Recent developments in design and functionalization of micro- and nanostructural environmentally-sensitive hydrogels based on N-isopropylacrylamide

Applied Materials Today - Tập 9 - Trang 516-532 - 2017
Marcin Karbarz1, Marcin Mackiewicz1, Klaudia Kaniewska1, Kamil Marcisz1, Zbigniew Stojek1
1Faculty of Chemistry, University of Warsaw, 02-093 Warsaw, Poland

Tài liệu tham khảo

Caló, 2015, Biomedical applications of hydrogels: a review of patents and commercial products, Eur. Polym. J., 65, 252, 10.1016/j.eurpolymj.2014.11.024 Ahmed, 2015, Hydrogel: preparation, characterization, and applications: a review, J. Adv. Res., 6, 105, 10.1016/j.jare.2013.07.006 Ullah, 2015, Classification, processing and application of hydrogels: a review, Mater. Sci. Eng. C, 57, 414, 10.1016/j.msec.2015.07.053 Bawa, 2009, Stimuli-responsive polymers and their applications in drug delivery, Biomed. Mater., 4, 022001, 10.1088/1748-6041/4/2/022001 Tao, 2012, Synthesis of pH-responsive photocrosslinked hyaluronic acid-based hydrogels for drug delivery, J. Polym. Sci. Part A: Polym. Chem., 17, 3507, 10.1002/pola.26159 Romanski, 2012, Polymeric hydrogels modified with ornithine and lysine: sorption and release of metal cations and amino acids, J. Polym. Sci. Part A: Polym. Chem., 50, 542, 10.1002/pola.25063 Barros, 2016, Gelatin-based biodegradable ureteral stents with enhanced mechanical properties, Appl. Mater. Today, 5, 9, 10.1016/j.apmt.2016.07.006 Ma, 2017, High-throughput generation of hyaluronic acid microgels via microfluidics-assisted enzymatic crosslinking and/or Diels–Alder click chemistry for cell encapsulation and delivery, Appl. Mater. Today, 9, 49, 10.1016/j.apmt.2017.01.007 Karbarz, 2010, Influence of polymer network-metal ion complexation on the swelling behaviour of new gels with incorporated α-amino acid groups, Soft Matter, 6, 1336, 10.1039/b920809g Lee, 2016, Biothermal sensing of a torsional artificial muscle, Nanoscale, 8, 3248, 10.1039/C5NR07195J Grafe, 2017, Tetra-sensitive graft copolymer gels as active material of chemomechanical valves, ACS Appl. Mater. Interfaces, 9, 7565, 10.1021/acsami.6b14931 Zhang, 2017, Mobile gates driven by intermolecular hydrogen bonding, Chem. Sel., 2, 279 Cheng, 2011, Glutathione-responsive nano-vehicles as a promising platform for targeted intracellular drug and gene delivery, J. Control. Release, 152, 2, 10.1016/j.jconrel.2011.01.030 Velders, 2017, Hydrogel actuators as responsive instruments for cheap open technology (HARICOT), Appl. Mater. Today, 9, 271, 10.1016/j.apmt.2017.08.001 Backer, 2012, Microfluidic chip with integrated microvalves based on temperature- and ph-responsive hydrogel thin films, Phys. Status Solidi A, 209, 839, 10.1002/pssa.201100763 Tanaka, 1986, Kinetics of phase transition in polymer gels, Physica A, 140, 261, 10.1016/0378-4371(86)90230-X Hirose, 1998, Kinetics of volume phase transition in poly(N-isopropylacrylamide-co-acrilic acid) gels, Macromolecules, 31, 5336, 10.1021/ma980405s Oh, 2013, Molecular thermodynamic analysis for phase transitions of linear and cross-linked poly(N-isopropylacrylamide) in water/2-propanol mixtures, Polymer, 54, 6776, 10.1016/j.polymer.2013.10.026 Tian, 2016, A redox-labile poly(oligo(ethylene glycol)methacrylate) based nanogel with tunable thermosensitivity for drug delivery, Polym. Chem., 7, 1913, 10.1039/C6PY00057F Ida, 2017, Shape and size regulation of gold nanoparticles by poly(N,N-diethylacrylamide) microgels, Chem. Lett., 46, 760, 10.1246/cl.170115 