Natural based reusable materials for microfluidic substrates: The silk road towards sustainable portable analytical systems

Applied Materials Today - Tập 28 - Trang 101507 - 2022
Ricardo Brito-Pereira1,2,3,4, André S. Macedo3,4,5, Clarisse Ribeiro3,4,6, Vanessa F. Cardoso1,2,3,4, Senentxu Lanceros-Méndez3,4,7
1CMEMS-UMinho, University of Minho, 4800-058, Guimarães, Portugal
2LABBELS –Associate Laboratory, Braga/Guimarães, Portugal
3CF-UM-UP, Centro de Física das Universidades do Minho e Porto, Universidade do Minho, Campus de Gualtar, 4710-057 Braga, Portugal
4LaPMET - Laboratory of Physics for Materials and Emergent Technologies, Universidade do Minho, 4710-057, Portugal
5IB-S, Institute of Science and Innovation for Bio-Sustainability, Universidade do Minho, Campus de Gualtar, 4710-057 Braga, Portugal
6CEB – Centro de Engenharia Biológica, Universidade do Minho, Campus de Gualtar, 4710-057 Braga, Portugal
7IKERBASQUE, Basque Foundation for Science, 48009 Bilbao, Spain

Tài liệu tham khảo

Tönnies, 2019, Projected number of people with diagnosed Type 2 diabetes in Germany in 2040, Diabet. Med., 36, 1217, 10.1111/dme.13902 Van Der Schaft, 2017, The association between serum uric acid and the incidence of prediabetes and type 2 diabetes mellitus: the Rotterdam Study, PLoS One, 12, 10.1371/journal.pone.0179482 Virdis, 2020, Identification of the Uric Acid Thresholds Predicting an Increased Total and Cardiovascular Mortality over 20 Years, Hypertension, 302, 10.1161/HYPERTENSIONAHA.119.13643 De Oliveira, 2012, High plasma uric acid concentration: causes and consequences, Diabetol. Metab. Syndr., 4 Gatta, 2012, Hypoalbuminemia, Intern. Emerg. Med., 7, 193, 10.1007/s11739-012-0802-0 Soeters, 2019, Hypoalbuminemia: pathogenesis and clinical significance, J. Parenter. Enter. Nutr., 43, 181, 10.1002/jpen.1451 Zhao, 2021, A portable analytical system for rapid on-site determination of total nitrogen in water, Water Res., 202, 10.1016/j.watres.2021.117410 Weng, 2017, Ensuring food safety: quality monitoring using microfluidics, Trends Food Sci. Technol., 65, 10, 10.1016/j.tifs.2017.04.015 Sanati, 2022, Recent advancement in electrode materials and fabrication, microfluidic designs, and self-powered systems for wearable non-invasive electrochemical glucose monitoring, Appl. Mater. Today., 26 Martinez, 2007, Patterned Paper as a Platform for Inexpensive, Low-Volume, Portable Bioassays, Angew. Chemie., 119, 1340, 10.1002/ange.200603817 Li, 2016, Paper-based surfaces with extreme wettabilities for novel, open-channel microfluidic devices, Adv. Funct. Mater., 26, 6121, 10.1002/adfm.201601821 Lang, 2019, Paper-based electrochromic devices enabled by nanocellulose-coated substrates, Adv. Funct. Mater., 29 Tang, 2022, Nitrocellulose Membrane for Paper-based Biosensor, Appl. Mater. Today., 26 Bruzewicz, 2008, Low-cost printing of poly(dimethylsiloxane) barriers to define microchannels in paper, Anal. Chem., 80, 3387, 10.1021/ac702605a Li, 2010, Fabrication of paper-based microfluidic sensors by printing, Colloids Surf. B Biointerfaces, 76, 564, 10.1016/j.colsurfb.2009.12.023 Dungchai, 2011, A low-cost, simple, and rapid fabrication method for paper-based microfluidics using wax screen-printing, Analyst, 136, 77, 10.1039/C0AN00406E Preechakasedkit, 2018, Development of an automated wax-printed paper-based lateral flow device for alpha-fetoprotein enzyme-linked immunosorbent assay, Biosens. Bioelectron., 102, 27, 10.1016/j.bios.2017.10.051 Dixon, 2017, Printed Microfluidics, Adv. Funct. Mater., 27 Benhabib, 2013 Vashist, 2015, Emerging Technologies for Next-Generation Point-of-Care Testing, Trends Biotechnol., 33, 692, 10.1016/j.tibtech.2015.09.001 Mao, 2015, Disposable dry-reagent cotton thread-based point-of-care