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201. Mehra AK, Saini R, Kumar A (2021) The effect of bre contents on mechanical and mois­ture absorption properties of gourd sponge/coir bre reinforced epoxy hybrid composites. Compos Commun 25:100732
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Chapter 3
Recent Advancements inDeveloping Nanobiosensors forTreating Inammatory Diseases ofHuman: AComprehensive Overview
AnkitaChakraborty , SaubhikMitra , MoytreyChatterjee , AbhijitDey , andSuprabhatMukherjee
Abstract Nanobiosensor has been the major advantageous modication of conven-
tional biosensing devices for meeting the needs of advanced diagnosis and treatment of several complicated human diseases nowadays. Fabrication of bioactive mole­cules (enzymes, antibodies, etc.) and micro-organisms with nanoparticles, nanocom­posites and other miniaturized nanomaterials has been the key in developing efcient nanobiosensors. The major aim behind using nanomaterials and developing sensing device is to upgrade the sensing ability of the conventionally used biosensors. Hitherto, the available biosensing devices require higher quantities of samples which is a tough task to meet for many of the complex infectious and inammatory dis­eases like neurodegenerative diseases, fatty liver diseases, intracellular infections, etc. Nanobiosensors seem to be the solution for this limitation with higher degree of sensing efcacy, higher level of accuracy and reduced noise. In this context, biotri­bology of nanomaterial-biomolecule/enzyme interactions could provide substantial
Saubhik Mitra is working as guest faculty at Department of Animal Science, Kazi Nazrul University.
A. Chakraborty · S. Mukherjee (*) Integrative Biochemistry and Immunology Laboratory (IBIL), Department of Animal Science, Kazi Nazrul University, Asansol, West Bengal, India e-mail: suprabhat.mukherjee@knu.ac.in
S. Mitra Department of Health and Family Welfare, Government of West Bengal, Santipur Block, Nadia, West Bengal, India
M. Chatterjee Department of Life Sciences, Presidency University, Kolkata, West Bengal, India
A. Dey Integrative and Immunology Laboratory (IBIL), Department of Animal Science, Kazi Nazrul University, Asansol, West Bengal, India e-mail: abhijit.dbs@presiuniv.ac.in
A. Kumar et al. (eds.), Applications of Biotribology in Biomedical Systems,
https://doi.org/10.1007/978-3-031-58327-8_3
79© The Author(s), under exclusive license to Springer Nature Switzerland AG 2024
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knowledge in improving the efcacy of the developed sensors. In this chapter, recent advancement in the eld of nanobiosensor developments with a special emphasis on the biotribological aspects and their potential application for diagnosing compli­cated human inammatory diseases have been discussed by reviewing the path­breaking discoveries, literatures and available information in various databases.
Keywords Infectious disease · Lifestyle-related disease · Nanobiosensor · Biomarker · Electrochemical nanobiosensor · Optical nanobiosensor
Abbreviations
AD Alzheimer’s disease AgNP Silver nanoparticle APC Adenomatous polyposis coli Apt-MB Magnetic-bead modied aptamer AuDENP Dendrimer-entrapped gold nanoparticles AuNC/MWCNT-NH2 Gold nanocage coupled with multiwalled carbon nanotube AuNI Gold nanoislands AuNP Gold nanoparticle BBB Blood-brain barrier CNT Carbon nanotubes CSF Cerebrospinal uid DAAPT DA-DNA aptamer DPV Differential pulse voltammetry EEG Electroencephalography ELISA Enzyme-linked immunosorbent assay EMG Electromyography FET Field effect transistor FRET Fluorescence resonance energy transfer Gem Gemcitabine HBV Hepatitis B virus HIV Human immunodeciency virus hTERT Human telomerase reverse transcriptase LFA Lateral ow assay lncRNA Long non-coding RNA MAGE Melanoma-associated antigens miR-21i miR-21 inhibitor NCD Non-communicable diseases ND Neurodegenerative diseases NGF Nerve growth factor NM Nanomaterials NP Nanoparticles PANI Polyaniline
3 Recent Advancements in Developing Nanobiosensors for Treating Inammatory…
PAR Plasminogen activator receptor PC Photonic crystals PD Parkinson’s disease PFF Preformed brils PfHRF Plasmodium falciparum histidine-rich protein pLDH Parasite lactate dehydrogenase PPT Plasmonic photothermal SERS Surface enhanced Raman scattering SN Substantia nigra SNpc Substantia nigra pars compacta SPCE Screen-printed carbon electron SPR Surface plasmon resonance SQUID Superconducting quantum interference devices SWCNT Single-walled carbon nanotubes TB Tuberculosis VLP-1 Visinin-like protein 1 VNTR Variable number of tandem repeats
Ankita Chakraborty, Saubhik Mitra and Moytrey Chatterjee contributed equally with all other contributors.

3.1 Introduction

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Non-communicable diseases (NCDs) signicantly contribute to global burden of morbidity and nearly 72% of worldwide death [1]. Persistent low-grade inamma­tion with rise in serum pro-inammatory cytokine is associated with the develop­ment of different NCDs, including cardiometabolic diseases, different form of cancers, respiratory and auto-immune disorders [2, 3]. For control of these diseases, early diagnosis is pivotal [4]. Although microscopy, ELISA and other conventional methods of diagnosis act as the gold standard but low specicity, long test time and lack of standardization are the obstacles that can be overcome using biosensor that is relatively quick and biocompatible [5, 6].
Biosensor is an integrated electronic receptor–transducer device which can be used for quantitative or semi-quantitative analytical detection of biomarker (specic for disease condition) with maximum accuracy in minimum time. Biosensors are generally afnity-based and signal transducers determine the extent of the binding reaction and relay this information in a variety of methods, like uorescence, elec­tric signal [7]. Today, biosensor is capable of delivering more precision, sensitivity and rapid, multiplicative outcomes compared to previous conventional biosensors [8]. The signal transduction is mainly based on changes in the physiochemical prop­erties resulting from sensing the bioanalyte. Because of presence of diverse types of analytes in a disease condition, high afnity of biorecognition molecules for their target allows the biosensor to work effectively. In recent years, apart from the
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