Garnier, 2003, Occupational contact dermatitis from N-(2-(diethylamino)-ethyl)acrylamide, Contact Dermatitis, 48, 343, 10.1034/j.1600-0536.2003.00142.x Geng, 2016, Remarkable humidity-responsive sensor based on poly(N,N-diethylaminoethyl methacrylate)-b-polystyrene block copolymers, Sensor. Actuat. B: Chem., 226, 471, 10.1016/j.snb.2015.12.027 Hu, 2006, Synthesis and characterization of the thermo- and pH-sensitive dendritic polymers based on polyamidoamine dendrimer and poly(N,N-dimethylaminoethyl methacrylate) and study on their controlled drug release behaviour, Acta Polym. Sin., 4, 574 Bian, 2015, One-pot synthesis of redox-labile polymer capsules via emulsion droplet-mediated precipitation polymerization, Chem. Mater., 27, 1262, 10.1021/cm5042315 Kawasaki, 2000, Effect of the introduced charge on the thermal behavior of n-isopropylacrylamide gels in water and NaCl solutions, Langmuir, 16, 3195, 10.1021/la991272m Liu, 2012, Non-coalescence of oppositely charged droplets in pH-sensitive emulsions, Proc. Natl. Acad. Sci. U.S.A., 109, 384, 10.1073/pnas.1019196109 Ogawa, 2003, Preparation and characterization of thermosensitive polyampholyte nanogel, Langmuir, 19, 3178, 10.1021/la0267185 Duncanson, 2012, Microfluidic synthesis of advanced microparticles for encapsulation and controlled release, Lab Chip, 12, 2135, 10.1039/c2lc21164e Tian, 2015, Near-infrared light-responsive nanogels with diselenide-cross-linkers for on-demand degradation and triggered drug release, Part. Part. Syst. Charact., 32, 547, 10.1002/ppsc.201400244 Li, 1993, Synthesis of monodisperse poly(divinylbenzene) microspheres, J. Polym. Sci., Polym. Chem. Ed., 31, 3257, 10.1002/pola.1993.080311313 Li, 2013, Precipitation polymerization for fabrication of complex core–shell hybrid particles and hollow structures, Chem. Soc. Rev., 42, 3628, 10.1039/c3cs35517a Takahashi, 2003, Particle-forming precipitation polymerization under unusual conditions, Prog. Colloid. Polym. Sci., 124, 164 Hu, 2011, Control of Poly(N-isopropylacrylamide) Microgel Network Structure by Precipitation Polymerization near the Lower Critical Solution Temperature, Langmuir, 27, 4142, 10.1021/la200114s Gao, 2003, Cross-linker-free N-isopropylacrylamide gel nanospheres, Langmuir, 19, 5212, 10.1021/la0269762 Meng, 2009, Temperature-programmed synthesis of micron-sized multi-responsive microgels, Colloid. Polym. Sci., 287, 277, 10.1007/s00396-008-1986-8 Nur, 2010, Synthesis and properties of polyelectrolyte microgel particles, Adv. Colloid Interface Sci., 158, 15, 10.1016/j.cis.2009.07.008 Xue, 2017, Shaped stimuli-responsive hydrogel particles: syntheses, properties and biological responses, J. Mater. Chem. B, 5, 9, 10.1039/C6TB02746F Keerl, 2007, Synergistic depression of volume phase transition temperature in copolymer microgels, Colloid Polym. Sci., 285, 471, 10.1007/s00396-006-1605-5 Kudaibergenov, 2012, Amphoteric nano-, micro-, and macrogels, membranes, and thin films, Soft Matter, 8, 9302, 10.1039/c2sm25766a Phua, 2016, Reversible size modulation of aqueous microgels via orthogonal or combined application of thermo- and phototriggers, Langmuir, 32, 3867, 10.1021/acs.langmuir.6b00241 Garcia, 2007, Photo-, thermally, and pH-responsive microgels, Langmuir, 23, 224, 10.1021/la061632n Philippova, 2011, Magnetic polymer beads: recent trends and developments in synthetic design and applications, Eur. Polym. J., 47, 542, 10.1016/j.eurpolymj.2010.11.006 Hu, 2017, Novel multi-responsive polymer magnetic