 2016. An effective electrochemical biosensing platform for the detection of reduced glutathione. Artificial cells, nanomedicine, and biotechnology, 44(3):971-977.
Arumugasamy, S.K., Govindaraju, S., and Yun, K. (2020). Electrochemical sensor for detecting dopamine using graphene quantum dots incorporated with multiwall carbon nanotubes. Applied Surface Science, 508:145294. https://doi.org/10.1016/j.apsusc.2020.145294
Ashraf, G., Aziz, A., Iftikhar, T., Zhong, Z-T., Asif, M., and Chen, W. (2022). The Roadmap of Graphene-Based Sensors: Electrochemical Methods for Bioanalytical Applications. Biosensors, 12(12):1183. https://doi.org/10.3390/bios12121183
Bagyalakshmi, S., Sivakami, A., and Balamurugan, K.A. (2020). Zno nanorods based enzymatic glucose biosensor by immobilization of glucose oxidase on a chitosan film. Obesity Medicine, 18:100229. https://doi.org/10.1016/j.obmed.2020.100229
Bai, Y., Xu, T., and Zhang, X. (2020). Graphene-Based Biosensors for Detection of Biomarkers. Micromachines, 11(1):60. https://doi.org/10.3390/mi11010060
Barrios-Estrada, C., de Jesús Rostro-Alanis, M., Muñoz-Gutiérrez, B.D., Iqbal, H.M., Kannan, S., Parra-Saldívar, R. (2018). Emergent contaminants: Endocrine disruptors and their laccase-assisted degradation-A review. Science of The Total Environment, 612:1516-1531. https://doi.org/10.1016/j.scitotenv.2017.09.013
Bhalla, N., Jolly, P., Formisano, N., and Estrela, P. (2016). Introduction to biosensors. Essays Biochem, 60(1):1-8. https://doi.org/10.1042/EBC20150001
Cao, L., van Langen, L., and Sheldon, R.A. (2003). Immobilised enzymes: Carrier-bound or carrier-free. Current Opinion in Biotechnology, 14(4):387-394. https://doi.org/10.1016/S0958-1669(03)00096-X
Choi, H.K. and Yoon, J. (2023). Enzymatic Electrochemical/Fluorescent Nanobiosensor for Detection of Small Chemicals. Biosensors, 13(4):492. https://doi.org/10.3390/bios13040492
Dai, B., Zhou, R., Ping, J., Ying, Y., and Xie, L. (2022). Recent advances in carbon nanotube-based biosensors for biomolecular detection. TrAC Trends in Analytical Chemistry, 154:116658. https://doi.org/10.1016/j.trac.2022.116658
Datta, S., Christena, L.R., and Rajaram, Y.R. (2013). Enzyme immobilization: an overview on techniques and support materials. 3 Biotech, 3(1):1-9. https://doi.org/10.1007/s13205-012-0071-7
Dutta, T., Noushin, T., Tabassum, S., Mishra, S.K. (2023). Road Map of Semiconductor Metal-Oxide-Based Sensors: A Review. Sensors, 23(15):6849. https://doi.org/10.3390/s23156849
Feng, Y., Ai, Y., Li, X., Wang, L., Zhang, Z., Ding, W., and Sun, W. (2023). Preparation of electrochemical horseradish peroxidase biosensor with black phosphorene-zinc oxide nanocomposite and their applications. RSC Advances, 13(45):32028-32038. ttps://doi.org/10.1039/D3RA05148J
Ferrag, C. and Kerman, K., 2020. Grand challenges in nanomaterial-based electrochemical sensors. Frontiers in Sensors, 1:583822. https://doi.org/10.3389/fsens.2020.583822
Flickinger, M.C. and Drew, S.W. (1999). Fermentation, biocatalysis and bioseparation. In: Flickinger MC, editor. Encyclopedia of bioprocess technology. Vol. 1. 1st ed. New York (NY): Wiley; 1999.
Fomo, G., Waryo, T., Feleni, U., Baker, P., Iwuoha, E. (2019). Electrochemical Polymerization. In: Jafar Mazumder, M., Sheardown, H., Al-Ahmed, A. (eds) Functional Polymers. Polymers and Polymeric Composites: A Reference Series. Springer, Cham. https://doi.org/10.1007/978-3-319-95987-0_3
Fredj, Z., Singh, B., Bahri, M., Qin, P., and Sawan, M. (2023). Enzymatic Electrochemical Biosensors for Neurotransmitters Detection: Recent Achievements and Trends. Chemosensors, 11(7):388. https://doi.org/10.3390/chemosensors11070388
Gorecka, E. and Jastrzebska, M. (2011). Immobilization techniques and biopolymer carriers. Biotechnology Food Science, 75(1):65-86.
