Proceedings of the National Academy of Sciences · 2007 · 88 citations · 29 references
Dna NanotechnologyProteinlipid InteractionSingle Molecule BiophysicsBiochemistryNatural SciencesDna-tethered VesiclesMolecular BiologyMembrane BiologyTethered VesiclesMembrane SystemMolecular BiophysicsLipid MovementCellular BiochemistryMedicineBiophysicsIndividual VesiclesLipid Bilayers
Membrane-membrane recognition and binding are crucial in many biological processes. We report an approach to studying the dynamics of such reactions by using DNA-tethered vesicles as a general scaffold for displaying membrane components. This system was used to characterize the docking reaction between two populations of tethered vesicles that display complementary DNA. Deposition of vesicles onto a supported lipid bilayer was performed by using a microfluidic device to prevent mixing of the vesicles in bulk during sample preparation. Once tethered onto the surface, vesicles mixed via two-dimensional diffusion. DNA-mediated docking of two reacting vesicles results in their colocalization after collision and their subsequent tandem motion. Individual docking events and population kinetics were observed via epifluorescence microscopy. A lattice-diffusion simulation was implemented to extract from experimental data the probability, P(dock), that a collision leads to docking. For individual vesicles displaying small numbers of docking DNA, P(dock) shows a first-order relationship with copy number as well as a strong dependence on the DNA sequence. Both trends are explained by a model that includes both tethered vesicle diffusion on the supported bilayer and docking DNA diffusion over each vesicle's surface. These results provide the basis for the application of tethered vesicles to study other membrane reactions including protein-mediated docking and fusion.
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SNAREpins: Minimal Machinery for Membrane Fusion
Thomas Weber, Boris V. Zemelman, James A. McNew et al. · Cell · 1998 · 2.5K citations · Full text
Michael L. Wagner, Lukas K. Tamm · Biophysical Journal · 2000 · 500 citations · Full text
Membrane Structure, Proteinlipid Interaction, Membrane Biophysics +7