Computational Organic Chemistry: The Frontier for Understanding and Designing Bioorthogonal Cycloadditions

IF 8.6 2区 化学 Q1 Chemistry Topics in Current Chemistry Pub Date : 2024-05-10 DOI:10.1007/s41061-024-00461-0
Dennis Svatunek
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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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计算有机化学:了解和设计生物正交环化反应的前沿。
计算有机化学已成为生物正交化学领域的重要工具,为这一化学分支的发展提供见解和帮助。在这篇综述中,我概述了这一领域的计算工作,包括探讨所使用的主要计算分析方法及其在生物正交化学主要领域的应用:(3 + 2) 和 [4 + 2] 环加成反应。在 (3 + 2) 环加成方面,对电子效应的详细研究为环炔/1,3-偶极环加成的发展提供了信息。通过计算技术,研究人员找到了通过超共轭来调整电子结构的方法,从而在不影响稳定性的情况下增强反应。对于[4 + 2]环加成反应,畸变/相互作用分析和能量分解分析等方法很有帮助,从而开发出反应活性更高的生物正交反应物,并建立了正交反应对。最后,我谈到了新兴的化学信息学和机器学习领域,它们有望在未来的反应发现和优化中发挥作用。
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来源期刊
Topics in Current Chemistry
Topics in Current Chemistry 化学-化学综合
CiteScore
11.70
自引率
1.20%
发文量
0
审稿时长
6-12 weeks
期刊介绍: Topics in Current Chemistry provides in-depth analyses and forward-thinking perspectives on the latest advancements in chemical research. This renowned journal encompasses various domains within chemical science and their intersections with biology, medicine, physics, and materials science. Each collection within the journal aims to offer a comprehensive understanding, accessible to both academic and industrial readers, of emerging research in an area that captivates a broader scientific community. In essence, Topics in Current Chemistry illuminates cutting-edge chemical research, fosters interdisciplinary collaboration, and facilitates knowledge-sharing among diverse scientific audiences.
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