microgels with folate or methyltetrahydrofolate ligand as anticancer drug carriers, RSC Adv., 7, 10333, 10.1039/C6RA27114F Jalili, 2016, Nanoengineered thermoresponsive magnetic hydrogels for biomedical applications, Bioeng. Transl. Med., 1, 297, 10.1002/btm2.10034 Garner, 2008, Electric field enhanced photoluminescence of CdTe quantum dots encapsulated in poly(N-isopropylacrylamide) nano-spheres, Opt. Express, 16, 19410, 10.1364/OE.16.019410 Mackiewicz, 2015, Stable and degradable microgels linked with cystine for storing and environmentally triggered release of drugs, J. Mater. Chem. B, 3, 7262, 10.1039/C5TB00907C Saravanakumar, 2017, Reactive-oxygen-species-responsive drug delivery systems: promises and challenges, Adv. Sci., 4, 10.1002/advs.201600124 Tehrani, 2015, Temperature-invariant aqueous microgels as hosts for biomacromolecules, Biomacromolecules, 16, 3134, 10.1021/acs.biomac.5b00768 Shi, 2013, Poly(N-isopropylacrylamide)–Au hybrid microgels: synthesis, characterization, thermally tunable optical and catalytic properties, Soft Matter, 9, 10966, 10.1039/c3sm52303a Wang, 2013, Self-healing chemistry enables the stable operation of silicon microparticle anodes for high-energy lithium-ion batteries, Nat. Chem., 5, 1042, 10.1038/nchem.1802 Farooqi, 2016, Review on synthesis, properties, characterization, and applications of responsive microgels fabricated with gold nanostructures, Rev. Chem. Eng., 32, 49, 10.1515/revce-2015-0033 Agrawal, 2013, Formation of catalytically active gold–polymer microgel hybrids via a controlled in situ reductive process, J. Mater. Chem. A, 1, 13244, 10.1039/c3ta12370g Carregal-Romero, 2010, Catalysis by Au@pNIPAM nanocomposites: effect of the cross-linking density, Chem. Mater., 22, 3051, 10.1021/cm903261b Kim, 2012, Thermally tunable catalytic and optical properties of gold-hydrogel nanocomposites, Nanotechnology, 23, 275606, 10.1088/0957-4484/23/27/275606 Fernandez-Lopez, 2012, A general LbL strategy for the growth of PNIPAM microgels on Au nanoparticles with arbitrary shapes, Soft Matter, 8, 4165, 10.1039/C1SM06396K Begum, 2016, A review of responsive hybrid microgels fabricated with silver nanoparticles: synthesis, classification, characterization and applications, J. Sol-Gel Sci. Technol., 77, 497, 10.1007/s10971-015-3896-9 Zhang, 2009, Preparation of P(NIPAM-co-AA) microcontainers surface-anchored with magnetic nanoparticles, Langmuir, 25, 8255, 10.1021/la9004467 Chen, 2014, Preparation and characterization of thermosensitive core/shell microgels with carbon microsphere cores, J. Mater. Res., 29, 1153, 10.1557/jmr.2014.92 Mackiewicz, 2014, Environmentally sensitive, quickly responding microgels with lattice channels filled with polyaniline, J. Mater. Chem. B, 2, 1483, 10.1039/c3tb21578d Mackiewicz, 2014, New ampholytic microgels based on N-isopropylacrylamide and α-amino acid: changes in swelling behavior as a function of temperature, pH and divalent cation concentration, RSC Adv., 4, 48905, 10.1039/C4RA08924C Zhou, 2015, Thermosensitive ionic microgels with pH tunable degradation via in situ quaternization cross-linking, Macromolecules, 48, 3130, 10.1021/acs.macromol.5b00482 Backes, 2015, Loading of PNIPAM based microgels with CoFe2O4 nanoparticles and their magnetic response in bulk and at surfaces, J. Phys. Chem. B, 119, 12129, 10.1021/acs.jpcb.5b03778 Schimka, 2017, Photosensitive microgels containing azobenzene surfactants of different charges, Phys. Chem. Chem. Phys., 19, 108, 10.1039/C6CP04555C