Controlled movement and manipulation of magnetic micro- and nanostructures using magnetic forces can give rise to important applications in biomedecine, diagnostics, and immunology. We report controlled magnetophoresis and stretching, in aqueous solution, of a DNA-based dumbbell structure containing magnetic and diamagnetic microspheres. The velocity and stretching of the dumbbell were experimentally measured and correlated with a theoretical model based on the forces acting on individual magnetic beads or the entire dumbbell structures. The results show that precise and predictable manipulation of dumbbell structures is achievable and can potentially be applied to immunomagnetic cell separators.

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Initial estimation of the magnetic force was performed based on numerical simulation of the magnetic field distribution calculated using QUICK-FIELD software.

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The magnetic field distribution is calculated with software package QUICK-FIELD (not shown), while all the other simulations are done using MATHEMATICA, Ver. 5.1. The arm magnet data for the position x=25mm is absent due to our magnetic design.

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