<div class="csl-bib-body">
<div class="csl-entry">Svatunek, D. (2024). Computational Organic Chemistry: The Frontier for Understanding and Designing Bioorthogonal Cycloadditions. <i>Topics in Current Chemistry</i>, <i>382</i>(2), Article 17. https://doi.org/10.1007/s41061-024-00461-0</div>
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dc.identifier.issn
2365-0869
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/209140
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dc.description.abstract
Computational organic chemistry has become a valuable tool in the field of bioorthogonal chemistry, offering insights and aiding in the progression of this branch of chemistry. In this review, I present an overview of computational work in this field, including an exploration of both the primary computational analysis methods used and their application in the main areas of bioorthogonal chemistry: (3 + 2) and [4 + 2] cycloadditions. In the context of (3 + 2) cycloadditions, detailed studies of electronic effects have informed the evolution of cycloalkyne/1,3-dipole cycloadditions. Through computational techniques, researchers have found ways to adjust the electronic structure via hyperconjugation to enhance reactions without compromising stability. For [4 + 2] cycloadditions, methods such as distortion/interaction analysis and energy decomposition analysis have been beneficial, leading to the development of bioorthogonal reactants with improved reactivity and the creation of orthogonal reaction pairs. To conclude, I touch upon the emerging fields of cheminformatics and machine learning, which promise to play a role in future reaction discovery and optimization.
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dc.description.sponsorship
FWF - Österr. Wissenschaftsfonds
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dc.language.iso
en
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dc.publisher
SPRINGER INT PUBL AG
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dc.relation.ispartof
Topics in Current Chemistry
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dc.subject
Chemistry, Organic
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dc.subject
Computational Chemistry
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dc.subject
Machine Learning
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dc.subject
Bioorthogonal
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dc.subject
Click chemistry
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dc.subject
Computational chemistry
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dc.subject
Density functional theory
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dc.subject
Organic chemistry
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dc.subject
Cycloaddition Reaction
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dc.title
Computational Organic Chemistry: The Frontier for Understanding and Designing Bioorthogonal Cycloadditions