Zakrevskyy, 2012, Light-controlled reversible manipulation of microgel particle size using azobenzene-containing surfactant, Adv. Funct. Mater., 22, 5000, 10.1002/adfm.201200617 Ren, 2016, Swelling/deswelling self-oscillating of microgels induced by the BZ reaction with Fe(phen)3 catalyst, Macromol. Res., 24, 502, 10.1007/s13233-016-4076-7 Contreras-Cáceres, 2015, Effect of the cross-linking density on the thermoresponsive behavior of hollow PNIPAM microgels, Langmuir, 31, 1142, 10.1021/la504176a Paine, 1990, Dispersion polymerization of styrene in polar solvents. IV. Solvency control of particle size from hydroxypropyl cellulose stabilized polymerizations, J. Polym. Sci. A1, 28, 2485, 10.1002/pola.1990.080280921 Liwinska, 2016, Environmentally sensitive nanohydrogels decorated with a three-strand oligonucleotide helix for controlled loading and prolonged release of intercalators, RSC Adv., 6, 91045, 10.1039/C6RA16592C Liwinska, 2017, A degradable nanogel drug carrier crosslinked with three-oligonucleotide hybrids for two-way drug release in mild and high hyperthermia treatment, J. Mater. Chem. B, 5, 4713, 10.1039/C7TB00092H Glampedakia, 2012, Polyester textile functionalisation throughbincorporation of pH/thermo-responsive microgels. Part I: microgel preparation and characterisation, Colloids Surf. A, 413, 334, 10.1016/j.colsurfa.2012.06.022 Thorne, 2011, Microgel applications and commercial considerations, Colloid Polym. Sci., 289, 625, 10.1007/s00396-010-2369-5 Wu, 2010, Hybrid micro-/nanogels for optical sensing and intracellular imaging, Nano Rev., 1, 5730, 10.3402/nano.v1i0.5730 Zhou, 2015, Switchable glucose-responsive volume phase transition behavior of poly(phenylboronic acid) microgels, Polym. Chem., 6, 8306, 10.1039/C5PY01441G Zhang, 2006, Synthesis and volume phase transitions of glucose-sensitive microgels, Biomacromolecules, 7, 3196, 10.1021/bm060557s Li, 2017, Temperature and glucose dual-responsive carriers bearing poly(N-isopropylacrylamide) and phenylboronic acid for insulin-controlled release: a review, Int. J. Polym. Mater. Polym. Biomater., 66, 577, 10.1080/00914037.2016.1263954 Wang, 2015, Immobilization of carbon dots in molecularly imprinted microgels for optical sensing of glucose at physiological pH, ACS Appl. Mater. Interfaces, 7, 15735, 10.1021/acsami.5b04744 Zhou, 2014, Graphene@poly(phenylboronic acid)s microgels with selectively glucose-responsive volume phase transition behavior at a physiological pH, Macromolecules, 47, 6055, 10.1021/ma501178a Chen, 2013, Synthesis of photoluminescent Au ND-PNIPAM hybrid microgel for the detection of Hg2+, ACS Appl. Mater. Interfaces, 5, 4383, 10.1021/am400628p Welsch, 2010, Microgels as nanoreactors: applications in catalysis. In: A. Pich, W. Richtering (Eds.), Chemical Design of Responsive Microgels, Adv. Polym. Sci., 234, 129, 10.1007/12_2010_71 Aliberti, 2015 Farooqi, 2017, Temperature-responsive hybrid microgels for catalytic applications: a review, Mater. Sci Tech. Ser., 33, 129, 10.1080/02670836.2016.1170396 Liu, 2012, Investigation of Ag nanoparticles loading temperature responsive hybrid microgels and their temperature controlled catalytic activity, Colloids Surf. A, 393, 105, 10.1016/j.colsurfa.2011.11.007 Zhang, 2004, Polymer microgels: reactors for semiconductor, metal, and magnetic nanoparticles, J. Am. Chem. Soc., 126, 7908, 10.1021/ja031523k Casadoa, 2016, Current trends in redox polymers for energy and medicine, Prog. Polym. Sci., 52, 107, 10.1016/j.progpolymsci.2015.08.003 