Добавил:
Sekretar
kiopkiopkiop18@yandex.ru
t.me/Prokururor I Вовсе не секретарь, но почту проверяю
Опубликованный материал нарушает ваши авторские права? Сообщите нам.
Вуз:
Предмет:
Файл:Ординатура / Хирургия / Библиотека им академика М.И. Перельмана / Книга_5361_Библиотеки_им_академика_М_И_Перельмана.pdf
X
- •Aim and Scope
- •Preface
- •Acknowledgments
- •Contents
- •Contributors
- •About the Editors
- •1.1 Introduction
- •1.2.1 Friction
- •1.2.1.3 Friction Under Lubricated Conditions
- •1.7.1 Joint Tribology
- •1.7.2 Skin Tribology
- •1.7.3 Oral Tribology
- •1.8 Summary
- •References
- •2.1 Introduction
- •2.3.1 Fluid Pressurization/Fluid-Film Lubrication
- •2.3.2 Boundary Lubrication
- •2.3.3 Hydrodynamic Lubrication
- •2.3.4 Squeeze-Film Lubrication
- •2.3.5 Synovial Fluid
- •2.3.6 Hydration Lubrication
- •2.5.2 Scaffolds
- •2.5.3 Synthetic Polymer
- •2.5.4 Polyacrylamide
- •2.5.5 PEG Hydrogel
- •2.5.6 PVA Hydrogel
- •2.5.7 Double Network Hydrogel
- •2.5.8 Triple Network Hydrogel
- •2.6.1 Polyacrylamide
- •2.6.2 PEG Hydrogel
- •2.6.3 PVA Hydrogel
- •2.6.4 Double Network Hydrogel
- •2.6.5 Triple Network Hydrogel
- •2.7.1 Mechanical Properties
- •2.7.2 Structural Properties
- •2.8 Conclusion
- •References
- •3.1 Introduction
- •3.3.1 Label-Based Biosensors
- •3.3.2 Label-Free Biosensors
- •3.4 Different Nanobiosensing Techniques
- •3.4.1 Optical Sensing
- •3.4.2 Electrochemical/Electrical Sensing
- •3.4.3 Magnetic Sensing
- •3.4.4 Mass-Based Sensing
- •3.6.2 Neurodegenerative Diseases
- •3.6.3 Infectious Diseases
- •3.6.4 Metabolic Diseases
- •References
- •4.1 Introduction
- •4.2.1 Surface Functionalization
- •4.2.2 Bioconjugation
- •4.3 Synthesis Approach
- •4.3.1 Hydrothermal Method
- •4.3.2 Chemical Vapor Deposition (CVD)
- •4.3.3 Wet Chemical Method
- •4.4 Plasmonic Black Bodies (PBBs)
- •4.4.1 Gold NP (AuNPs)-Based PBB
- •4.4.2 Silver NPs (Ag NPs)-Based PBB
- •4.4.3 Platinum NPs (Pt NPs)-Based PBB
- •4.5 Biomimetic NP
- •4.6 Upconverting NP (UCNP)
- •4.6.1 Synthesis
- •4.7 Inorganic NP
- •4.7.1 Synthesis
- •4.8 Photothermal Therapy (PTT)
- •4.9 Conclusion
- •References
- •5.1 Introduction
- •5.2 Human Skin
- •5.10 Future Scope
- •5.11 Conclusion
- •References
- •6.1 Introduction
- •6.1.1 Class 1
- •6.1.2 Class 2
- •6.1.3 Class 3
- •6.4.1.1 Surface Patterning
- •6.4.1.2 Direct-Write Patterning
- •6.4.1.5 Dip-Pen Nanotechnology
- •6.4.1.7 Composing Using Beams
- •6.4.1.8 Direct Write Photolithography (DWP)
- •6.4.1.9 Light-Beam Lithography Electron
- •6.4.1.10 Focused Ion Beam Lithography
- •6.4.2 Fabrication Techniques
- •6.4.2.4 Non-invasive Glucose Monitoring Devices Technique
- •6.4.2.6 Cost-Effective Electrochemical Voltametric Sensors Techniques
- •6.4.2.7 Three-Dimensional (3D) Printing Techniques
- •6.4.2.8 UV-LED Stereolithography Printer Technique
- •6.4.2.9 4D Printing Techniques
- •6.4.2.10 Advanced Biomedical Techniques Involving Biorobots
- •References
- •7.1 Introduction
- •7.6 Mechanical Biocompatibility Challenges
- •7.7 Poor Bio-Printing Resolution
- •7.9 Limited Biomaterial Selection
- •7.11 Conclusion
- •8.2 Animal Tribology
- •8.2.1 Joint
- •8.2.3 Integumentary Change
- •References
- •8.1 Introduction
- •8.3.1 Nanotribology
- •8.4 Green Tribology
- •8.5 Conclusion
- •References
- •9.1 Introduction
- •9.2 Bio-Tribological Issues
- •9.3.2 Bone Fracture Fixation
- •9.3.4 Cardiovascular Devices
- •9.3.5 Minimal Invasive Surgical Devices
- •References
- •10.1 Introduction
- •10.2.2.1 Structural Integrity
- •10.2.2.2 Controlled Release Properties
- •10.2.2.3 Enhanced Drug Loading Capacity
- •10.2.2.4 Tailored Material Properties
- •10.2.3.1 Biocompatibility
- •10.2.3.3 Mechanical Properties
- •10.2.3.4 Drug Compatibility
- •10.2.3.5 Fabrication Compatibility
- •10.3.1 Matrix Material Properties
