Strategies for the Synthesis of Cyclic Ethers of Marine Natural Products
Стратегии синтеза циклических эфиров морских природных соединений
2013-11-26
SCID: 54.1/bqf6xrvm
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Nicholas reactionPrins cyclizationcyclic ethersmarine natural productsring-closing metathesis
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Abstract (AI)
This account describes our studies on the synthesis of natural products that contain cyclic ethers in their structures. An overview of the main methodologies is presented and several total syntheses developed by the group are described. We also discuss new applications based on the use of Prins and Nicolas reactions as key steps in the preparation of oxygenated heterocyclic compounds. 1 Introduction 1.1 Natural Sources and Biogenesis 2 Carbon–Oxygen Bond-Formation Approach 2.1 Intramolecular Opening of Epoxy Alcohols and Related Bromo Cyclizations 2.2 Intramolecular Hetero-Michael Reaction of Alkoxy γ-Benzoyloxy α,β-Unsaturated Esters 2.3 Intramolecular Nicholas Reaction 3 Ring-Closing Metathesis of Unsaturated Linear Ethers 4 Prins Cyclization Promoted by Iron(III) salts 4.1 General Strategy 4.2 Cyclization Using Alkynols and the Formation of Vinyl Halides 4.3 The Use of Trimethylsilyl and Electron-Withdrawing Substituents in the Synthesis of 2,6-Disubstituted Tetrahydropyrans 4.4 Catalytic Prins Cyclization 4.5 Synthesis of Oxepanes 5 Summary
Key Findings
1
Carbon–oxygen bond formation is achieved through epoxy-alcohol opening, bromo cyclizations, intramolecular hetero-Michael reactions, and intramolecular Nicholas reactions.
2
New Prins cyclization applications include iron(III)-promoted and catalytic variants, alkynol cyclizations yielding vinyl halides, and synthesis of 2,6-disubstituted tetrahydropyrans.
3
Prins and Nicholas reactions are developed as key steps for preparing oxygenated heterocycles, including tetrahydropyrans and oxepanes.
4
Ring-closing metathesis of unsaturated linear ethers is presented as an approach for constructing cyclic ether frameworks.
5
The account reviews synthetic strategies for marine natural products containing cyclic ethers, including multiple total syntheses developed by the authors.
Research Object
Natural products of marine origin containing cyclic ethers, and their synthetic oxygenated heterocyclic analogues
Research Subject
Synthetic strategies and key carbon–oxygen bond-forming and cyclization reactions for constructing cyclic ethers in marine natural products
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2013-11-26
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