Goswami, S., Nandy, S., Fortunato, E., and Martins, R. (2023). Polyaniline and its composites engineering: A class of multifunctional smart energy materials. Journal of Solid State Chemistry, 317(Part A):123679. https://doi.org/10.1016/j.jssc.2022.123679
Hanefield, U., Gardossi, L., and Magner, E. (2008). Understanding enzyme immobilisation. Chemical Society Reviews, 38(2):453-468. https://doi.org/10.1039/B711564B
Hirsh, S.L., Bilek, M.M.M., Nosworthy, N.J., Kondyurin, A., Dos Remedios, C.G., and McKenzie, D.R. (2010). A comparison of covalent immobilization and physical adsorption of a cellulase enzyme mixture. Langmuir, 26(17):14380-14388. https://doi.org/10.1021/la1019845
Holmboe, E.S. and Durning, S.J. (2014). Assessing clinical reasoning: moving from in vitro to in vivo. Diagnosis, 1(1):111-117. https://doi.org/10.1515/dx-2013-0029
Honda, T., Miyazaki, M., Nakamura, H., and Maeda, H. (2005). Immobilization of enzymes on a microchannel surface through cross-linking polymerization. Chemical communications, (40):5062-5064. https://doi.org/10.1039/b510605b
Jesionowski, T., Zdarta, J., and Krajewska, B. (2014). Enzyme Immobilization by Adsorption: A Review. Adsorption, 20(5):801-821. https://doi.org/10.1007/s10450-014-9623-y
Jesny, S., Menon, S., and Girish, K. (2016). Simultaneous determination of guanine and adenine in the presence of uric acid by a poly(para toluene sulfonic acid) mediated electrochemical sensor in alkaline medium. RSC Advances, 6(79):75741-75748. https://doi.org/10.1039/C6RA13567F
Justino C.I.L., Gomes A.R., Freitas A.C., Duarte A.C., and Rocha-Santos T.A.P. (2017). Graphene based sensors and biosensors. TrAC Trends in Analytical Chemistry, 91:53-66. https://doi.org/10.1016/j.trac.2017.04.003
Kacar, C., Dalkiran, B., Erden, P.E., and Kiliç, E. (2014). An amperometric hydrogen peroxide biosensor based on Co3O4 nanoparticles and multiwalled carbon nanotube modified glassy carbon electrode. Applied Surface Science, 311:139-146. https://doi.org/10.1016/j.apsusc.2014.05.028
Kang, X., Mai, Z., Zou, X., Cai, P., and Mo, J. (2008). Glucose biosensors based on platinum nanoparticles-deposited carbon nanotubes in sol-gel chitosan/silica hybrid. Talanta, 74(4):879-86. https://doi.org/10.1016/j.talanta.2007.07.019
Koyappayil, A., Kim, H.T., Lee, M.-H. (2021). ‘Laccase-like’ properties of coral-like silver citrate micro-structures for the degradation and determination of phenolic pollutants and adrenaline. Journal of Hazardous Materials, 412:125211. https://doi.org/10.1016/j.jhazmat.2021.125211
Kuila, T., Bose, S., Khanra, P., Mishra, A.K., Kim, N.H., and Lee J.H. (2011). Recent advances in graphene-based biosensors. Biosensors and Bioelectronics, 26(12):4637-4648. https://doi.org/10.1016/j.bios.2011.05.039
Kuralay, F. (2019). Chapter 12 - Nanomaterials-Based Enzyme Biosensors for Electrochemical Applications: Recent Trends and Future Prospects, Editor(s): Sibel A. Ozkan, Afzal Shah, New Developments in Nanosensors for Pharmaceutical Analysis, Academic Press, p. 381-408. https://doi.org/10.1016/B978-0-12-816144-9.00012-2
Kurbanoglu, S., Erkmen, C., and Uslu, B. (2020). Frontiers in electrochemical enzyme based biosensors for food and drug analysis. TrAC Trends in Analytical Chemistry, 124:115809. https://doi.org/10.1016/j.trac.2020.115809
Lawal, A.T. (2023). Recent developments in electrochemical sensors based on graphene for bioanalytical applications. Sensing and Bio-Sensing Research, 100571. https://doi.org/10.1016/j.sbsr.2023.100571
Lazcka, O., Del Campo, F.J., and Muñoz, F.X. (2007). Pathogen detection: A perspective of traditional methods and biosensors. Biosensors and Bioelectronics, 22(7):1205-1217. https://doi.org/10.1016/j.bios.2006.06.036