diagnosis devices for protein and nucleic acid test, Biosens. Bioelectron., 65, 390, 10.1016/j.bios.2014.10.053 Pimentel, 2020, Tailoring electrospun Poly(l -lactic acid) Nanofibers as Substrates for Microfluidic applications, ACS Appl. Mater. Interfaces., 12, 60, 10.1021/acsami.9b12461 Brito-Pereira, 2021, Fluorinated polymer membranes as advanced substrates for portable analytical systems and their proof of concept for colorimetric bioassays, ACS Appl. Mater. Interfaces., 13, 18065, 10.1021/acsami.1c00227 P. Bajpai, Green chemistry and sustainability in pulp and paper industry, 2015. https://doi.org/10.1007/978-3-319-18744-0. van Oel, 2012, Towards quantification of the water footprint of paper: a first estimate of its consumptive component, Water Resour. Manag., 26, 733, 10.1007/s11269-011-9942-7 Olivetti, 2018, Toward a sustainable materials system, Science (80-.), 360, 1396, 10.1126/science.aat6821 Minoglou, 2017, Healthcare waste generation worldwide and its dependence on socio-economic and environmental factors, Sustain, 9 Kaiser, 2001, Solutions to health care waste: life-cycle thinking and “green” purchasing, Environ. Health Perspect., 109, 205, 10.1289/ehp.01109205 Stahel, 2016, The circular economy, Nature, 531, 435, 10.1038/531435a Seo, 2018, Calcium-modified silk as a biocompatible and strong adhesive for epidermal electronics, Adv. Funct. Mater., 28 Um, 2001, Structural characteristics and properties of the regenerated silk fibroin prepared from formic acid, Int. J. Biol. Macromol., 29, 91, 10.1016/S0141-8130(01)00159-3 Liu, 2018, Print-to-pattern”: silk-based water lithography, Small, 14 Motta, 2002, Regenerated silk fibroin films: thermal and dynamic mechanical analysis, Macromol. Chem. Phys., 203, 1658, 10.1002/1521-3935(200207)203:10/11<1658::AID-MACP1658>3.0.CO;2-3 Tien, 2013, Silk as a multifunctional biomaterial substrate for reduced glial scarring around brain-penetrating electrodes, Adv. Funct. Mater., 23, 3185, 10.1002/adfm.201203716 Rockwood, 2011, Materials fabrication from Bombyx mori silk fibroin, Nat. Protoc., 6, 1612, 10.1038/nprot.2011.379 Kundu, 2013, Silk fibroin biomaterials for tissue regenerations, Adv. Drug Deliv. Rev., 65, 457, 10.1016/j.addr.2012.09.043 Gao, 2018, A silk fibroin based green nano-filter for air filtration, RSC Adv., 8, 8181, 10.1039/C7RA12879G Liu, 2017, Flexible 34strate, IEEE Photonics J, 9 Kim, 2010, Dissolvable films of silk fibroin for ultrathin conformal bio-integrated electronics, Nat. Mater., 9, 511, 10.1038/nmat2745 Liu, 2017, Flexible, highly sensitive pressure sensor with a wide range based on graphene-silk network structure, Appl. Phys. Lett., 110 You, 2014, Graphene-based field effect transistor enzymatic glucose biosensor using silk protein for enzyme immobilization and device substrate, Sensors Actuators, B Chem, 202, 1357, 10.1016/j.snb.2014.04.079 Mannoor, 2012, Graphene-based wireless bacteria detection on tooth enamel, Nat. Commun., 3 Xu, 2019, Flexible biosensors for the impedimetric detection of protein targets using silk-conductive polymer biocomposites, ACS Sensors, 4, 1040, 10.1021/acssensors.9b00230 Choudhary, 2015, Woven electrochemical fabric-based test sensors (WEFTS): a new class of multiplexed electrochemical sensors, Lab Chip, 15, 2064, 10.1039/C5LC00041F Altman, 2003, Silk-based biomaterials, Biomaterials, 24, 401, 10.1016/S0142-9612(02)00353-8 Horrocks, 2013, The silkmoth cocoon as humidity trap and waterproof barrier, Comp. Biochem. Physiol. - A Mol. Integr. Physiol., 164, 645, 10.1016/j.cbpa.2013.01.023 Tulachan, 2014, Electricity from the silk cocoon membrane, Sci. Rep., 4 Wang, 2020, Silk cocoon membrane-based immunosensing assay for red blood cell antigen typing, Sensors Actuators, B Chem, 320 