Zhang, 2015, Micro- and nanogels with labile crosslinks – from synthesis to biomedical applications, Chem. Soc. Rev., 44, 1948, 10.1039/C4CS00341A Gaulding, 2012, Reversible inter- and intra-microgel cross-linking using disulfides, Macromolecules, 45, 39, 10.1021/ma202282p Zhang, 2013, Highly stable and degradable multifunctional microgel for self-regulated insulin delivery under physiological conditions, Nanoscale, 5, 6498, 10.1039/c3nr00835e Cui, 2017, Tuning the morphology, network structure, and degradation of thermo-sensitive microgels by controlled addition of degradable cross-linker, Colloid Polym. Sci., 295, 665, 10.1007/s00396-017-4056-2 Zhan, 2015, Thermo/redox/pH-triple sensitive poly(N-isopropylacrylamide-co-acrylic acid) nanogels for anticancer drug delivery, J. Mater. Chem. B, 3, 4221, 10.1039/C5TB00468C Mackiewicz, 2017, Nanohydrogel with N,N′-bis(acryloyl)cystine crosslinker for high drug loading, Int. J. Pharm., 523, 336, 10.1016/j.ijpharm.2017.03.031 Ma, 2017, Advancement of multifunctional hybrid nanogel systems: construction and application in drug co-delivery and imaging technique, Mater. Sci. Eng. C, 71, 1281, 10.1016/j.msec.2016.11.031 Shi, 2014, Thermo-, pH-, and light-responsive poly(N-isopropylacrylamide-comethacrylic acid)-Au hybrid microgels prepared by the in situ reduction method based on Au-thiol chemistry, J. Phys. Chem. B, 118, 7177, 10.1021/jp5027477 Mackiewicz, 2016, An environmentally sensitive three-component hybrid microgel, RSC Adv., 6, 83493, 10.1039/C6RA15048A Han, 2015, Poly(N-isopropylacrylamide)-co-(acrylic acid) microgel/Ag nanoparticle hybrids for the colorimetric sensing of H2O2, Nanoscale, 7, 2784, 10.1039/C4NR06093H Hu, 2013, Poly(N-isopropylacrylamide) microgel-based assemblies, J Polym. Sci. A1, 51, 3004, 10.1002/pola.26702 Yetisen, 2016, Photonic hydrogel sensors, Biotechnol. Adv., 34, 250, 10.1016/j.biotechadv.2015.10.005 Kim, 2004, Hydrogel microparticles as dynamically tunable microlenses, J. Am. Chem. Soc., 126, 9512, 10.1021/ja047274x Kim, 2007, Displacement-induced switching rates of bioresponsive hydrogel microlenses, Chem. Mater., 19, 2527, 10.1021/cm063086p Xia, 2013, Nano-structured smart hydrogels with rapid response and high elasticity, Nat. Commun., 4, 2226, 10.1038/ncomms3226 Yue, 2014, Temperature-responsive microgel films as reversible carbon dioxide absorbents in wet environment, Angew. Chem., 126, 2692, 10.1002/ange.201309758 Sorrell, 2011, A “paint-on” protocol for the facile assembly of uniform microgel coatings for color tunable etalon fabrication, ACS Appl. Mater. Interfaces, 3, 1140, 10.1021/am1012722 Hu, 2012, Color modulation of spatially isolated regions on a single poly(N-isopropylacrylamide) microgel based etalon, J. Mater. Chem., 22, 8199, 10.1039/c2jm31125a Sorrell, 2011, Color tunable poly(N-isopropylacrylamide)-co-acrylic acid microgel–Au hybrid assemblies, Adv. Funct. Mater., 21, 425, 10.1002/adfm.201001714 Xu, 2014, Electrochemically color tunable poly(N-isopropylacrylamide) microgel-based etalons, J. Mater. Chem. C, 2, 3873, 10.1039/C4TC00271G Zhang, 2016, Optical devices constructed from ferrocene-modified microgels for H2O2 sensing, ACS Appl. Mater. Interfaces, 8, 27264, 10.1021/acsami.6b11462 Hu, 2013, Controlling the response of color tunable poly(N-isopropylacrylamide) microgel-based etalons with hysteresis, Chem. Commun., 49, 2649, 10.1039/c3cc00290j Zhang, 2015, Lipase-modified pH-responsive microgel-based optical device for triglyceride