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December 14, 2025Advanced Science12 citationsOpen Access

Achieving Chemical Accuracy in Cyclodextrin Host–Guest Binding via Integrative Atomistic Modelling

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XWXiaohui WangLQLinqiong QiuHWHongyu Wang

Key Points

  • To enhance the accuracy of computational modelling in cyclodextrin host–guest systems.
  • Developed a computational technique integrating several advanced algorithms.
  • Conducted a large-scale survey of 222 cyclodextrin host–guest systems.
  • Applied force-field recalibration and enhanced sampling methods.
  • Achieved accurate calculations of cyclodextrin binding strength.
  • Successfully captured cyclodextrin dynamics in free states.
  • Identified key physicochemical forces stabilizing host–guest complexes.

Abstract

Abstract Cyclodextrins are amphiphilic macromolecular containers that are particularly valuable in applications ranging from biomedicine to environmental science. Despite years of development of computational techniques for cyclodextrin host‐guest coordination, accurate modelling of these supramolecular systems remains challenging. In this work, an integrative computational technique is presented to solve this problem. The protocol integrates a force‐field recalibration procedure, equilibrium enhanced sampling, nonequilibrium Hamiltonian switching, a work convolution algorithm, a series of finite‐size corrections, and energy decomposition analysis. A large‐scale survey of 222 CD host–guest systems is performed to demonstrate that the protocol enables the fast calculation of cyclodextrin host‐guest binding strength without compromise in accuracy, an unbiased capture of cyclodextrin dynamics in the free CD, and the multi‐modal behavior of the coordination patterns, and further the identification of the physicochemical driving force stabilizing host‐guest complexes. Especially, the protocol consistently provides accurate results for various systems while conventional transferable force fields systematically fail for larger and more flexible 𝛾‐CD. It thus opens new opportunities for high‐throughput screening and rational design across diverse macrocyclic host families.

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Cite This Study

Wang et al. (2025) studied this question.

synapsesocial.com/papers/6941aaa70f5af7fd17df4b29https://doi.org/10.1002/advs.202519782
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