- •10.3.4 Biocompatibility Assessment
- •10.3.4.1 In Vitro Cell Culture Studies
- •10.3.4.2 Hemocompatibility Studies
- •10.3.4.3 In Vivo Animal Studies
- •10.3.4.4 Histological Analysis
- •10.3.4.5 Immune Response Evaluation
- •10.3.4.6 Biodegradation Assessment
- •10.4 Surface Engineering Considerations
- •10.4.2.1 Surface Coatings
- •10.4.2.2 Plasma Treatment
- •10.4.2.3 Surface Grafting
- •10.4.2.4 Dip Coating
- •10.4.2.5 Spray Coating System
- •10.4.2.6 Electrotreated Coating
- •10.4.2.9 Microfabrication Techniques
- •10.4.2.10 Surface Roughness Control
- •10.5.1.2 Mechanical Properties
- •10.5.1.3 Surface Characteristics
- •10.5.1.4 Release Kinetics Analysis
- •10.5.1.5 Biological Compatibility
- •10.5.1.7 Other Analyses
- •10.6 Advanced Fabrication Techniques
- •10.8 Conclusion
- •References
- •11.1 Introduction
- •11.2 Shape Memory Alloys (SMA)
- •11.3 Shape Memory Polymers
- •11.3.1 Heat
- •11.3.2 Light
- •11.3.3 Magnetic Field
- •11.4 Shape-Changing Hydrogels
- •11.5 Biomedical Applications
- •11.6 Conclusion
- •References
- •12.1 Introduction
- •12.3 Bioresorbable Orthopedic Implants
- •12.4.1 Polylactides
- •12.4.2 Poly (Ortho Esters)
- •12.4.3 Polyphosphoesters
- •12.4.4 Polyphosphazenes
- •12.4.5 Polycaprolactone
- •12.4.6 Polyurethanes
- •12.4.7 Polycarbonates
- •12.5.1 Compression Molding
- •12.5.2 Transfer Molding
- •12.5.3 Injection Molding
- •12.5.4 Extrusion
- •12.5.5 Blow Molding
- •12.5.6 Calendering Process
- •12.5.7 Fiber Spinning
- •12.5.8 Thermoforming
- •12.5.9 Polymer Foaming
- •12.7 Challenges
- •12.8 Conclusion
- •References
- •13.1 Introduction
- •13.3.1.1 Total Hip Replacement (THR)
- •13.3.2 Resurfacing Hip Replacement (RHR)
- •13.5.1 Adhesive Wear
- •13.5.2 Abrasive Wear
- •13.5.3 Fatigue Wear
- •13.5.4 Corrosion/Oxidative Wear
- •13.5.5 Surface Cracking
- •13.6.1 Metallic Implants
- •13.6.1.1 Stainless Steel
- •13.6.1.2 Co-Cr Alloys
- •13.6.1.3 Ti-Alloy
- •13.6.2 Ceramic Implants
- •13.6.3 Polymer Implants
- •13.6.4 Composite Implants
- •13.6.5.2 Surface Coatings
- •13.7.2.1 Hydrodynamic Lubrication
- •13.7.2.2 Boundary Lubrication
- •13.7.2.3 Elastohydrodynamic Lubrication
- •13.7.3 Biomimetic Lubrication Approaches
- •13.7.3.1 Replicating Natural Lubrication Mechanisms
- •13.7.4.1 Implant Wear
- •13.7.4.3 Synovial Fluid Degradation
- •13.8.1 Hydroxyapatite Coatings
- •13.8.1.1 Bone Integration
- •13.8.1.2 Implant Stability
- •13.8.1.4 Biocompatibility
- •13.8.2 Diamond-Like Carbon Coatings
- •13.8.3 Metal Nitride Coatings
- •13.8.4 Polymeric Coatings
- •13.8.5 Nanocomposite Coatings
- •13.9.1 Pin-on-Disk Testing
- •13.9.2 Hip Joint Simulators
- •13.9.3 Knee Joint Simulators
- •13.9.4 Tribo-Corrosion Testing
- •13.9.5 Wear Debris Analysis Techniques
- •13.9.5.1 Scanning Electron Microscopy (SEM)
- •13.9.5.2 Energy-Dispersive X-Ray Spectroscopy (EDS)
- •13.10.1.1 Tailored Geometries
- •13.10.1.2 Improved Wear Characteristics
- •13.10.1.3 Accelerated Innovation
- •13.10.2.1 Real-Time Wear Monitoring
- •13.10.2.2 Functionality Assessment
- •13.10.2.3 Implant Status Monitoring
- •13.10.2.4 Patient-Centric Healthcare
- •13.10.3.1 Advanced Biomaterials
- •13.10.3.4 Multidisciplinary Approaches
- •13.10.4.1 Wear Data Analysis
- •13.10.4.2 Predictive Wear Patterns
- •13.10.4.3 Early Intervention Strategies
- •13.10.4.4 Personalized Treatment Plans
- •13.11 Conclusion
- •References
- •14.1 Introduction
- •14.2.1 Powder Bed Fusion (PBF)
- •14.2.2 Directed Energy Deposition
- •14.3.1 Extrusion-Based AM
- •14.5 Biomanufacturing
- •14.5.1 Tissue Engineering
- •14.5.2 Organ-on-a-Chip Models
- •14.6 Conclusion
- •References
- •Index

72
96. Pan Y, Xiong D, Ma R.A study on the friction properties of poly (vinyl alcohol) hydrogel as
articular cartilage against titanium alloy. Wear. 2007;262:1021–5.