sensing, Chem. Commun., 51, 9726, 10.1039/C5CC02853A Zhang, 2014, Optical devices constructed from multiresponsive microgels, Angew. Chem., Int. Ed., 53, 4827, 10.1002/anie.201402641 Zhang, 2016, Biological imaging and sensing with multiresponsive microgels, Chem. Mater., 28, 259, 10.1021/acs.chemmater.5b04028 Zhang, 2015, CO2-switchable poly(N-isopropylacrylamide) microgel-based etalons, J. Mater. Chem. C, 3, 495, 10.1039/C4TC02600D Islam, 2013, Label-free detection of low protein concentration in solution using a novel colorimetric assay, Biosens. Bioelectron., 49, 133, 10.1016/j.bios.2013.05.011 Islam, 2014, A novel label-free colorimetric assay for DNA concentration in solution, Anal. Chim. Acta, 843, 83, 10.1016/j.aca.2014.06.038 Ye, 2016, Glucose-responsive microgels based on apo-enzyme recognition, Polym. Chem., 7, 2847, 10.1039/C6PY00179C Yang, 2016, Controllable switching of enzyme activity by poly(N-isopropylacrylamide)-based microgels through mineralization of calcium carbonate in high pressure CO2, Clean Soil Air Water, 44, 189, 10.1002/clen.201300967 Welsch, 2012, Core–shell microgels as “smart” carriers for enzymes, Soft Matter, 8, 1428, 10.1039/C1SM06894F Schachschal, 2011, Encapsulation of enzymes in microgels by polymerization/cross-linking in aqueous droplets, Colloid. Polym. Sci., 289, 693, 10.1007/s00396-011-2392-1 Lai, 2016, Covalent immobilization of trypsin onto thermo-sensitive poly(N-isopropylacrylamide-co-acrylic acid) microspheres with high activity and stability, J. Appl. Polym. Sci., 133, 43343, 10.1002/app.43343 Sigolaeva, 2014, Dual-stimuli-sensitive microgels as a tool for stimulated spongelike adsorption of biomaterials for biosensor applications, Biomacromolecules, 15, 3735, 10.1021/bm5010349 Sigolaeva, 2015, Engineering systems with spatially separated enzymes via dual-stimuli-sensitive properties of microgels, Langmuir, 31, 13029, 10.1021/acs.langmuir.5b03497 Wei, 2015, Investigation of cell behaviors on thermoresponsive PNIPAM microgel films, Colloids Surf. B: Biointerfaces, 132, 202, 10.1016/j.colsurfb.2015.05.011 Xia, 2016, Patterned thermoresponsive microgel surfaces to control cell detachment, Biomacromolecules, 17, 572, 10.1021/acs.biomac.5b01507 Xia, 2017, Fabrication of patterned thermoresponsive microgel strips on cell-adherent background and their application for cell sheet recovery, ACS Appl. Mater. Interfaces, 9, 1255, 10.1021/acsami.6b12762 Xia, 2012, Controllable stabilization of poly(N-Isopropylacrylamide)-based microgel films through biomimetic mineralization of calcium carbonate, Biomacromolecules, 13, 2299, 10.1021/bm300539f Burek, 2017, Thermoresponsive microgels containing trehalose as soft matrices for 3D cell culture, Biomater. Sci., 5, 234, 10.1039/C6BM00624H Dai, 2016, Effects of culture substrate made of poly(N-isopropylacrylamide-co-acrylic acid) microgels on osteogenic differentiation of mesenchymal stem cells, Molecules, 21, 1192, 10.3390/molecules21091192 Schmidt, 2010, Adhesion and mechanical properties of PNIPAM microgel films and their potential use as switchable cell culture substrates, Adv. Funct. Mater., 20, 3235, 10.1002/adfm.201000730 Tsai, 2013, Two dimensional patterns of poly(N-isopropylacrylamide) microgels to spatially control fibroblast adhesion and temperature-responsive detachment, Langmuir, 29, 12183, 10.1021/la400971g Xia, 2013, Thermoresponsive microgel films for harvesting cells and cell sheets, Biomacromolecules, 14, 3615, 10.1021/bm4009765 Liang, 