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Buckling Causes Nonlinear Dynamics of Filamentous Viruses Driven through Nanopores
Angus McMullen1, Hendrick W de Haan2, Jay X Tang1
1Physics Department, Brown University, Providence, Rhode Island 02912, USA.
Abstract:
Measurements and Langevin dynamics simulations of filamentous viruses driven through solid-state nanopores reveal a superlinear rise in the translocation velocity with driving force. The mobility also scales with the length of the virus in a nontrivial way that depends on the force. These dynamics are consequences of the buckling of the leading portion of a virus as it emerges from the nanopore and is put under compressive stress by the viscous forces it encounters. The leading tip of a buckled virus stalls and this reduces the total viscous drag force. We present a scaling theory that connects the solid mechanics to the nonlinear dynamics of polyelectrolytes translocating nanopores.
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