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D Bassolino

Publications and source records attributed to D Bassolino.

2 recordsLinked to original sources

Transmembrane helix structure, dynamics, and interactions: multi-nanosecond molecular dynamics simulations.

To probe the fundamentals of membrane/protein interactions, all-atom multi-nanosecond molecular dynamics simulations were conducted on a single transmembrane poly(32)alanine helix in a fully solvated dimyristoyphosphatidylcholine (DMPC) bilayer. The central 12 residues, which interact only with the lipid hydrocarbon chains, maintained a very stable helical structure. Helical regions extended beyond these central 12 residues, but interactions with the lipid fatty-acyl ester linkages, the lipid headgroups, and water molecules made the helix less stable in this region. The C and N termini, exposed largely to water, existed as random coils. As a whole, the helix tilted substantially, from perpendicular to the bilayer plane (0 degree) to a 30 degrees tilt. The helix experienced a bend at its middle, and the two halves of the helix at times assumed substantially different tilts. Frequent hydrogen bonding, of up to 0.7 ns in duration, occurred between peptide and lipid molecules. This resulted in correlated translational diffusion between the helix and a few lipid molecules. Because of the large variation in lipid conformation, the lipid environment of the peptide was not well defined in terms of "annular" lipids and on average consisted of 18 lipid molecules. When compared with a "neat" bilayer without peptide, no significant difference was seen in the bilayer thickness, lipid conformations or diffusion, or headgroup orientation. However, the lipid hydrocarbon chain order parameters showed a significant decrease in order, especially in those methylene groups closest to the headgroup.

Computer Simulation↗

Drug-membrane interactions studied by molecular dynamics simulation: size dependence of diffusion.

Bioavailability, largely due to membrane permeation, is an important step in the drug delivery process and therefore drug design. In this study, a series of molecular dynamics simulations (totaling 10's of nanoseconds) of small molecules (varying in size, and functional groups) in lipid bilayer membranes were used to elucidate the mechanism of diffusion of drugs within biomembranes. These simulations accurately reproduce many experimentally observed parameters. The simulations also agree with theory that indicates the lipid bilayer has internal structure that influences the diffusion process and that even within the hydrocarbon regions there are distinct regions between which the rate and mechanism of diffusion varies. In particular, in agreement with experiment and theory the small solutes were found to diffuse by a mechanism different from that of large molecules. These variations are linked to the frequency and size of spontaneously arising voids within the bilayer as well as the rate of torsional isomerization of the hydrocarbon chains.

Biological Availability↗