Abstract
The development of small-molecule covalent inhibitors and probes continuously pushes the rapidly evolving field of chemical biology forward. A key element in these molecular tool compounds is the “electrophilic trap” that allows a covalent linkage with the target enzyme. The reactivity of this entity needs to be well balanced to effectively trap the desired enzyme, while not being attacked by off-target nucleophiles. Here we investigate the intrinsic reactivity of substrates containing a class of widely used electrophilic traps, the three-membered heterocycles with a nitrogen (aziridine), phosphorus (phosphirane), oxygen (epoxide) or sulfur atom (thiirane) as heteroatom. Using quantum chemical approaches, we studied the conformational flexibility and nucleophilic ring opening of a series of model substrates, in which these electrophilic traps are mounted on a cyclohexene scaffold (C6H10Y with Y=NH, PH, O, S). It was revealed that the activation energy of the ring opening does not necessarily follow the trend that is expected from C−Y leaving-group bond strength, but steeply decreases from Y=NH, to PH, to O, to S. We illustrate that the HOMONu–LUMOSubstrate interaction is an all-important factor for the observed reactivity. In addition, we show that the activation energy of aziridines and phosphiranes can be tuned far below that of the corresponding epoxides and thiiranes by the addition of proper electron-withdrawing ring substituents. Our results provide mechanistic insights to rationally tune the reactivity of this class of popular electrophilic traps and can guide the experimental design of covalent inhibitors and probes for enzymatic activity.
| Original language | English |
|---|---|
| Article number | e202201649 |
| Pages (from-to) | 1-12 |
| Number of pages | 12 |
| Journal | Chemistry - A European Journal |
| Volume | 28 |
| Issue number | 60 |
| Early online date | 27 Jul 2022 |
| DOIs | |
| Publication status | Published - 26 Oct 2022 |
Bibliographical note
Publisher Copyright:© 2022 The Authors. Chemistry - A European Journal published by Wiley-VCH GmbH.
Funding
We thank the Spanish Ministry of Science, Innovation and Universities (MICINN/AEI/FEDER, UE, PID2020‐118893GB‐100 to C.R.), the Spanish Structures of Excellence María de Maeztu (MDM‐2017‐0767 to C.R.) and the European Research Council (ERC‐2020‐SyG‐95123 “CARBOCENTRE” to C.R.). The authors would like to acknowledge the technical support provided by the Barcelona Supercomputing Center (BSC) and Red Nacional de Supercomputación (RES) for computer resources at MareNostrum IV, and by SURFsara HPC for computer resources at Cartesius and Snellius (NWO‐Rekentijd grant 17569 and 11116 to T.H. and J.D.C.C.).
| Funders | Funder number |
|---|---|
| Ministerio de Ciencia, Innovación y Universidades | |
| Ministerio de Ciencia e Innovación | |
| NWO-Rekentijd | |
| Agencia Estatal de Investigación | |
| Barcelona Supercomputing Center | |
| Horizon 2020 Framework Programme | 951231 |
| European Research Council | ERC‐2020‐SyG‐95123 |
| Red Nacional de Supercomputación | 11116 |
| Federación Española de Enfermedades Raras | PID2020‐118893GB‐100, MDM‐2017‐0767 |
| ???publication-publication-funding-organisation-not-added??? | 17569 |
Keywords
- activation strain model
- density functional calculations
- nucleophilic substitution
- reactivity
- ring-opening reactions
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