Doshi, 1995, Electrospinning process and applications of electrospun fibers, J. Electrostat., 35, 151, 10.1016/0304-3886(95)00041-8 Farokhi, 2020, Functionalized silk fibroin nanofibers as drug carriers: advantages and challenges, J. Control. Rel., 321, 324, 10.1016/j.jconrel.2020.02.022 Wang, 2017, Improving antibacterial activity and biocompatibility of bioinspired electrospinning silk fibroin nanofibers modified by graphene oxide, ACS Omega, 3, 406, 10.1021/acsomega.7b01210 Zhao, 2020, Solvent-free fabrication of carbon nanotube/silk fibroin electrospun matrices for enhancing cardiomyocyte functionalities, ACS Biomater. Sci. Eng., 6, 1630, 10.1021/acsbiomaterials.9b01682 Lai, 2006, Study on hydrophilicity of polymer surfaces improved by plasma treatment, Appl. Surf. Sci., 252, 3375, 10.1016/j.apsusc.2005.05.038 Jeong, 2009, Plasma-treated silk fibroin nanofibers for skin regeneration, Int. J. Biol. Macromol., 44, 222, 10.1016/j.ijbiomac.2008.12.008 Correia, 2016, Superhydrophilic poly(l-lactic acid) electrospun membranes for biomedical applications obtained by argon and oxygen plasma treatment, Appl. Surf. Sci., 371, 74, 10.1016/j.apsusc.2016.02.121 Brito-Pereira, 2018, Silk fibroin-magnetic hybrid composite electrospun fibers for tissue engineering applications, Compos. Part B Eng., 141, 70, 10.1016/j.compositesb.2017.12.046 Correia, 2015, Influence of oxygen plasma treatment parameters on poly(vinylidene fluoride) electrospun fiber mats wettability, Prog. Org. Coatings., 85, 151, 10.1016/j.porgcoat.2015.03.019 Ishii, 2008, A new electrospinning method to control the number and a diameter of uniaxially aligned polymer fibers, Mater. Lett., 62, 3370, 10.1016/j.matlet.2008.03.038 Unalan, 2016, Biocompatibility of plasma-treated poly(3-hydroxybutyrate-co-3-hydroxyvalerate) nanofiber mats modified by silk fibroin for bone tissue regeneration, Mater. Sci. Eng. C., 68, 842, 10.1016/j.msec.2016.07.054 Pereira, 2020, Plasma-treated Bombyx mori cocoon separators for high-performance and sustainable lithium-ion batteries, Mater. Today Sustain., 9 Maciel, 2018, Relation between fiber orientation and mechanical properties of nano-engineered poly(vinylidene fluoride) electrospun composite fiber mats, Compos. Part B Eng., 139, 146, 10.1016/j.compositesb.2017.11.065 Ki, 2007, The effect of residual silk sericin on the structure and mechanical property of regenerated silk filament, Int. J. Biol. Macromol., 41, 346, 10.1016/j.ijbiomac.2007.05.005 Gupta, 2014, Extraction and characterization of silk sericin, Indian J. Fibre Text. Res., 39, 364 Reizabal, 2020, Silk fibroin magnetoactive nanocomposite films and membranes for dynamic bone tissue engineering strategies, Materialia, 12, 10.1016/j.mtla.2020.100709 Deveoglu, 2021, Examination of dyeing properties on silk of some flavonoids by spectroscopic techniques, J. Nat. Fibers., 18, 238, 10.1080/15440478.2019.1616650 Iizuka, 1996, Size dependency of the physical properties of Bombyx silk, J. Sericultural Sci. Japan., 65, 102 Mazzi, 2014, Comparative thermal analysis of Eri, Mori, Muga, and Tussar silk cocoons and fibroin fibers, J. Therm. Anal. Calorim., 116, 1337, 10.1007/s10973-013-3631-0 Cebe, 2017, Silk I and Silk II studied by fast scanning calorimetry, Acta Biomater, 55, 323, 10.1016/j.actbio.2017.04.001 Agarwal, 1997, Effect of moisture absorption on the thermal properties of Bombyx mori silk fibroin films, J. Appl. Polym. Sci., 63, 401, 10.1002/(SICI)1097-4628(19970118)63:3<401::AID-APP17>3.0.CO;2-2 Tian, 2013, Patterning of controllable surface wettability for printing techniques, Chem. Soc. Rev., 42, 5184, 10.1039/c3cs35501b Szewczyk, 2019, Roughness and fiber fraction dominated wetting of electrospun fiber-based porous meshes, Polymers (Basel), 11