97. Sardinha VM, Lima LL, Belangero WD, Zavaglia CA, Bavaresco VP, Gomes JR.Tribological
characterization of polyvinyl alcohol hydrogel as a substitute for articular cartilage. Wear.
2013;301:218–25.
98. Li F, Su Y, Wang J, Wu G, Wang C.Inuence of dynamic load on friction behavior of human
articular cartilage, stainless steel and polyvinyl alcohol hydrogel as articial cartilage. J
Mater SciMater M. 2010;21:147–54.
99. Bera, B. (2009). Development of articial articular cartilage. Sadhana, 34, 823–831.
100. Nguyen, Q.T., Hwang, Y., Chen, A. C., Varghese, S., & Sah, R.L. (2012). Cartilage-like
mechanical properties of poly (ethylene glycol)-diacrylate hydrogels. Biomaterials, 33(28),
6682–6690.
101. Su, W., Hu, Y., Zeng, M., Li, M., Lin, S., Zhou, Y., & Xie, J. (2019). Design and evaluation
of nano-hydroxyapatite/poly (vinyl alcohol) hydrogels coated with poly (lactic-co-glycolic
acid)/nano-hydroxyapatite/poly (vinyl alcohol) scaffolds for cartilage repair. Journal of
Orthopaedic Surgery and Research, 14, 1–9.
102. Miserez, A.; Weaver, J.C.; Chaudhuri, O.Biological materials and molecular biomimetics—
Filling up the empty soft materials space for tissue engineering applications. J.Mater. Chem.
B 2015, 3, 13–24.
103. Li, J.; Suo, Z.; Vlassak, J.J.Stiff, strong, and tough hydrogels with good chemical stability.
J.Mater. Chem. B 2014, 2, 6708–6713. [CrossRef]
104. Li, J.; Illeperuma, W.R.K.; Suo, Z.; Vlassak, J.J.Hybrid hydrogels with extremely high stiffness and toughness. ACS Macro Lett. 2014, 3, 520–523.
105. Myung, D.; Waters, D.; Wiseman, M.; Duhamel, P.-E.; Noolandi, J.; Ta, C.N.; Frank,
C.W.Progress in the development of interpenetrating polymer network hydrogels. Polym.
Adv. Technol. 2008, 19, 647–657.
106. Yin, H.; Akasaki, T.; Sun, T.L.; Nakajima, T.; Kurokawa, T.; Nonoyama, T.; Taira, T.;
Saruwatari, Y.; Ping Gong, J.Double network hydrogels from polyzwitterions: High mechanical strength and excellent anti-biofouling properties. J.Mater. Chem. B 2013, 1, 3685–3693.
107. Sun, J.-Y.; Zhao, X.; Illeperuma, W.R.K.; Chaudhuri, O.; Oh, K.H.; Mooney, D.J.; Vlassak,
J.J.; Suo, Z.Highly stretchable and tough hydrogels. Nature 2012, 489, 133–136. [CrossRef]
[PubMed]
108. Ronken, S., Wirz, D., Daniels, A.U., Kurokawa, T., Gong, J.P., & Arnold, M.P. (2013).
Double-network acrylamide hydrogel compositions adapted to achieve cartilage-like
dynamic stiffness. Biomechanics and modeling in mechanobiology, 12, 243–248. 2.
109. Yasuda, K., Gong, J. P., Katsuyama, Y., Nakayama, A., Tanabe, Y., Kondo, E., … &
Osada, Y. (2005). Biomechanical properties of high-toughness double network hydrogels.
Biomaterials, 26(21), 4468–4475.
110. Hua, Z., Hu, M., Chen, Y., Huang, X., & Gao, L. (2023). Investigation of the Friction
Properties of a New Articial Imitation Cartilage Material: PHEMA/Glycerol Gel. Materials,
16(11), 4023.
111. Nakajima, T., Fukuda, Y., Kurokawa, T., Sakai, T., Chung, U. I., & Gong, J. P. (2013).
Synthesis and fracture process analysis of double network hydrogels with a well-dened rst
network. ACS Macro Letters, 2(6), 518–521.
112. Suzuka, J., Tsuda, M., Wang, L., Kohsaka, S., Kishida, K., Semba, S., … & Tanaka, S. (2021).
Rapid reprogramming of tumor cells into cancer stem cells on double-network hydrogels.
Nature biomedical engineering, 5(8), 914–925.
113. Huang, X., Li, J., Luo, J., Gao, Q., Mao, A., & Li, J. (2021). Research progress on doublenetwork hydrogels. Materials Today Communications, 29, 102757.
114. Means, A.K., Shrode, C.S., Whitney, L. V., Ehrhardt, D. A., & Grunlan, M. A. (2019).
Double network hydrogels that mimic the modulus, strength, and lubricity of cartilage.
Biomacromolecules, 20(5), 2034–2042.
N. Chowdhury etal.

2 Characterization ofHydrogel Properties intheAdvancement ofBio-Tribology
115. Bonyadi, S.Z., Demott, C.J., Grunlan, M.A., & Dunn, A.C. (2021). Cartilage-like tribological performance of charged double network hydrogels. Journal of the Mechanical Behavior
of Biomedical Materials, 114, 104202.
116. Cui, L., Chen, J., Yan, C., & Xiong, D. (2023). Mechanical and Biotribological Properties
of PVA/SB Triple-Network Hydrogel for Biomimetic Articial Cartilage. Journal of Bionic
Engineering, 20(3), 1072–1082.
