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Updated: May 12, 2026

Rare Event Detection Using Error-corrected DNA and RNA Sequencing
Published on: August 3, 2018
Understanding Mechanisms of Molecular Rare Events from Start to Finish
Rik S Breebaart1, Gianmarco Lazzeri2,3, Roberto Covino2,3
1Universiteit van Amsterdam, Van 't Hoff Institute for Molecular Sciences, Science Park 904, 1098 XH Amsterdam, The Netherlands.
None:
Understanding mechanisms of rare but important events in complex molecular systems, such as protein folding or ligand (un)binding, requires accurately mapping transition paths from an initial to a final state. The committor is the ideal reaction coordinate for this purpose, but calculating it for high-dimensional, nonlinear systems has long been considered intractable. Here, we introduce an iterative path-sampling strategy for computing the committor function for systems with high free-energy barriers. We start with an initial guess to define isocommittor interfaces for transition interface sampling. The resulting path ensemble is then reweighted and used to train a neural network, yielding a more accurate committor model. This process is repeated until convergence, effectively solving the long-standing circular problem in enhanced sampling where a good reaction coordinate is needed to generate efficient sampling, and vice versa. The final, converged committor model can be interrogated to extract mechanistic insights. We demonstrate the power of the method on a benchmark 2D potential and a host-guest (un)binding process in an explicit solvent.
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