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KOLE, K.

Publications and source records attributed to KOLE, K..

2 recordsLinked to original sources

Structure-Preserving Coarse-Grained Simulationof Proteins in Explicit Solvent

Many biologically relevant processes occur on time and length scales which are far beyond the reach of atomistic simulations. These processes include large protein dynamics and the self-assembly of biological materials. Coarse-grained molecular modeling allows computer simulations on length and time scales 2-3 orders of magnitude larger than atomistic simulations, bridging the gap between the atomistic and mesoscopic scales. However, the structural information involving the dihedral angles is lost in coarse-graining. We develop a simple coarse-grained protein model with structural information in explicit solvent. We represent the center of mass of each residue as a polymer bead and water oxygen as a solvent bead. Each polymer bead has five degrees of freedom: position of the center and two additional variables for the backbone dihedral angles. All interaction parameters for bonded, non-bonded, dihedral coupling and bead-solvent interactions are derived from the equilibrated all-atom molecular dynamics simulation trajectory. We find that our coarse-grained approach reproduces residue-level structural information that closely matches the crystal structures and all-atom simulation results.

biophysics↗

Conformational stability and order of Hoogsteen base pair induced by protein binding

Several experimental studies have shown that in the presence of proteins, the Hoogsteen (HG) base pair (bp) becomes stabilized. The molecular mechanism underlying this stabilization is not well known. This leads us to use all-atom molecular dynamics simulation to examine the stability of the HG bp in duplex DNA in both the absence and presence of proteins. We use conformational thermodynamics to investigate the stability of a HG bp in duplex DNA at the molecular level. We also compute the changes in the conformational free energy and entropy of DNA when DNA adopts a HG bp in its bp sequence rather than a Watson-Crick (WC) bp in both naked DNA and protein-bound DNA complex. We observe that the HG bp and the entire DNA duplex conformation are stabilized and ordered in the presence of proteins. Sugar-phosphate, sugar-base, and sugar-pucker torsion angles play key roles in stabilizing and ordering the HG bp in the protein-bound DNA complex.

biophysics↗