117. Argun, A., Can, V., Altun, U., & Okay, O. (2014). Nonionic double and triple network hydrogels of high mechanical strength. Macromolecules, 47, 6430–6440.
118. Wang, Y.X., Niu, J.Y., Hou, J., Wang, Z.C., Wu, J.N., Meng, G.H., Liu, Z.H., & Guo,
X. H. (2018). A novel design strategy for triple-network structure hydrogels with highstrength, tough and self-healing properties. Polymer, 135, 16–24.
119. Dai, S.P., Wang, S., Dong, X., Xu, X.Z., Cao, X.T., Chen, Y.W., Zhou, X.S., Ding, J.N., &
Yuan, N.Y. (2019). A transparent, tough self-healing hydrogel based on a dual physically and
chemically triple crosslinked network. Journal of Materials Chemistry C, 7, 14581–14587.
120. Wang, Z.C., Han, X.M., Wang, Y.X., Men, K., Cui, L., Wu, J.N., Meng, G.H., Liu, Z.Y.,
& Guo, X.H. (2019). Facile preparation of low swelling, high strength, self-healing and pHresponsive hydrogels based on the triple-network structure. Frontiers of Materials Science,
13, 54–63.
121. Warren, H., in het Panhuis, M., Spinks, G.M., & Ofcer, D.L. (2018). Thermal actuation of
hydrogels from PNIPAm, alginate, and carbon nanobres. Journal of Polymer Science Part
B: Polymer Physics, 56(1), 46–52.
122. Li, X.F., Qin, H.L., Zhang, X.L., & Guo, Z.G. (2019). Triple-network hydrogels with high
strength, low friction and self-healing by chemical-physical crosslinking. Journal of Colloid
and Interface Science, 556, 549–556.
123. Vishwanath, K., McClure, S.R., & Bonassar, L.J. (2023). Polyacrylamide hydrogel lubricates cartilage after biochemical degradation and mechanical injury. Journal of Orthopaedic
Research®, 41(1), 63–71.
124. Urueña, J.M., Pitenis, A.A., Nixon, R. M., Schulze, K.D., Angelini, T.E., & Sawyer,
W.G. (2015). Mesh size control of polymer uctuation lubrication in gemini hydrogels.
Biotribology, 1, 24–29.
125. Pitenis, A.A., Urueña, J.M., Schulze, K.D., Nixon, R.M., Dunn, A.C., Krick, B.A., … &
Angelini, T.E. (2014). Polymer uctuation lubrication in hydrogel gemini interfaces. Soft
Matter, 10(44), 8955–8962.
126. Simič, R., Yetkin, M., Zhang, K., & Spencer, N.D. (2020). Importance of hydration and surface structure for friction of acrylamide hydrogels. Tribology Letters, 68, 1–12.
127. Pitenis, A. A., Manuel Urueña, J., Cooper, A. C., Angelini, T. E., & Gregory Sawyer,
W. (2016). Superlubricity in Gemini hydrogels. Journal of Tribology, 138(4), 042103.
128. Han, L., Xu, J., Lu, X., Gan, D., Wang, Z., Wang, K., … & Weng, J. (2017). Biohybrid
methacrylated gelatin/polyacrylamide hydrogels for cartilage repair. Journal of Materials
Chemistry B, 5(4), 731–741.
129. Bonyadi, S.Z., & Dunn, A.C. (2020). Brittle or Ductile? Abrasive wear of polyacrylamide
hydrogels reveals load-dependent wear mechanisms. Tribology Letters, 68, 1–14.
130. Shoaib, T., & Espinosa-Marzal, R.M. (2020). Advances in understanding hydrogel lubrication. Colloids and Interfaces, 4(4), 54.
131. Browning, M.B., Wilems, T., Hahn, M., & Cosgriff-Hernandez, E. (2011). Compositional
control of poly (ethylene glycol) hydrogel modulus independent of mesh size. Journal of
Biomedical Materials Research Part A, 98(2), 268–273.
132. Xu, D., Harvey, T., Martínez, J., Begiristain, E., Domínguez-Trujillo, C., Sánchez-Abella,
L., … & Cook, R.B. (2023). Mechanical and tribological characterisations of PEG-based
hydrogel coatings on XLPE surfaces. Wear, 522, 204699.
133. Trieu H, Qutubuddin S.Poly (vinyl alcohol) hydrogels: 2. effects of processing parameters on
structure and properties. Polymer. 1995;36:2531–9
73

74
134. Tamura K, Ike O, Hitomi S, Isobe J, Shimizu Y, Nambu M.A new hydrogel and its medical
application. ASAIO Trans 1986;32: 605–608.
135. Nakamura T, Ueda H, Tsuda T, Li YH, Kiyotani T, Inoue M, Matsumoto K, Sekine T, Yu L,
Hyon SH, Shimizu Y.Long-term implantation test and tumorigenicity of polyvinyl alcohol
hydrogel plates. J Biomed Mater Res 2001;56:289–296.
136. DeMerlis CC, Schoneker DR.Review of the oral toxicity of polyvinyl alcohol (PVA). Food
Chem Toxicol 2003;41:319–326.
137. Wang M, Li Y, Wu J, Xu F, Zuo Y, Jansen JA.In vitro and invivo study of the biocompatibility and biodegradation of hydroxyapatite/poly(vinyl alcohol)/gelatin composite. J Biomed
Mater Res A 2008;85:418–426
138. Bispo VM, Mansur AA, Barbosa-Stancioli EF, Mansur HS.Biocompatibility of nanostructured chitosan/poly(vinyl alcohol) blends chemically crosslinked with genipin for biomedical
applications. J Biomed Nanotechnol 2010;6:166–175.