Li, J., Liu, Y., Tang, X., Xu, L., Min, L., Xue, Y., Hu, X., and Yang, Z. (2020). Multiwalled carbon nanotubes coated with cobalt(II) sulfide nanoparticles for electrochemical sensing of glucose via direct electron transfer to glucose oxidase. Microchimica Acta, 187(1):80. https://doi.org/10.1007/s00604-019-4047-8
Li, Y., Zhang, L., Li, M., Pan, Z., and Li, D. (2012). A disposable biosensor based on immobilization of laccase with silica spheres on the MWCNTs-doped screen-printed electrode. Chemistry Central Journal, 6(1):103. https://doi.org/10.1186/1752-153X-6-103
Lipińska, W., Grochowska, K., and Siuzdak, K. (2021). Enzyme Immobilization on Gold Nanoparticles for Electrochemical Glucose Biosensors. Nanomaterials. 11(5):1156. https://doi.org/10.3390/nano11051156
Maghraby, Y.R., El-Shabasy, R.M., Ibrahim, A.H. and Azzazy, H.M.E.S. (2023). Enzyme immobilization technologies and industrial applications. ACS omega, 8(6):5184-5196. https://doi.org/10.1021/acsomega.2c07560
Maity, D., Minitha C.R., and Rajendra Kumar R.T. (2019). Glucose oxidase immobilized amine terminated multiwall carbon nanotubes/reduced graphene oxide/polyaniline/gold nanoparticles modified screen-printed carbon electrode for highly sensitive amperometric glucose detection. Materials Science and Engineering: C, 105:110075. https://doi.org/10.1016/j.msec.2019.110075
Malecka, K., Menon, S., Palla, G., Kumar, K.G., Daniels, M., Dehaen, W., Radecka, H., and Radecki, J. (2020). Redox-Active Monolayers Self-Assembled on Gold Electrodes-Effect of Their Structures on Electrochemical Parameters and DNA Sensing Ability. Molecules, 25(3):607. https://doi.org/10.3390/molecules25030607
Mayorga Martinez, C.C., Treo, E.F., Madrid R.E., and Felice, C.C. (2011). Real-time measurement of glucose using chrono-impedance technique on a second generation biosensor. Biosensors and Bioelectronics, 29(1):200-203. https://doi.org/10.1016/j.bios.2011.08.018
Menon, S., Mathew, M.R., Sam, S., Keerthi, K., and Kumar, K.G. (2020). Recent advances and challenges in electrochemical biosensors for emerging and re-emerging infectious diseases. Journal of Electroanalytical Chemistry, 878:114596. https://doi.org/10.1016/j.jelechem.2020.114596
Mohamad, N.R., Marzuki, N.H.C., Buang, N.A., Huyop, F., and Wahab, R.A. (2015). An overview of technologies for immobilization of enzymes and surface analysis techniques for immobilized enzymes. Biotechnology & Biotechnological Equipment, 29(2):205-220. https://doi.org/10.1080/13102818.2015.1008192
Mohidem, N.A., Mohamad, M., Rashid, M.U., Norizan, M.N., Hamzah, F., and Mat, H.B. (2023). Recent advances in enzyme immobilisation strategies: An overview of techniques and composite carriers. Journal of Composites Science, 7(12):488. https://doi.org/10.3390/jcs7120488
Naveen MH., Gurudatt, NG., and Ganesh, N. (2017). Applications of conducting polymer composites to electrochemical sensors: A review, Applied Materials Today, 9:419-433. https://doi.org/10.1016/j.apmt.2017.09.001
Nguyen, H.H., Lee, S.H., Lee, U.J., Fermin, C.D., and Kim, M. (2019). Immobilized enzymes in biosensor applications. Materials, 12(1):121. https://doi.org/10.3390/ma12010121
Nguyen, H.H. and Kim, M. (2017). An overview of techniques in enzyme immobilization. Applied Science and Convergence Technology, 26(6):157-163. https://doi.org/10.5757/ASCT.2017.26.6.157
Obzturk, B. (2001). Immobilization of lipase from Candida rugosa on hydrophobic and hydrophilic supports [MSc dissertation]. İzmir (Turkey): Izmir Institute of Technology, p. 40.
