Reducing Unspecific Protein Adsorption in Microfluidic Papers Using Fiber-Attached Polymer Hydrogels
暂无分享,去创建一个
Jürgen Rühe | Thomas Brandstetter | Markus Biesalski | Tobias Meckel | Alexander Ritter von Stockert | Anna Luongo | Markus Langhans | J. Rühe | T. Meckel | T. Brandstetter | M. Biesalski | M. Langhans | A. Stockert | Annamaria Luongo
[1] T. Meckel,et al. Cross-Linking Cellulosic Fibers with Photoreactive Polymers: Visualization with Confocal Raman and Fluorescence Microscopy. , 2015, Biomacromolecules.
[2] K. Ruel,et al. Crystalline and amorphous cellulose in the secondary walls of Arabidopsis. , 2012, Plant science : an international journal of experimental plant biology.
[3] O. E. El Seoud,et al. Cellulose swelling by protic solvents: which properties of the biopolymer and the solvent matter? , 2008 .
[4] Paul Yager,et al. Sensitive Protein Detection and Quantification in Paper-Based Microfluidics for the Point of Care. , 2017, Methods in enzymology.
[5] J. Rühe,et al. Swelling Behavior of Thin, Surface-Attached Polymer Networks , 2004 .
[6] ティンゲイ ケヴィン,et al. Medical device lubricious coating , 2002 .
[7] C. Berli,et al. Precise capillary flow for paper-based viscometry , 2016 .
[8] D. Perez-Morga,et al. Atmospheric plasma synthesized PEG coatings: non-fouling biomaterials showing protein and cell repulsion , 2014 .
[9] Minseok S Kim,et al. Recent Advances of Fluid Manipulation Technologies in Microfluidic Paper-Based Analytical Devices (μPADs) toward Multi-Step Assays , 2020, Micromachines.
[10] G. Whitesides,et al. Diagnostics for the developing world: microfluidic paper-based analytical devices. , 2010, Analytical chemistry.
[11] J. Comer,et al. Semiquantitative Specific Test Paper for Glucose in Urine , 1956 .
[12] J. Cannon,et al. Different blocking agents cause variation in the immunologic detection of proteins transferred to nitrocellulose membranes. , 1985, Journal of immunological methods.
[13] Cathleen J. McMahon,et al. Advances in Paper-Based Analytical Devices. , 2020, Annual review of analytical chemistry.
[14] T. Vo‐Dinh,et al. Applications of Microfluidic Systems in Biology and Medicine , 2019, Bioanalysis.
[15] Robert Pelton,et al. Bioactive paper provides a low-cost platform for diagnostics , 2009, TrAC Trends in Analytical Chemistry.
[16] C. Zukoski,et al. Effects of polyethylene glycol on protein interactions , 2000 .
[17] J. Rühe,et al. Protein-resistant polymer surfaces , 2012 .
[18] M. Biesalski,et al. Tailoring the Retention of Charged Model Compounds in Polymer Functionalized Paper‐Based Microfluidic Devices , 2017 .
[19] J. Justin Gooding,et al. Recent Advances in Paper-Based Sensors , 2012, Sensors.
[20] J. Sportsman,et al. Improved technique utilizing nonfat dry milk for analysis of proteins and nucleic acids transferred to nitrocellulose , 1984 .
[21] C. Sicard,et al. Poly(oligoethylene glycol methacrylate) dip-coating: turning cellulose paper into a protein-repellent platform for biosensors. , 2014, Journal of the American Chemical Society.
[22] Fang Cheng,et al. Biofunctional paper via the covalent modification of cellulose. , 2012, Langmuir : the ACS journal of surfaces and colloids.
[23] G. Whitesides,et al. Understanding wax printing: a simple micropatterning process for paper-based microfluidics. , 2009, Analytical chemistry.
[24] J. Rühe,et al. Influence of the molecular structure of surface-attached poly(N-alkyl acrylamide) coatings on the interaction of surfaces with proteins, cells and blood platelets. , 2013, Macromolecular bioscience.
[25] Accessibility of fiber surface sites for polymeric additives determines dry and wet tensile strength of paper sheets , 2021, Cellulose.
[26] C. Henry,et al. Emerging applications of paper-based analytical devices for drug analysis: A review. , 2020, Analytica chimica acta.
[27] H. Kleebe,et al. Enhancing the wet strength of lignocellulosic fibrous networks using photo-crosslinkable polymers , 2015, Cellulose.
[28] Daniel Citterio,et al. Toward practical application of paper-based microfluidics for medical diagnostics: state-of-the-art and challenges. , 2017, Lab on a chip.
[29] C. Baggiani,et al. Ten Years of Lateral Flow Immunoassay Technique Applications: Trends, Challenges and Future Perspectives , 2021, Italian National Conference on Sensors.
[30] Ali Kemal Yetisen,et al. Paper-based microfluidic point-of-care diagnostic devices. , 2013, Lab on a chip.
[31] Samuel Schabel,et al. Photo-attaching functional polymers to cellulose fibers for the design of chemically modified paper , 2013, Cellulose.
[32] A. Böhm,et al. Engineering microfluidic papers: effect of fiber source and paper sheet properties on capillary-driven fluid flow , 2014 .
[33] A. Böhm,et al. Paper-based microfluidic devices: A complex low-cost material in high-tech applications , 2017 .
[34] K. Kleinschek,et al. The sorption behaviour of cellulose fibres , 2001 .
[35] Dan Du,et al. Paper‐Based Electrochemical Biosensors: From Test Strips to Paper‐Based Microfluidics , 2014 .
[36] Anthony Turner,et al. Lateral-flow technology: From visual to instrumental , 2016 .
[37] Debrah I. Boeras,et al. REASSURED diagnostics to inform disease control strategies, strengthen health systems and improve patient outcomes , 2018, Nature Microbiology.
[38] Hua Zhang,et al. Paper-based microfluidics for rapid diagnostics and drug delivery. , 2020, Journal of controlled release : official journal of the Controlled Release Society.
[39] David R. Liu,et al. Engineering and identifying supercharged proteins for macromolecule delivery into mammalian cells. , 2012, Methods in enzymology.
[40] Lung-Ming Fu,et al. Recent advances in microfluidic paper-based assay devices for diagnosis of human diseases using saliva, tears and sweat samples , 2021 .
[41] Suzanne Smith,et al. Paper-based smart microfluidics for education and low-cost diagnostics , 2015 .
[42] Heather Sheardown,et al. Protein Resistance of PEG-Functionalized Dendronized Surfaces : Effect of PEG Molecular Weight and Dendron Generation , 2008 .
[43] J. Rühe,et al. Platelet Repellent Properties of Hydrogel Coatings on Polyurethane-Coated Glass Surfaces , 2014, ASAIO journal.
[44] D. Gray,et al. Contact Angle Measurements on Smooth Nanocrystalline Cellulose (I) Thin Films , 2011 .
[45] Tobias A. F. König,et al. Enzyme containing redox polymer networks for biosensors or biofuel cells: a photochemical approach. , 2010, Langmuir : the ACS journal of surfaces and colloids.