139. Nečas, D., Yarimitsu, S., Rebenda, D., Shinmori, H., Vrbka, M., Sawae, Y., … & Křupka,
I. (2023). On the replacement of articular cartilage: The friction of PVA hydrogel layer in hip
simulator test. Tribology International, 178, 108100.
140. Zhu, C., Zhang, W., Shao, Z., Wang, Z., Chang, B., Ding, X., & Yang, Y. (2023). Biodegradable
glass ber reinforced PVA hydrogel for cartilage repair: Mechanical properties, ions
release behavior and cell recruitment. Journal of Materials Research and Technology, 23,
154–164. 141.
141. Gong, J. P. (2010). Why are double network hydrogels so tough?. Soft Matter, 6(12),
2583–2590.
142. Ye, Z., Lu, H., Chai, G., Wu, C., Chen, J., & Lv, L. (2023). Glycerol-modied poly (vinyl
alcohol)/poly (ethylene glycol) self-healing hydrogel for articial cartilage. Polymer
International, 72(1), 27–38.
143. Moore, A.C., & Burris, D.L. (2014). An analytical model to predict interstitial lubrication of
cartilage in migrating contact areas. Journal of biomechanics, 47(1), 148–153.
144. Urueña, J.M., McGhee, E. O., Angelini, T. E., Dowson, D., Sawyer, W. G., & Pitenis,
A.A. (2018). Normal load scaling of friction in gemini hydrogels. Biotribology, 13, 30–35.
145. Cellini, F., Gao, Y., & Riedo, E. (2019). Å-Indentation for non-destructive elastic moduli
measurements of supported ultra-hard ultra-thin lms and nanostructures. Scientic reports,
9(1), 4075.
146. Zhang, S., Song, H., Sandfeld, S., Liu, X., & Wei, Y. G. (2019). Discrete Greenwood–
Williamson modeling of rough surface contact accounting for three-dimensional sinusoidal
asperities and asperity interaction. Journal of Tribology, 141(12), 121401.
147. Beheshti, A., & Khonsari, M.M. (2012). Asperity micro-contact models as applied to the
deformation of rough line contact. Tribology International, 52, 61–74.
148. Boettcher, K., Kienle, S., Nachtsheim, J., Burgkart, R., Hugel, T., & Lieleg, O. (2016). The
structure and mechanical properties of articular cartilage are highly resilient towards transient
dehydration. Acta biomaterialia, 29, 180–187.
149. Fujie, H., & Imade, K. (2015). Effects of low tangential permeability in the supercial layer
on the frictional property of articular cartilage. Biosurface and Biotribology, 1(2), 124–129.
150. Pawaskar, S.S., Jin, Z.M., & Fisher, J. (2007). Modelling of uid support inside articular cartilage during sliding. Proceedings of the Institution of Mechanical Engineers, Part J: Journal
of Engineering Tribology, 221(3), 165–174.
151. Zhu, W., Mow, V.C., Koob, T.J., & Eyre, D.R. (1993). Viscoelastic shear properties of articular cartilage and the effects of glycosidase treatments. Journal of Orthopaedic Research,
11(6), 771–781.
152. Tsukeshiba, H., Huang, M., Na, Y.H., Kurokawa, T., Kuwabara, R., Tanaka, Y., … & Gong,
J.P. (2005). Effect of polymer entanglement on the toughening of double network hydrogels.
The Journal of Physical Chemistry B, 109(34), 16304–16309.
153. Hou, J.S., Mow, V.C., Lai, W.M., & Holmes, M.H. (1992). An analysis of the squeeze-lm
lubrication mechanism for articular cartilage. Journal of biomechanics, 25(3), 247–259.
N. Chowdhury etal.

2 Characterization ofHydrogel Properties intheAdvancement ofBio-Tribology
154. Lee, S.Y., Nakagawa, T., & Reddi, A.H. (2008). Induction of chondrogenesis and expression
of supercial zone protein (SZP)/lubricin by mesenchymal progenitors in the infrapatellar fat
pad of the knee joint treated with TGF-β1 and BMP-7. Biochemical and biophysical research
communications, 376(1), 148–153.
155. Schumacher, B.L., Schmidt, T.A., Voegtline, M.S., Chen, A.C., & Sah, R. L. (2005).
Proteoglycan 4 (PRG4) synthesis and immunolocalization in bovine meniscus. Journal of
orthopedic research, 23(3), 562–568.
156. McCutchen, C.W. (1962). The frictional properties of animal joints. Wear, 5(1), 1–17.
157. Schmidt, T. A., & Sah, R. L. (2007). Effect of synovial uid on boundary lubrication of
articular cartilage. Osteoarthritis and cartilage, 15(1), 35–47.
158. McCullen, S. D., Autefage, H., Callanan, A., Gentleman, E., & Stevens, M. M. (2012).
Anisotropic brous scaffolds for articular cartilage regeneration. Tissue Engineering Part A,
18(19–20), 2073–2083.
159. Murphy, W. L., Dennis, R. G., Kileny, J. L., Mooney, D. J. (2002) Salt fusion: An approach
to improve pore interconnectivity within tissue engineering scaffolds. Tissue Engineering
8, 43–52.
160. Bavaresco VP, Zavaglia CAC, Reis MC, Gomes JR.Study on the tribological properties of
pHEMA hydrogels for use in articial articular cartilage. Wear. 2008;265:269–77.
