Polymer translocation into cavities: Effects of confinement geometry, crowding and bending rigidity on the free energy
arXiv:2103.13177 · doi:10.1103/PhysRevE.100.012504
Abstract
Monte Carlo simulations are used to study the translocation of a polymer into a cavity. Modeling the polymer as a hard-sphere chain with a length up to N=601 monomers, we use a multiple-histogram method to measure the variation of the conformational free energy of the polymer with respect to the number of translocated monomers. The resulting free-energy functions are then used to obtain the confinement free energy for the translocated portion of the polymer. We characterize the confinement free energy for a flexible polymer in cavities with constant cross-sectional area A for various cavity shapes (cylindrical, rectangular and triangular) as well as for tapered cavities with pyramidal and conical shape. The scaling of the free energy with cavity volume and translocated polymer subchain length is generally consistent with predictions from simple scaling arguments, with small deviations in the scaling exponents likely due to finite-size effects. The confinement free energy depends strongly on cavity shape anisometry and is a minimum for an isometric cavity shape with a length/width ratio of unity. For translocation into infinitely long cones, the scaling of the free energy with taper angle is consistent with a theoretical prediction employing the blob model. We also examine the effects of polymer bending rigidity on the translocation free energy for cylindrical cavities. For isometric cavities, the observed scaling behaviour is in partial agreement with theoretical predictions. In addition, translocation into highly anisometric cylindrical cavities leads to a multi-stage folding process for stiff polymers. Finally, we examine the effects of crowding agents inside the cavity. We find that the confinement free energy increases with crowder density. At constant packing fraction the magnitude of this effect lessens with increasing crowder size for crowder/monomer size ratio 1.
16 pages, 13 figures
References in corpus (12)
- Polymer packaging and ejection in viral capsids: shape matters
- Confinement-driven translocation of a flexible polymer
- Semiflexible Polymer Confined in Closed Spaces
- Polymer translocation into a fluidic channel through a nanopore
- Dynamics of Polymer Decompression: Expansion, Unfolding and Ejection
- Polymer translocation out of confined environments
- Polymer translocation into and out of an ellipsoidal cavity
- Capstan friction model for DNA ejection from bacteriophages
- Polymer segregation under confinement: Free energy calculations and segregation dynamics simulations
- Dynamics of polymer translocation into a circular nanocontainer through a nanopore
- Rigidity-induced scale invariance in polymer ejection from capsid
- Free-energy cost of localizing a single monomer of a confined polymer