Nanoplasmonic Sensor Detects Preferential Binding of IRSp53 to Negative Membrane Curvature
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Nam-Joon Cho | Bita Malekian | Kunli Xiong | Gustav Emilsson | Andreas B. Dahlin | N. Cho | M. Bally | J. Manzi | Feng-Ching Tsai | John Manzi | Marta Bally | Kunli Xiong | G. Emilsson | Andreas Dahlin | Feng-Ching Tsai | Evelyn Röder | Bita Malekian | Evelyn Röder | Nam‐Joon Cho
[1] A. Callan-Jones,et al. IRSp53 senses negative membrane curvature and phase separates along membrane tubules , 2015, Nature Communications.
[2] M. Kanje,et al. Nanofluidics in hollow nanowires , 2010, Nanotechnology.
[3] Nam-Joon Cho,et al. Nanoplasmonic sensors for biointerfacial science. , 2017, Chemical Society reviews.
[4] P. Kinnunen,et al. Molecular Mechanisms of Membrane Deformation by I-BAR Domain Proteins , 2009, Current Biology.
[5] Rebecca L Rich,et al. Survey of the 2009 commercial optical biosensor literature , 2011, Journal of molecular recognition : JMR.
[6] Sunghan Kim,et al. Synthesis, Assembly, and Applications of Hybrid Nanostructures for Biosensing. , 2017, Chemical reviews.
[7] Fredrik Höök,et al. Supported lipid bilayer formation and lipid-membrane-mediated biorecognition reactions studied with a new nanoplasmonic sensor template. , 2007, Nano letters.
[8] Fredrik Höök,et al. Simultaneous nanoplasmonic and quartz crystal microbalance sensing: analysis of biomolecular conformational changes and quantification of the bound molecular mass. , 2008, Analytical chemistry.
[9] Luke P. Lee,et al. Nanoplasmonic optical antennas for life sciences and medicine , 2018, Nature Reviews Materials.
[10] L. Lechuga,et al. Recent advances in nanoplasmonic biosensors: applications and lab-on-a-chip integration , 2017 .
[11] Takumi Sannomiya,et al. Optical properties of nanohole arrays in metal-dielectric double films prepared by mask-on-metal colloidal lithography. , 2012, ACS nano.
[12] Pekka Lappalainen,et al. Missing-in-metastasis and IRSp53 deform PI(4,5)P2-rich membranes by an inverse BAR domain–like mechanism , 2007, The Journal of cell biology.
[13] Andreas Dahlin,et al. Size Matters: Problems and Advantages Associated with Highly Miniaturized Sensors , 2012, Sensors.
[14] O. V. Levtsova,et al. A molecular dynamics study of the interaction between domain I-BAR of the IRSp53 protein and negatively charged membranes , 2011, Biofizika.
[15] Andreas B. Dahlin,et al. Location-specific nanoplasmonic sensing of biomolecular binding to lipid membranes with negative curvature. , 2015, Nanoscale.
[16] A. Callan-Jones,et al. Curvature-driven membrane lipid and protein distribution , 2013 .
[17] Eva Olsson,et al. Fabrication and Characterization of Plasmonic Nanopores with Cavities in the Solid Support , 2017, Sensors.
[18] Eunjoon Kim,et al. IRSp53/BAIAP2 in dendritic spine development, NMDA receptor regulation, and psychiatric disorders , 2016, Neuropharmacology.
[19] Andreas B. Dahlin,et al. Biosensing using plasmonic nanohole arrays with small, homogenous and tunable aperture diameters. , 2016, The Analyst.
[20] Nam-Joon Cho,et al. Nanoplasmonic Sensing Architectures for Decoding Membrane Curvature-Dependent Biomacromolecular Interactions. , 2018, Analytical chemistry.
[21] Hyungsoon Im,et al. Atomic layer deposition of dielectric overlayers for enhancing the optical properties and chemical stability of plasmonic nanoholes. , 2010, ACS nano.
[22] Peter Zijlstra,et al. Single-Molecule Plasmon Sensing: Current Status and Future Prospects , 2017, ACS sensors.
[23] P. Camilli,et al. The BAR Domain Superfamily: Membrane-Molding Macromolecules , 2009, Cell.