161. Ma R, Xiong D, Miao F, Zhang J, Peng Y.Novel PVP/PVA hydrogels for articular cartilage
replacement. Mater. Sci. Eng., C. 2009;29:1979–83
162. Noguchi, T., Yamamuro, T., Oka, M., Kumar, P., Kotoura, Y., Hyonyt, S. H., & Ikadat,
Y. (1991). Poly (vinyl alcohol) hydrogel as an articial articular cartilage: evaluation of biocompatibility. Journal of Applied Biomaterials, 2(2), 101–107.
163. Yang, F., Zhao, J., Koshut, W. J., Watt, J., Riboh, J.C., Gall, K., & Wiley, B.J. (2020).
A synthetic hydrogel composite with the mechanical behavior and durability of cartilage.
Advanced Functional Materials, 30(36), 2003451.
164. Bonyadi, S.Z., & Dunn, A.C. (2020). Compositional dependence of polyacrylamide hydrogel abrasive wear resistance. ACS Applied Polymer Materials, 2(12), 5444–5451.
165. Han, T., Zhang, S., & Zhang, C. (2022). Unlocking the secrets behind liquid superlubricity: A
state-of-the-art review on phenomena and mechanisms. Friction, 10(8), 1137–1165.
166. Jin, Z.M. (2013). Elastohydrodynamic Lubrication of Natural Synovial Joints. In: Wang,
Q.J., Chung, YW. (eds) Encyclopedia of Tribology. Springer, Boston, MA.
167. Herliana, H., Yusuf, H.Y., Laviana, A., Wandawa, G., & Cahyanto, A. (2023). Characterization
and analysis of chitosan-gelatin composite-based biomaterial effectivity as local hemostatic
agent: a systematic review. Polymers, 15(3), 575.
168. Robinson, J.W., Zhou, Y., Bhattacharya, P., Erck, R., Qu, J., Bays, J. T., & Cosimbescu,
L. (2016). Probing the molecular design of hyper-branched aryl polyesters towards lubricant
applications. Scientic reports, 6(1), 18624.
169. Nonoyama, T., & Gong, J. P. (2015). Double-network hydrogel and its potential biomedical application: A review. Proceedings of the Institution of Mechanical Engineers, Part H:
Journal of Engineering in Medicine, 229(12), 853–863.
170. Yu, Y., Wang, J., Li, Y., Chen, Y., & Cui, W. (2023). Cartilaginous Organoids: Advances,
Applications, and Perspectives. Advanced NanoBiomed Research, 3(1), 2200114.
171. Rahmani Del Bakhshayesh, A., Babaie, S., Taye Nasrabadi, H., Asadi, N., Akbarzadeh, A.,
& Abedelahi, A. (2020). An overview of various treatment strategies, especially tissue engineering for damaged articular cartilage. Articial Cells, Nanomedicine, and Biotechnology,
48(1), 1089–1104.
172. An, H., Liu, Y., Yi, J., Xie, H., Li, C., Wang, X., & Chai, W. (2022). Research progress of cartilage lubrication and biomimetic cartilage lubrication materials. Frontiers in Bioengineering
and Biotechnology, 10, 1012653.
173. Qiu, F., Fan, X., Chen, W., Xu, C., Li, Y., & Xie, R. (2023). Recent Progress in HydrogelBased Synthetic Cartilage: Focus on Lubrication and Load-Bearing Capacities. Gels,
9(2), 144.
75

76
174. Rana, M.M., & De la Hoz Siegler, H. (2021). Tuning the properties of PNIPAm-based hydrogel scaffolds for cartilage tissue engineering. Polymers, 13(18), 3154.
175. Gaaz, T.S., Sulong, A.B., Akhtar, M.N., Kadhum, A.A. H., Mohamad, A.B., & Al-Amiery,
A.A. (2015). Properties and applications of polyvinyl alcohol, halloysite nanotubes and their
nanocomposites. Molecules, 20(12), 22833–22847.
176. Gabler, S., Stamp, J., Koch, T., Seidler, S., Schuller, G., Redl, H., … & Weidisch, R. (2009).
Determination of the viscoelastic properties of hydrogels based on polyethylene glycol
diacrylate (PEG-DA) and human articular cartilage. International Journal of Materials
Engineering Innovation, 1(1), 3–20.
177. Yokoo, T., Hidema, R., & Furukawa, H. (2012). Smart lenses developed with high-strength
and shape memory gels. e-Journal of Surface Science and Nanotechnology, 10, 243–247.
178. Haque, M.A., Kurokawa, T., & Gong, J.P. (2012). Super tough double network hydrogels
and their application as biomaterials. Polymer, 53(9), 1805–1822.
179. Frauenlob, M., Guo, H., Kurokawa, T., & Gong, J.P. (2023). Origin of Surface Charge of
Double Network Hydrogels Prepared by Sequential Polymerization. ACS Macro Letters, 12,
860–865.
180. Kumar A, Datta S, Kalyanasundaram D (2016b) Permeability and effective slip in conned
ows transverse to wall slippage patterns. Phys Fluids 28.
181. Kumar A, Datta S, Kalyanasundaram D (2018b) Liquid Slippage in Conned Flows: Effect
of Periodic Micropatterns of Arbitrary Pitch and Amplitude. J Heat Transfer 140.
