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Journal ArticleDOI

Molecular Dynamics Study of the Structure, Flexibility, and Hydrophilicity of PETIM Dendrimers: A Comparison with PAMAM Dendrimers.

TLDR
PETIM dendrimers have relatively greater hydrophobicity and flexibility when compared with their extensively investigated PAMAM counterparts, which is expected to have stronger interactions with lipid membranes as well as improved drug encapsulation and retention properties when compared.
Abstract
A new class of dendrimers, the poly(propyl ether imine) (PETIM) dendrimer, has been shown to be a novel hyperbranched polymer having potential applications as a drug delivery vehicle. Structure and dynamics of the amine terminated PETIM dendrimer and their changes with respect to the dendrimer generation are poorly understood. Since most drugs are hydrophobic in nature, the extent of hydrophobicity of the dendrimer core is related to its drug encapsulation and retention efficacy. In this study, we carry out fully atomistic molecular dynamics (MD) simulations to characterize the structure of PETIM (G2-G6) dendrimers in salt solution as a function of dendrimer generation at different protonation levels. Structural properties such as radius of gyration (Rg), radial density distribution, aspect ratio, and asphericity are calculated. In order to assess the hydrophilicity of the dendrimer, we compute the number of bound water molecules in the interior of dendrimer as well as the number of dendrimer-water hydrogen bonds. We conclude that PETIM dendrimers have relatively greater hydrophobicity and flexibility when compared with their extensively investigated PAMAM counterparts. Hence PETIM dendrimers are expected to have stronger interactions with lipid membranes as well as improved drug encapsulation and retention properties when compared with PAMAM dendrimers. We compute the root-mean-square fluctuation of dendrimers as well as their entropy to quantify the flexibility of the dendrimer. Finally we note that structural and solvation properties computed using force field parameters derived based on the CHARMM general purpose force field were in good quantitative agreement with those obtained using the generalized Amber force field (GAFF).

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Translocation of Bioactive Molecules through Carbon Nanotubes Embedded in the Lipid Membrane

TL;DR: Using fully atomistic molecular dynamics simulations, it is shown that molecules of various shapes, sizes, and chemistries can be spontaneously encapsulated in a single-walled carbon nanotube (SWCNT) embedded in a 1-palmitoyl-2-oleoysl-sn-glycero-3-phosphocholine (POPC) lipid bilayer.
Journal ArticleDOI

Unraveling Photocatalytic Mechanism and Selectivity in PET‐RAFT Polymerization

TL;DR: In this article, the authors used computational resources provided by the Australian National Computational Infrastructure (NCI) facility at the Indian National University (INU), allocated through the National Computing Merit Allocation Scheme as well as the UNSW partner share on the NCI.
Journal ArticleDOI

Atomic level insights into realistic molecular models of dendrimer-drug complexes through MD simulations

TL;DR: Interestingly, it was observed from the equilibrated structures of dendrimer-drug complexes at low pH that encapsulated drug molecules in the G4 PAMAM(NH2) formed cluster, while in the case of nontoxic G4 pamAM(Ac) they were uniformly distributed inside the dendritic cavities, which is suggested to be suitable nanovehicle for the delivery of Ntg.
Journal ArticleDOI

pH controlled gating of toxic protein pores by dendrimers

TL;DR: The investigation shows that the bio-compatible PAMAM dendrimers can potentially be used to develop therapeutic protocols based on the pH sensitive gating of pores formed by pore forming toxins to mitigate bacterial infections.
Journal ArticleDOI

Dendrimer Interactions with Lipid Bilayer: Comparison of Force Field and Effect of Implicit vs Explicit Solvation.

TL;DR: The opposing nature of dendrimer-membrane interactions in the presence of explicit and implicit solvents demonstrates that hydration effects play an important role in modulating the dend rimer-lipid interaction warranting a case for refinement of the existing dendriser/lipid force fields.
References
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Particle mesh Ewald: An N⋅log(N) method for Ewald sums in large systems

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Numerical Integration of the Cartesian Equations of Motion of a System with Constraints: Molecular Dynamics of n-Alkanes

TL;DR: In this paper, a numerical algorithm integrating the 3N Cartesian equations of motion of a system of N points subject to holonomic constraints is formulated, and the relations of constraint remain perfectly fulfilled at each step of the trajectory despite the approximate character of numerical integration.
Journal ArticleDOI

Canonical dynamics: Equilibrium phase-space distributions

TL;DR: The dynamical steady-state probability density is found in an extended phase space with variables x, p/sub x/, V, epsilon-dot, and zeta, where the x are reduced distances and the two variables epsilus-dot andZeta act as thermodynamic friction coefficients.
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Scalable molecular dynamics with NAMD

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