ReviewAccounts of chemical research2023
The Quantum Chemical Cluster Approach in Biocatalysis.
Review in Accounts of chemical research, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 34 papers.
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34 citing papers in PubMed, 94 citations in OpenAlex.
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- Methods for the establishment of enzymatic mechanisms - from QM to ML.Chemical science · 2026Review
- Mechanistic Insights Into the Formaldehyde Dehydrogenase-Catalyzed Reduction of Formate: A Quantum Chemical Study.ChemPlusChem · 2026Article
- Towards an enzyme cascade synthesis of the bulk chemical acrylic acid.Nature communications · 2026Article
- How Do DICER1 Syndrome Mutations Disrupt Catalysis? Unveiling Dicer Metal Binding Architecture and Mechanism of Action Using MD Simulations and QM/MM Calculations.Journal of computational chemistry · 2026Article
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- Biocatalytic site- and stereoselective carbonyl desaturation for late-stage functionalization of cyclic ketones.Nature chemistry · 2026Article
- Multiscale Computational Enzymology of CYP450 Biotransformation of Organic Halogenated Pollutants: Methods and Environmental Perspectives.ACS omega · 2026Review
- A pyridoxal radical carboligase and imine reductase photobiocatalytic cascade for stereoselective synthesis of unnatural prolines.Nature chemistry · 2026Article
- Solvent Channels and Electric Fields Guide Proton Delivery to the Active Site of Heme Peroxidases.Angewandte Chemie (International ed. in English) · 2025Article
- Density Functional Theory Calculations to Investigate the Role Played by an Aspartate Dyad in Hsp60-Catalyzed ATP Hydrolysis.The journal of physical chemistry letters · 2025Article
- Unraveling the Catalytic Mechanism and Substrate Selectivity of HDAC10: A Dual-Filter Approach for Polyamine Deacetylation.JACS Au · 2025Article
- Mechanistic Insights into SAM-Dependent Methyltransferases: A Review of Computational Approaches.International journal of molecular sciences · 2025Review
- A Deep Learning-Augmented Density Functional Framework for Reaction Modeling with Chemical Accuracy.JACS Au · 2025Article
- Mechanistic elucidation of enzymaticRSC advances · 2025Article
- Computational Study on the Reaction Mechanism of 5-Enolpyruvylshikimate-3-phosphate Synthase from Nicotiana Tabacum.ChemistryOpen · 2025Article
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- Fully Oxidized State of the Oxygen-Tolerant [NiFe] Hydrogenase fromInorganic chemistry · 2025Article
Corrections and comments
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Authors and funding
2 authors at 2 institutions in 2 countries.
Funding
No grant is acknowledged in the PubMed record.
Abstract
The quantum chemical cluster approach has been used for modeling enzyme active sites and reaction mechanisms for more than two decades. In this methodology, a relatively small part of the enzyme around the active site is selected as a model, and quantum chemical methods, typically density functional theory, are used to calculate energies and other properties. The surrounding enzyme is modeled using implicit solvation and atom fixing techniques. Over the years, a large number of enzyme mechanisms have been solved using this method. The models have gradually become larger as a result of the faster computers, and new kinds of questions have been addressed. In this Account, we review how the cluster approach can be utilized in the field of biocatalysis. Examples from our recent work are chosen to illustrate various aspects of the methodology. The use of the cluster model to explore substrate binding is discussed first. It is emphasized that a comprehensive search is necessary in order to identify the lowest-energy binding mode(s). It is also argued that the best binding mode might not be the productive one, and the full reactions for a number of enzyme-substrate complexes have therefore to be considered to find the lowest-energy reaction pathway. Next, examples are given of how the cluster approach can help in the elucidation of detailed reaction mechanisms of biocatalytically interesting enzymes, and how this knowledge can be exploited to develop enzymes with new functions or to understand the reasons for lack of activity toward non-natural substrates. The enzymes discussed in this context are phenolic acid decarboxylase and metal-dependent decarboxylases from the amidohydrolase superfamily. Next, the application of the cluster approach in the investigation of enzymatic enantioselectivity is discussed. The reaction of strictosidine synthase is selected as a case study, where the cluster calculations could reproduce and rationalize the selectivities of both the natural and non-natural substrates. Finally, we discuss how the cluster approach can be used to guide the rational design of enzyme variants with improved activity and selectivity. Acyl transferase from
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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the OpenQuestion graph.