Hydrophobic Collapse: Protein Folding Molecular Dynamics
Interactive coarse-grained 3D molecular dynamics of a hydrophobic/polar bead-chain polymer collapsing into a compact globule with a buried hydrophobic core, driven by Langevin (Brownian) dynamics and Lennard-Jones interactions.
This simulation drives a coarse-grained bead-chain polymer through the hydrophobic collapse that initiates globular protein folding: a heteropolymer of hydrophobic (H) and polar (P) beads, connected by harmonic bonds, evolves under overdamped Langevin dynamics with a Lennard-Jones attraction restricted to H–H pairs and a purely repulsive Weeks-Chandler-Andersen potential everywhere else. Raise the hydrophobic well depth or lower the solvent temperature and the extended coil folds itself into a compact molten globule with a buried hydrophobic core and a polar surface — the same energetic asymmetry that drives real proteins to collapse in water before secondary and tertiary structure lock in. Live readouts track the radius of gyration, its ratio to the fully extended chain, and the number of hydrophobic contacts, while a sequence-pattern selector shows how the arrangement of H/P residues along the backbone controls whether a well-packed core is even reachable.
A coarse-grained hydrophobic/polar bead-chain polymer collapses into a compact globule with a buried hydrophobic core under Langevin dynamics and Lennard-Jones interactions, with live radius-of-gyration and contact-count readouts.
3D · Three.js / WebGL renderer · 60 FPS target · runs fully client-side, no install