2011, Triply switchable bioelectrocatalysis based on poly(N-isopropylacrylamide) hydrogel films with immobilized glucose oxidase, Electrochim. Acta, 56, 5166, 10.1016/j.electacta.2011.03.052 Yao, 2011, Triply responsive films in bioelectrocatalysis with a binary architecture: combined layer-by-layer assembly and hydrogel polymerization, J. Phys. Chem. B, 115, 6691, 10.1021/jp200397u Janovák, 2010, Optical properties and electric conductivity of gold nanoparticle-containing, hydrogel-based thin layer composite films obtained by photopolymerization, Appl. Surf. Sci., 256, 2809, 10.1016/j.apsusc.2009.11.032 Zhang, 2003, Detection of CrO42− using a hydrogel swelling microcantilever sensor, Anal. Chem., 15, 4773, 10.1021/ac0343026 Richter, 2004, Characterization of a microgravimetric sensor based on pH sensitive hydrogels, Sens. Actuators, A 99, 579, 10.1016/j.snb.2004.01.011 Karbarz, 2005, One dimensional volume-phase transition of N-isopropylacrylamide gels on the surface of gold electrodes, Electroanalysis, 17, 1396, 10.1002/elan.200503294 Reuber, 2006, Formation of surface-attached responsive gel layers via electrochemically induced free-radical polymerization, Langmuir, 22, 3362, 10.1021/la053454o Kaniewska, 2013, Oxidation of ferrocenemethanol grafted to a hydrogel network through cysteine for triggering volume phase transition, RSC Adv., 3, 23816, 10.1039/c3ra42405g Matsukuma, 2006, Stimuli-responsive properties of N-isopropylacrylamide-based ultrathin hydrogel films prepared by photo-cross-linking, Langmuir, 22, 5911, 10.1021/la060438y Tokarev, 2007, An electrochemical gate based on a stimuli-responsive membrane associated with an electrode surface, J. Phys. Chem. B, 111, 12141, 10.1021/jp0757208 Katz, 2016, Modified electrodes and electrochemical systems switchable by temperature changes, Electroanalysis, 28, 1916, 10.1002/elan.201600235 Kaniewska, 2016, Electrochemical examination of the structure of thin hydrogel layers anchored to regular and microelectrode surfaces, J. Phys. Chem. B, 120, 9540, 10.1021/acs.jpcb.6b06515 García, 2012, Molecular transport in thin thermoresponsive poly(N-isopropylacrylamide) brushes with varying grafting density, J. Phys. Chem. C, 116, 13944, 10.1021/jp301621y Karbarz, 2013, Electrochemical properties of micro- and regular electrodes modified with environmentally sensitive poly(N-isopropylacrylamide) gel via electrochemically induced free-radical polymerization, Electroanalysis, 25, 875, 10.1002/elan.201200304 Katz, 2013, Electrode interfaces switchable by physical and chemical signals for biosensing, biofuel, and biocomputing applications, Anal. Bioanal. Chem., 405, 3659, 10.1007/s00216-012-6525-2 Marcisz, 2016, Quartz crystal microbalance electrode modified with thermoresponsive crosslinked and non-crosslinked N-isopropylacrylamide polymers. Response to changes in temperature, J. Solid State Electrochem., 20, 3263, 10.1007/s10008-016-3231-6 Heinz, 2008, Poly(N-isopropylacrylamide) grafted on plasma-activated poly(ethylene oxide): thermal response and interaction with proteins, Langmuir, 24, 6166, 10.1021/la800575f Kaniewska, 2015, Electrochemical attachment of thermo- and pH sensitive interpenetrating-polymers-network hydrogel to conducting surface, Electrochim. Acta, 179, 372, 10.1016/j.electacta.2015.02.196 Zhou, 2006, Temperature, ionic strength and ph induced electrochemical switching of smart polymer interfaces, Chem. Commun., 46, 4820, 10.1039/b611405a Kaniewska, 2017, Mass transport affected by