Skip to content
Open access

Fully Automatable Relative Binding Free Energy Calculations with Enhanced Sampling Using FAST/MBAR

Jul 2026 · Journal of Chemical Theory and Computation · Vol 22, pp. 7993 - 8012 · 0 citations · 60 references
Medicine

TL;DR

This work extends FAST to AFE calculations with and without enhanced sampling of a particular degree of freedom of interest (FAST/MBAR) and shows that enhanced sampling significantly increases the mobility of the targeted degree of freedom at the cost of reduced sampling efficiency over λ space.

Abstract

Alchemical free energy (AFE) calculations are a useful tool in computational drug discovery. However, they typically involve relatively short (<10 ns) simulations, meaning that the initial coordinates and, more generally, the setup of the system have a significant effect on the obtained free energy values. To remedy this, we recently developed a fully adaptive version of the simulated tempering algorithm (FAST) and applied it in the context of sampling. In this work, we extend FAST to AFE calculations with and without enhanced sampling of a particular degree of freedom of interest (FAST/MBAR). We show that enhanced sampling significantly increases the mobility of the targeted degree of freedom at the cost of reduced sampling efficiency over λ space. On the other hand, the free energy calculations without explicit targeting of certain degrees of freedom retain initial-coordinate bias over longer time scales. Despite this, both protocols readily explore nanosecond-time-scale events, such as torsional rotation, due to the single-trajectory nature of FAST, making them less sensitive to the system preparation. It is shown that the robust automated nature of FAST/MBAR makes it a competitive alternative to conventional AFE methods.

Read PDF

Similar papers

Open access Sep 2026

Gaussian accelerated Molecular Dynamics – Thermodynamic Integration (GaMD-TI): Improved alchemical free energy calculations with enhanced sampling

It is valuable to calculate alchemical free energy changes in drug discovery and development. Thermodynamics Integration (TI) has been widely used in computational chemistry for estimating free energy changes with alchemical transformations. However, TI based on usually short Molecular Dynamics (MD) simulations often s...

Ying-Long Miao, Skanda Sastry, Jinan Wang et al. · 0 citations
Preprint Aug 2026

Integrated Alchemical and Conformational Enhanced Sampling for Solvation Free Energy Calculations

Accurate solvation free energies from molecular dynamics simulations require efficient sampling of coupled slow variables, including solvent coordinates, solute conformational modes, and the alchemical coordinate $\lambda$. Here, we develop a $\lambda$-dynamics framework that combines mass scaling, on-the-fly probabili...

Gabriela B. Correa, C. Abreu, Nishanth N Nair et al. · 0 citations
Review Aug 2026

Molecular Dynamics Simulations in Modern Medicinal Chemistry.

A practical overview of classical atomistic MD methodologies commonly used in medicinal chemistry, including force-field-based simulations, enhanced sampling techniques, and free-energy calculation methods such as alchemical and end-point approaches are provided.

S. S. Çınaroğlu · 1 citation
Open access Aug 2026

Fast intermolecular interaction energy calculation with the OPLS-AA force field

A fast pipeline based on the OPLS-AA force field is presented that enables the automated calculation of non-bonding intermolecular (dimer) interaction energies derived from a set of small organic (monomer) molecules. To calculate the non-bonding contributions, optimized geometries of the monomer molecules as well as th...

Mirco Daniel, Hannah Kullik, Martin Urban et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.