Alberto Megías
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albertomegias.bsky.social
Alberto Megías
@albertomegias.bsky.social
Assistant Professor at Universidad Politécnica de Madrid @upm.es. #ComplexSystems #MachineLearning #AppliedMathematics #Statistics #StatisticalMechanics
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Thrilled to share our latest work with @chipotlab.bsky.social and collaborators, now officially out in Nature! 🎉

We developed the generative-based tool Gen-COMPAS to bridge the MD timescale gap without predefined reaction coordinates.

📖 Paper: short.upm.es/4al43
💻 GitHub: short.upm.es/vtawv
Reposted by Alberto Megías
Nature research paper: Breaking timescales with generative sampling of conformational transitions

go.nature.com/4ywi3Bx
Breaking timescales with generative sampling of conformational transitions - Nature
A generative committor-guided path-sampling framework reconstructs rare biomolecular transition pathways and reveals the underlying thermodynamics and kinetics without using predefined collective variables or brute-force sampling, at an acceptable computational cost.
go.nature.com
September 16, 2026 at 8:11 AM
Thrilled to share our latest work with @chipotlab.bsky.social and collaborators, now officially out in Nature! 🎉

We developed the generative-based tool Gen-COMPAS to bridge the MD timescale gap without predefined reaction coordinates.

📖 Paper: short.upm.es/4al43
💻 GitHub: short.upm.es/vtawv
September 14, 2026 at 9:51 AM
Reposted by Alberto Megías
No predefined reaction coordinate. No mechanistic guesswork. No massive sampling campaign. Gen-COMPAS reconstructs biomolecular transition pathways from endpoint structures alone. Protein folding, allostery, membrane transport. Now in Nature.
@nature.com @springernature.com
September 10, 2026 at 4:39 PM
Reposted by Alberto Megías
🚨Our July issue is now live and includes research on adverse drug reactions, multi-fidelity Bayesian optimization, rare event sampling, and much more!
t.co/myy3LVRjGO
July 25, 2025 at 11:37 AM
Reposted by Alberto Megías
Out now! Chrisophe Chipot and colleagues develop a neural-network approach for committor-consistent enhanced-sampling simulations of rare events.
www.nature.com/articles/s43...
🔓https://rdcu.be/evcjW
Iterative variational learning of committor-consistent transition pathways using artificial neural networks - Nature Computational Science
A neural network approach grounded in transition-path theory is shown to uncover committor-consistent transition pathways, resolving competing mechanisms across dynamical regimes and advancing the mod...
www.nature.com
July 7, 2025 at 5:08 PM
Reposted by Alberto Megías
Did you ever want to try out enhanced sampling with ABF? Have a look at our newest tutorial to get started!
doi.org/10.1021/acs....

@radutalmazan.bsky.social, Haohao Fu, Mengchen Zhou, Jérôme Hénin, James C. Gumbart and Christophe Chipot
Calculating Free-Energy Differences Using an Average Force: A Tutorial for Adaptive Biasing Force Simulations
The purpose of this tutorial is to get the reader familiarized with the calculation of a free-energy change along a reaction-coordinate (RC) model through a number of applications of variants of the importance-sampling adaptive biasing force algorithm. The reversible sodium-chloride ion pairing in aqueous solution serves as an introductory example, wherein the RC model is defined as the distance separating the ions. For the reversible folding of the short peptide deca-alanine, alternative collective variables are considered to map the conformational free-energy landscape. The importance-sampling algorithm is then applied to the transfer of an ethanol molecule across the water liquid–vapor interface to estimate its hydration free energy. The results are compared to those of an alchemical transformation using free-energy perturbation calculations. In the final application, the Ramachandran free-energy surface underlying the conformational equilibrium of N-methyl-N′-acetylalanylamide is determined in two dimensions, comparing single- and multiple-walker strategies.
doi.org
September 30, 2025 at 11:49 AM