electrostatic barrier in ionized gel layers attached to microelectrode surface, Electrochem. Commun., 81, 24, 10.1016/j.elecom.2017.05.019 MacVittie, 2013, Electrochemical system with memimpedance properties, J. Phys. Chem. C, 117, 24943, 10.1021/jp409257v Liu, 2012, pH-, sugar-, and temperature-sensitive electrochemical switch amplified by enzymatic reaction and controlled by logic gates based on semi-interpenetrating polymer network, J. Phys. Chem. B, 116, 1700, 10.1021/jp209788g Zhou, 2007, Poly(N-isopropylacrylamide) interfaces with dissimilar thermo-responsive behavior for controlling ion permeation and immobilization, Adv. Funct. Mater., 17, 3377, 10.1002/adfm.200700286 Zhang, 2012, An ON–OFF biosensor based on multistimuli-responsive polymer films with a binary architecture and bioelectrocatalysis, Sens. Actuators, B 173, 367, 10.1016/j.snb.2012.07.016 Nagel, 2007, Enzyme activity control by responsive redoxpolymers, Langmuir, 23, 6807, 10.1021/la700331w Klis, 2009, Thermoresponsive poly(N-isopropylacrylamide) gel for immobilization of laccase on indium tin oxide electrodes, J. Phys. Chem. B, 30, 6062, 10.1021/jp8094159 Şenel, 2010, Construction of a novel glucose biosensor based on covalent immobilization of glucose oxidase on poly(glycidylmethacrylate-co-vinylferrocene), Electroanalysis, 22, 1765, 10.1002/elan.200900644 Bunte, 2010, Enzyme containing redox polymer networks for biosensors or biofuel cells: a photochemical approach, Langmuir, 26, 6019, 10.1021/la9037183 Shi, 2010, Electrochemically induced free-radical polymerization for the fabrication of amperometric glucose biosensor, Electroanalysis, 22, 2366, 10.1002/elan.201000165 Yao, 2014, Thermo- and sulfate-controllable bioelectrocatalysis of glucose based on horseradish peroxidase and glucose oxidase embedded in poly(N,N-diaethylacrylamide) hydrogel films, Appl. Biochem. Biotechnol., 173, 2005, 10.1007/s12010-014-0987-y Yao, 2016, Triple-switchable biosensors and an AND logic gate based on binary assembly of weak polyelectrolyte multilayers and hydrogel films, J. Electrochem. Soc., 163, H1104, 10.1149/2.0081614jes Song, 2010, “On–Off” switchable bioelectrocatalysis synergistically controlled by temperature and sodium sulfate concentration based on poly(N-isopropylacrylamide) films, J. Phys. Chem. B, 114, 5940, 10.1021/jp1009753 Chen, 2015, An “ON–OFF” switchable power output of enzymatic biofuel cell controlled by thermal-sensitive polymer, Biosens. Bioelectron., 74, 142, 10.1016/j.bios.2015.06.028 MacVittie, 2014, Self-powered electrochemical memristor based on a biofuel cell – towards memristors integrated with biocomputing system, Chem. Commun., 50, 4816, 10.1039/c4cc01540a Halamek, 2010, Self-powered biomolecular keypad lock security system based on a biofuel cell, Chem. Commun., 46, 2405, 10.1039/b925484f Wang, 2015, Multiple-stimuli responsive bioelectrocatalysis based on reduced graphene oxide/poly(N-isopropylacrylamide) composite films and its application in the fabrication of logic gates, ACS Appl. Mater. Interfaces, 7, 5168, 10.1021/am5075002 Zhou, 2016, Temperature-responsive amperometric H2O2 biosensor using a composite film consisting of poly(N-isopropylacrylamide)-b-poly(2-acrylamidoethyl benzoate), graphene oxide and hemoglobin, Microchim. Acta, 183, 2501, 10.1007/s00604-016-1893-5 Zhou, 2016, Reversible switched detection of dihydroxybenzenes using a temperature-sensitive electrochemical sensing film, Electrochim. Acta, 192, 158, 10.1016/j.electacta.2016.01.183