Ovsejevi, K., Manta, C., and Batista-Viera, F. (2013). Reversible Covalent Immobilization of Enzymes via Disulfide Bonds. In: Guisan, J. (eds) Immobilization of Enzymes and Cells. Methods in Molecular Biology, p. 89-116. https://doi.org/10.1007/978-1-62703-550-7_7
Palanisamy, S., Ramaraj, S., Chen, S.M., Yang, T.C.K., Yi-Fan, P., Chen, T-W., Velusamy, V., and Selvam, S. (2017). A novel Laccase Biosensor based on Laccase immobilized Graphene-Cellulose Microfiber Composite modified Screen-Printed Carbon Electrode for Sensitive Determination of Catechol. Scientific Reports, 7(1):41214. https://doi.org/10.1038/srep41214
Palmisano F., Zambonin P.G., Centonze D., and Quinto M.A (2002). A Disposable, Reagentless, Third-Generation Glucose Biosensor Based on Overoxidized Poly(pyrrole)/Tetrathiafulvalene- Tetracyanoquinodimethane Composite. Analytical Chemistry, 74(23):5913-5918.https://doi.org/10.1021/ac0258608
Putzbach, W. and Ronkainen, N.J. (2013). Immobilization Techniques in the Fabrication of Nanomaterial-Based Electrochemical Biosensors: A Review. Sensors. 13(4):4811-4840. https://doi.org/10.3390/s130404811
Ren, Q-Q., Yang, F., Ren, W., Wang, C., Jiang, W-S., Zhao, Z-Y., Chen, J., Lu, X-Y., and Yu, Y. (2020). Amperometric Biosensor Based on Coimmobilization of Multiwalled Carbon Nanotubes and Horseradish Peroxidase-Gold Nanocluster Bioconjugates for Detecting H2O2. Journal of Nanomaterials, 2020(1):9627697. https://doi.org/10.1155/2020/9627697
Romero-Arcos, M., Garnica-Romo, M.G., and Martínez-Flores, H.E. (2017). Characterization of Amperometric Laccase Biosensor Based on Carbon Nanotube. Procedia Technology, 27:279-281. https://doi.org/10.1016/j.protcy.2017.04.130
Shin, J.H., Lee, M.J., Choi, J.H., Song, Ji-ae., Kim, T.H., and Oh, B.K. (2020). Electrochemical H2O2 biosensor based on horseradish peroxidase encapsulated protein nanoparticles with reduced graphene oxide-modified gold electrode. Nano Convergence, 7(1):39. https://doi.org/10.1186/s40580-020-00249-0
Si, P., Huang, Y., Wang, T., and Ma, J. (2013). Nanomaterials for electrochemical non-enzymatic glucose biosensors. RSC Advances, 3(11):3487-3502. https://doi.org/10.1039/c2ra22360k
Siliang, G., Yujun, W., Xiang, D., Guangsheng, L., and Youyuan, D. (2010). Effect of pore diameter and cross-linking method on the immobilization efficiency of Candida rugosa lipase in SBA-15, Bioresource Technology, 101(11):3830-3837. https://doi.org/10.1016/j.biortech.2010.01.023
Singh, R., Gupta, R., Bansal, D., Bhateria, R., and Sharma, M. (2024). A Review on Recent Trends and Future Developments in Electrochemical Sensing. ACS omega, 9(7):7336-7356. https://doi.org/10.1021/acsomega.3c08060
Singh, R., Jaiswal, S., Singh, K., Fatma, S., and Prasad, B.B. (2018). Biomimetic Polymer-Based Electrochemical SensorUsing Methyl Blue-Adsorbed Reduced Graphene Oxide and Functionalized Multiwalled Carbon Nanotubesfor Trace Sensing of Cyanocobalamin. ACS Applied Nano Materials, 1(9):4652-4660. https://doi.org/10.1021/acsanm.8b00902
Solomon, E.I., Sundaram, U.M., and Machonkin, T.E. (1996). Machonkin Multicopper oxidases and oxygenases Chemical Reviews, 96(7):2563-2605. https://doi.org/10.1021/cr950046o
Sumitha, M.S. and Xavier, T.S. (2023). Recent advances in electrochemical biosensors - A brief review. Hybrid Advances, 2:100023. https://doi.org/10.1016/j.hybadv.2023.100023
