Multiple microsecond-length molecular dynamics simulations of complexes of Al(III) with amyloid-β (Aβ) peptides of varying length are reported, employing a non-bonded model of Al-coordination to the peptide, which is modelled using the AMBER ff14SB forcefield. Individual simulations reach equilibrium within 100 to 400 ns, as determined by root mean square deviations, leading to between 2.1 and 2.7 μs of equilibrated data. These reveal a compact set of configurations, with radius of gyration similar to that of the metal free peptide but larger than complexes with Cu, Fe and Zn. Strong coordination through acidic residues Glu3, Asp7 and Glu11 is maintained throughout all trajectories, leading to average coordination numbers of approximately 4...
Ligand field molecular mechanics simulation has been used to model the interactions of copper(II) an...
Ligand field molecular mechanics simulation has been used to model the interactions of copper(II) an...
Optimised geometries and trajectories of all reported simulations, in .xyz forma
Multiple microsecond-length molecular dynamics simulations of complexes of Al(III) with amyloid-β (A...
We report semi-empirical tight-binding simulations of the interaction between Al(III) and biological...
We present a novel strategy to generate accurate 3D models of Al()-Aβ complexes, which circumvents f...
Ligand field molecular mechanics simulation has been used to model the interactions of copper(II) a...
We report molecular dynamics simulations of three possible adducts of Fe(II) to the N-terminal 1–16 ...
We report the accelerated molecular dynamics (aMD) simulation of amyloid-β (Aβ) peptides of four dif...
We report microsecond timescale molecular dynamics simulation of the complex formed between Pt(II)-p...
We report molecular dynamics simulations of three possible adducts of Fe(II) to the N-terminal 1-16 ...
We report microsecond timescale molecular dynamics simulation of the complex formed between Pt(II)-p...
We report molecular dynamics simulations of three possible adducts of Fe(II) to the N-terminal 1–16 ...
One of Alzheimer’s disease major hallmarks is the aggregation of β-amyloid peptide, a process in whi...
The aggregational properties of Aβ are crucial in understanding the causes of the neurodegenerativ...
Ligand field molecular mechanics simulation has been used to model the interactions of copper(II) an...
Ligand field molecular mechanics simulation has been used to model the interactions of copper(II) an...
Optimised geometries and trajectories of all reported simulations, in .xyz forma
Multiple microsecond-length molecular dynamics simulations of complexes of Al(III) with amyloid-β (A...
We report semi-empirical tight-binding simulations of the interaction between Al(III) and biological...
We present a novel strategy to generate accurate 3D models of Al()-Aβ complexes, which circumvents f...
Ligand field molecular mechanics simulation has been used to model the interactions of copper(II) a...
We report molecular dynamics simulations of three possible adducts of Fe(II) to the N-terminal 1–16 ...
We report the accelerated molecular dynamics (aMD) simulation of amyloid-β (Aβ) peptides of four dif...
We report microsecond timescale molecular dynamics simulation of the complex formed between Pt(II)-p...
We report molecular dynamics simulations of three possible adducts of Fe(II) to the N-terminal 1-16 ...
We report microsecond timescale molecular dynamics simulation of the complex formed between Pt(II)-p...
We report molecular dynamics simulations of three possible adducts of Fe(II) to the N-terminal 1–16 ...
One of Alzheimer’s disease major hallmarks is the aggregation of β-amyloid peptide, a process in whi...
The aggregational properties of Aβ are crucial in understanding the causes of the neurodegenerativ...
Ligand field molecular mechanics simulation has been used to model the interactions of copper(II) an...
Ligand field molecular mechanics simulation has been used to model the interactions of copper(II) an...
Optimised geometries and trajectories of all reported simulations, in .xyz forma