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May 7, 2026Theoretical Chemistry Accounts0 citationsOpen Access

Influence of host cavity dimensions on the stability of cyclodextrin-based urease inhibitor formulations: a theoretical study

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RFRafaela Maia Della-Sávia FreitasPMPollyanna Pinto MaiaCJClébio Soares Nascimento Júnior

Key Points

  • This work aims to explore how host cavity dimensions affect the stability of urease inhibitor formulations.
  • Utilized Density Functional Theory for computational analysis
  • Examined molecular recognition of phosphoramidate derivatives in cyclodextrins
  • Implemented NCI index analysis for host-guest stabilization
  • Analyzed solvation effects using the Solvation Model based on Density
  • β-cyclodextrins showed greater complex stability compared to α- and γ-cyclodextrins
  • Optimal cavity dimensions enhance non-covalent interactions and hydrogen bonds
  • Findings provide a predictive framework for designing controlled-release nitrogenous fertilizers

Abstract

Abstract The design of efficient delivery systems for urease inhibitors is a critical challenge in mitigating nitrogen loss in agriculture. In this work, we investigated the molecular recognition and inclusion of phosphoramidate (PHOS) derivatives within the cavities of α -, β -, and γ -cyclodextrins (CDs). A hierarchical computational strategy was employed using the ORCA 5.0 package, starting with geometry optimizations at the semiempirical GFN2-xTB level, followed by refined electronic energy calculations utilizing Density Functional Theory (DFT) with the range-separated hybrid functional ωB97X-D3 and the 6-31G(d,p) basis set. Solvation effects in water were accounted for using the Solvation Model based on Density (SMD), and the nature of host-guest stabilization was characterized via Non-Covalent Interaction (NCI) index analysis. We demonstrate that host cavity dimensions are the primary determinant of complex stability. Our results reveal that β -CD provides the optimal hydrophobic environment, exhibiting superior host-guest complementarity for PHOS compared to its α- and γ-congeners. This “optimal steric complementarity” fit maximizes stabilizing non-covalent interactions, yielding a denser network of hydrogen bonds and enhanced London dispersion forces within the β -CD framework. These findings provide a definitive molecular basis for the preference for β -CD in both gas and aqueous phases, offering a predictive blueprint for the rational design of advanced, controlled-release nitrogenous fertilizer formulations.

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Cite This Study

Freitas et al. (2026) studied this question.

synapsesocial.com/papers/69fbe3ca164b5133a91a3187https://doi.org/10.1007/s00214-026-03295-9
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