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◆ PLoS computational biology2026-09-03

Topological potentials guiding protein self-assembly.

Ivan L A Spirandelli, Arnur Nigmetov, Dmitriy Morozov, Myfanwy E Evans

原始摘要(英文原文)· Original abstract
The simulated assembly of molecular building blocks into functional complexes is central to computational biology and materials science. Protein-assembly simulations, driven by short-range nonpolar interactions, can in principle reach their biologically correct structures, but rugged energy landscapes often trap simulations in non-functional local minima. We introduce a long-range topological potential, quantified by weighted total persistence, and combine it with the morphometric approach to solvation free energy. Across four protein systems, this combination increases assembly success rates by up to sixteen-fold and enables assembly in cases that otherwise fail. Unlike previous topology-based approaches, our method uses topological measures as an active energetic bias rather than a descriptive tool. Depending only on atom geometry, the method extends in principle to other self-assembling systems, offering a general strategy for overcoming kinetic barriers in molecular simulations.
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Topological potentials guiding protein self-assembly. — 科研速览 Science Skim