Sun, G., Wei, X., Zhang, D., Huang, L., Liu, H., and Fang, H. (2023). Immobilization of Enzyme Electrochemical Biosensors and Their Application to Food Bioprocess Monitoring. Biosensors, 13(9):886. https://doi.org/10.3390/bios13090886
Taei, M., Hadadzadeh, H., Hasanpour, F., Zahedi, G., and Dehbanipour, Z. (2015). A Voltammetric Sensor Based on Multi-walled Carbon Nanotubes and a New Azoferrocene Derivative for Determination of Glutathione. IEEE Sensors Journal. 15(8):1-1. https://doi.org/10.1109/JSEN.2015.2423325
Thunyakontirakun, W., Sriwichai, S., Phanichphant, S., and Janmanee, R. (2019). Fabrication of poly(pyrrole-3-carboxylic acid)/graphene oxide composite thin film for glucose biosensor. Mater. Today Proc. 2019, 17(4):2070-2077. https://doi.org/10.1016/j.matpr.2019.06.255
Tseng T.-F., Yang Y.-L., Chuang M.-C., Lou S.-L., Galik M., Flechsig G.-U., Wang J. (2009). Thermally stable improved first-generation glucose biosensors based on nafion/glucose-oxidase modified heated electrodes Electrochemistry Communications, 11(9):1819-1822. https://doi.org/10.1016/j.elecom.2009.07.030
Wang, D. and Chen, L. (2009). Facile direct electron transfer in glucose oxidase modified electrodes. Electrochimica acta, 54(18):4316-4320. https://doi.org/10.1016/j.electacta.2009.02.096
Wang, Y., Liu, Xin-yu., Xu, X., Yang, Y., Huang, Li-hong., He, Zhen-yu., Xu, You-he., Chen, Jin-ju., and Feng, Zhe-sheng. (2018). Preparation and characterization of reduced graphene oxide/Fe3O4 nanocomposite by a facile in-situ deposition method for glucose biosensor applications. Materials Research Bulletin, 101:340-346. https://doi.org/10.1016/j.materresbull.2018.01.035
Wardak, C., Paczosa-Bator, B., and Malinowski, S. (2020). Application of cold plasma corona discharge in preparation of laccase-based biosensors for dopamine determination. Materials Science and Engineering: C, 116:111199. https://doi.org/10.1016/j.msec.2020.111199
Wijayanti, S.D., Tsvik, L., and Haltrich, D. (2023). Recent advances in electrochemical enzyme-based biosensors for food and beverage analysis. Foods, 12(18):3355. https://doi.org/10.3390/foods12183355
Wong, L.S., Thirlway, J., Micklefield, J. (2008). Direct site-selective covalent protein immobilization catalyzed by a phosphopantetheinyl transferase. Journal of the American Chemical Society, 130(37):12456-12464. https://doi.org/10.1021/ja8030278
Xu, L., Hou, Y., Zhang, M., Cheng, T., Huang, W., Yao, C., and Wu, Q. (2015). Electrochemical sensor based on a silver nanowires modified electrode for the determination of cholesterol. Analytical Methods, 7(13):5649-5653. https://doi.org/10.1039/C5AY01164G
Xuan, X., Yoon, H.S., and Park, J.Y. (2018). A wearable electrochemical glucose sensor based on simple and low-cost fabrication supported micro-patterned reduced graphene oxide nanocomposite electrode on flexible substrate, Biosensors and Bioelectronics, 109:75-82. https://doi.org/10.1016/j.bios.2018.02.054
Yoon, J., Lee, S.N., Shin, M.K., Kim, H.W., Choi, H.K., Lee, T., and Choi, J.W. (2019). Flexible electrochemical glucose biosensor based on GOx/gold/MoS2/gold nanofilm on the polymer electrode. Biosensors and Bioelectronics, 140:111343. https://doi.org/10.1016/j.bios.2019.111343