182. Kumar A, Gangwar AKS, Kumar A, Meena CS, Singh VP, Dutt N, Prasad A, Gori Y (2022b)
Biomedical study of femur bone fracture and healing. In: Advanced Materials for Biomedical
Applications. CRC Press, pp.235–250
183. Kumar A, Gupta A, Kant R, Akhtar SN, Tiwari N, Ramkumar J, Bhattacharya S (2013)
Optimization of laser machining process for the preparation of photomasks, and its application to microsystems fabrication. J Micro/Nanolithography, MEMS, MOEMS 12.
184. Kumar A, Keerti S, Jain J, Sinha S, Tekumalla S, Gupta M (2018c) Investigations of Wear
Response of Pure Mg and Mg-0.4 Ce-Y2O3/ZnO Nanocomposites Using a Single and
Repeated Scratch Tests. Tribol Trans 61:951–959
185. Kumar A, Panda U (2022) Microuidics-based devices and their role on point-of-care testing.
In: Biosensor Based Advanced Cancer Diagnostics. Elsevier, pp.197–224
186. Kumar A, Parihar A, Panda U, Parihar DS (2022e) Microuidics-based point-of-care testing
(POCT) devices in dealing with waves of COVID-19 pandemic: The emerging solution. ACS
Appl Bio Mater 5:2046–2068
187. Kumar A, Pathak A, Kumar A, Kumar A (2023a) Physics of Laser--Matter Interaction in
Laser-Based Manufacturing. In: Laser-based Technologies for Sustainable Manufacturing.
CRC Press, pp.45–54
188. Kumar A, Sharma AK, Katiyar JK (2023b) State-of-the-Art in Sustainable Machining of
Different Materials Using Nano Minimum Quality Lubrication (NMQL). Lubricants 11:64
189. Kumar A, Shrama AK, Gupta TVK, Katiyar JK (2022f) Inuence of hexagonal boron nitride
additive nanocutting uid on the machining of AA6061-T6 alloy using minimum quality
lubrication. Proc Inst Mech Eng Part E J Process Mech Eng 09544089221110980
190. Leventini SD, Martin-Gutierrez BS, Kumar A, Mittman AS, Kim SM, Martini A (2022) Tactile
Perception of Vellum Quantied by Friction and Surface Roughness. Tribol Lett 70:127
191. Chakraborty, S.; Gupta, A.K.; Roy, D.; Basumallick, A.Studies on Nano-Metal Dispersed
Cu-Cr Matrix Composite. Materials Letters 2019, 257 (September), 126739. https://doi.
org/10.1016/j.matlet.2019.126739.
192. Roy, D.; Gupta, A.K.; Alam, S.; Srikanth, S.; Jha, B.K. Enhancement of Properties of MicroAlloyed Low-Carbon Ni-Added Steel by Thermomechanical Treatment. Journal of Materials
Engineering and Performance 2020. https://doi.org/10.1007/s11665- 020- 05311- w.
193. Chakraborty, S.; Gupta, A.K.; Roy, D.; Basu Mallick, A.Nanomechanical Properties of
Mechanically Alloyed and Spark Plasma Sintered W-Nanoparticulate Dispersed Cu-Nb
Alloys. Materials Letters 2020, 274, 128004. https://doi.org/10.1016/j.matlet.2020.128004.
N. Chowdhury etal.

2 Characterization ofHydrogel Properties intheAdvancement ofBio-Tribology
194. Gupta, A. K.; Mallik, B.; Roy, D.Materials Performance and Characterization Structure
Property Correlation of In Situ Reinforced Al—Based Metal Matrix Composite via Stir
Casting Structure Property Correlation of In Situ Reinforced Al—Based Metal Matrix
Composite via Stir Casting. 2020, 9 (1). https://doi.org/10.1520/MPC20190038.
195. Roy, D.; Pal, S.; Tiwary, C.S.; Gupta, A.K.; Babu, P.N.; Mitra, R.Stable Nanocrystalline
Structure Attainment and Strength Enhancement of Cu Base Alloy Using Bi- Modal
Distributed Tungsten Dispersoids. Philosophical Magazine 2021, 0 (0), 1–21. https://doi.
org/10.1080/14786435.2021.1988173.
196. Roy, D.; Chakraborty, S.; Gupta, A. K.; BasuMallick, A.; Scattergood, R. O.; Koch,
C.C. Synergistic Effect of Nb and Zr Additions on the Structure-Property Relationships of
Nanocrystalline Cu Processed by Mechanical Alloying and Hot Pressing. Journal of Alloys
and Compounds 2021, 854, 157174. https://doi.org/10.1016/j.jallcom.2020.157174.
197. Roy, D.; Chakraborty, S.; Gupta, A.K.; Basu Mallick, A.; Koch, C.C. Synergistic Effect of
Nb and Zr Addition in Thermal Stabilization of Nano-Crystalline Cu Synthesized by Ball
Milling. Materials Letters 2020, 271, 127780. https://doi.org/10.1016/j.matlet.2020.127780.
198. Soumya Mandal, Ashish Kumar Gupta, Elena Echeverria, David N. McIlroy, Jonathan
D. Poplawsky, R. S. Laser-Assisted Nanofabrication of Multielement Complex Oxide.
Materials & Design 2022, 220, 110882. https://doi.org/10.1016/j.matdes.2022.110882.
199. Gupta, A.K.; Gupta, S.; Mandal, S.; Sachan, R.Laser Irradiation-Induced Nanoscale Surface
Transformations in Strontium Titanate. 2022, 1–12.
200. Gupta, A. K.; Gupta, S.; Sachan, R. Laser Irradiation Induced Atomic Structure
Modications in Strontium Titanate. JOM 2022, 74 (1), 143–150. https://doi.org/10.1007/
s11837- 021- 04996- 1.
