Uncovering the most kinetically influential reaction pathway driving the generation of HCN from oxyma/DIC adduct: a theoretical study
File(s)acs.iecr.2c03145.pdf (1.8 MB)
Published version
OA Location
Author(s)
Type
Journal Article
Abstract
The combination of ethyl (hydroxyimino)cyanoacetate (Oxyma) and diisopropylcarbodiimide (DIC) has demonstrated superior performance in amino acid activation for peptide synthesis. However, it was recently reported that Oxyma and DIC could react to generate undesired hydrogen cyanide (HCN) at 20 °C, raising safety concerns for the practical use of this activation strategy. To help minimize the risks, there is a need for a comprehensive investigation of the mechanism and kinetics of the generation of HCN. Here we show the results of the first systematic computational study of the underpinning mechanism, including comparisons with experimental data. Two pathways for the decomposition of the Oxyma/DIC adduct are derived to account for the generation of HCN and its accompanying cyclic product. These two mechanisms differ in the electrophilic carbon atom attacked by the nucleophilic sp2-nitrogen in the cyclization step and in the cyclic product generated. On the basis of computed “observed” activation energies, ΔGobs⧧, the mechanism that proceeds via the attack of the sp2-nitrogen at the oxime carbon is identified as the most kinetically favorable one, a conclusion that is supported by closer agreement between predicted and experimental 13C NMR data. These results can provide a theoretical basis to develop a design strategy for suppressing HCN generation when using Oxyma/DIC for amino acid activation.
Date Issued
2023-01-05
Date Acceptance
2022-12-16
Citation
Industrial & Engineering Chemistry Research, 2023, 62 (2), pp.874-880
ISSN
0888-5885
Publisher
American Chemical Society (ACS)
Start Page
874
End Page
880
Journal / Book Title
Industrial & Engineering Chemistry Research
Volume
62
Issue
2
Copyright Statement
Copyright © 2023 The Authors. Published by American Chemical Society. This work is published under a CC BY licence.
License URL
Identifier
https://pubs.acs.org/doi/10.1021/acs.iecr.2c03145
Subjects
Science & Technology
Technology
Engineering, Chemical
Engineering
QUANTUM CONTRIBUTIONS
03 Chemical Sciences
09 Engineering
Chemical Engineering
Publication Status
Published
Date Publish Online
2023-01-04