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Continuum Mechanical Parameterisation of Cytoplasmic Dynein from Atomistic Simulation.

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Cytoplasmic dynein is responsible for intra-cellular transport in eukaryotic cells. Using Fluctuating Finite Element Analysis (FFEA), a novel algorithm that represents proteins as continuum viscoelastic solids subject to thermal noise,… Click to show full abstract

Cytoplasmic dynein is responsible for intra-cellular transport in eukaryotic cells. Using Fluctuating Finite Element Analysis (FFEA), a novel algorithm that represents proteins as continuum viscoelastic solids subject to thermal noise, we are building computational tools to study the mechanics of these molecular machines. Here we present a methodology for obtaining the material parameters required to represent the flexibility of cytoplasmic dynein within FFEA from atomistic molecular dynamics (MD) simulations, and show this continuum representation is sufficient to capture the principal dynamic properties of the motor.

Keywords: dynein; dynein atomistic; mechanical parameterisation; continuum mechanical; parameterisation cytoplasmic; cytoplasmic dynein

Journal Title: Methods
Year Published: 2020

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