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
202. Parihar A, Pandita V, Kumar A, Parihar DS, Puranik N, Bajpai T, Khan R (2021) 3D Printing:
Advancement in Biogenerative Engineering to Combat Shortage of Organs and Bioapplicable
Materials. Regen Eng Transl Med 1–27
203. Parmar V, Kumar A, Mani Sankar M, Datta S, Vijaya Prakash G, Mohanty S,
Kalyanasundaram D (2018) Oxidation facilitated antimicrobial ability of laser micro-textured titanium alloy against gram-positive Staphylococcus aureus for biomedical applications. J Laser Appl 30.
204. Parmar V, Kumar A, Prakash GV, Datta S, Kalyanasundaram D (2019) Investigation, modelling and validation of material separation mechanism during ber laser machining of medical
grade titanium alloy Ti6Al4V and stainless steel SS316L.Mech Mater 137.
205. Pathak A, Kumar A, Kumar A, Kumar A (2023) Application of Laser Technology in the
Mechanical and Machine Manufacturing Industry. In: Laser-based Technologies for
Sustainable Manufacturing. CRC Press, pp.107–155
206. Saurabh Gupta Ruchika Saini AKPS (2020) Performance Analysis of Gudgeon Pin of Various
Cross Sections by FEM.Int J Recent Technol Eng 8:4569–4573
207. Shrivastava Prateek SR, Kumar A, others (2020) Investigation of Torsional Rod to Minimize
Vibration in Automobile using ANSYS.In: 2020 1st International Conference on Innovative
Research in Applied Science, Engineering and Technology (IRASET). pp1–6
208. Singh RK, Kumar A, Kant R, Gupta A, Suresh E, Bhattacharya S (2014b) Design and fabrication of 3-dimensional helical structures in polydimethylsiloxane for ow control applications. Microsyst Technol 20:101–111.
209. Vats P, Gajrani KK, Kumar A (2023) Laser-Based Additive Manufacturing. In: Laser-based
Technologies for Sustainable Manufacturing. CRC Press, pp.67–83
210. Gupta, A., Choudhari, A., Kadaka, T., Rayar, P. (2019). Design and Analysis of Vertical
Vacuum Fryer. In: Vasudevan, H., Kottur, V., Raina, A. (eds) Proceedings of International
Conference on Intelligent Manufacturing and Automation. Lecture Notes in Mechanical
Engineering. Springer, Singapore. https://doi.org/10.1007/978- 981- 13- 2490- 1_13
77

78
211. Choudhari, A., Rayar, P., Shimpi, S., Pawar, N., Ambetkar, S. (2023). Design and
Development of Vacuum Frying Machine for the Production of High-Quality Fried Products.
In: Vasudevan, H., Kottur, V.K.N., Raina, A.A. (eds) Proceedings of International Conference
on Intelligent Manufacturing and Automation. Lecture Notes in Mechanical Engineering.
Springer, Singapore.
212. Talkar, S., Choudhari, A., Rayar, P. (2020). Building Envelope Optimization and CostEffective Approach in HVAC to Support Smart Manufacturing. In: Vasudevan, H., Kottur,
V., Raina, A. (eds) Proceedings of International Conference on Intelligent Manufacturing
and Automation. Lecture Notes in Mechanical Engineering. Springer, Singapore. https://doi.
org/10.1007/978- 981- 15- 4485- 9_31
213. A.Choudhari, A.Rane, S.Talkar, P.Rayar, and D.Shukla, ‘Designing and Prototyping for
Conservation and Effective Utilization of Waste Heat from Air Conditioner’, IOP Conference
Series: Materials Science and Engineering, vol. 1104, no. 1, p.012007, Mar. 2021, Doi:
https://doi.org/10.1088/1757- 899X/1104/1/012007
214. Choudhari, A., Talkar, S., Rayar, P., Rane, A. (2020). Design and Manufacturing of
Compact and Portable Smart CNC Machine. In: Vasudevan, H., Kottur, V., Raina,
A. (eds) Proceedings of International Conference on Intelligent Manufacturing and
Automation. Lecture Notes in Mechanical Engineering. Springer, Singapore. https://doi.
org/10.1007/978- 981- 15- 4485- 9_21
https://doi.org/10.1007/978- 981- 19- 7971- 2_50
N. Chowdhury etal.

Chapter 3
Recent Advancements inDeveloping
Nanobiosensors forTreating Inammatory
Diseases ofHuman: AComprehensive
Overview
AnkitaChakraborty , SaubhikMitra , MoytreyChatterjee ,
AbhijitDey , andSuprabhatMukherjee
Abstract Nanobiosensor has been the major advantageous modication 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 efcient
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 inammatory diseases like neurodegenerative diseases, fatty liver diseases, intracellular infections,
etc. Nanobiosensors seem to be the solution for this limitation with higher degree of
sensing efcacy, 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

80
A. Chakraborty et al.
knowledge in improving the efcacy 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 inammatory 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 modied 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 immunodeciency 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 Inammatory…
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
81
Non-communicable diseases (NCDs) signicantly contribute to global burden of
morbidity and nearly 72% of worldwide death [1]. Persistent low-grade inammation with rise in serum pro-inammatory 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 specicity, 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 (specic
for disease condition) with maximum accuracy in minimum time. Biosensors are
generally afnity-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 afnity of biorecognition molecules for their
target allows the biosensor to work effectively. In recent years, apart from the
Соседние файлы в папке Библиотека им академика М.И. Перельмана
