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Total Synthesis of Viridicatumtoxin B and Analogues Thereof: Strategy Evolution, Structural Revision, and Biological Evaluation

[Image: see text] The details of the total synthesis of viridicatumtoxin B (1) are described. Initial synthetic strategies toward this intriguing tetracycline antibiotic resulted in the development of key alkylation and Lewis acid-mediated spirocyclization reactions to form the hindered EF spirojunc...

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Autores principales: Nicolaou, K. C., Hale, Christopher R. H., Nilewski, Christian, Ioannidou, Heraklidia A., ElMarrouni, Abdelatif, Nilewski, Lizanne G., Beabout, Kathryn, Wang, Tim T., Shamoo, Yousif
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4210137/
https://www.ncbi.nlm.nih.gov/pubmed/25317739
http://dx.doi.org/10.1021/ja506472u
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author Nicolaou, K. C.
Hale, Christopher R. H.
Nilewski, Christian
Ioannidou, Heraklidia A.
ElMarrouni, Abdelatif
Nilewski, Lizanne G.
Beabout, Kathryn
Wang, Tim T.
Shamoo, Yousif
author_facet Nicolaou, K. C.
Hale, Christopher R. H.
Nilewski, Christian
Ioannidou, Heraklidia A.
ElMarrouni, Abdelatif
Nilewski, Lizanne G.
Beabout, Kathryn
Wang, Tim T.
Shamoo, Yousif
author_sort Nicolaou, K. C.
collection PubMed
description [Image: see text] The details of the total synthesis of viridicatumtoxin B (1) are described. Initial synthetic strategies toward this intriguing tetracycline antibiotic resulted in the development of key alkylation and Lewis acid-mediated spirocyclization reactions to form the hindered EF spirojunction, as well as Michael–Dieckmann reactions to set the A and C rings. The use of an aromatic A-ring substrate, however, was found to be unsuitable for the introduction of the requisite hydroxyl groups at carbons 4a and 12a. Applying these previous tactics, we developed stepwise approaches to oxidize carbons 12a and 4a based on enol- and enolate-based oxidations, respectively, the latter of which was accomplished after systematic investigations that revealed critical reactivity patterns. The herein described synthetic strategy resulted in the total synthesis of viridicatumtoxin B (1), which, in turn, formed the basis for the revision of its originally assigned structure. The developed chemistry facilitated the synthesis of a series of viridicatumtoxin analogues, which were evaluated against Gram-positive and Gram-negative bacterial strains, including drug-resistant pathogens, revealing the first structure–activity relationships within this structural type.
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spelling pubmed-42101372015-08-15 Total Synthesis of Viridicatumtoxin B and Analogues Thereof: Strategy Evolution, Structural Revision, and Biological Evaluation Nicolaou, K. C. Hale, Christopher R. H. Nilewski, Christian Ioannidou, Heraklidia A. ElMarrouni, Abdelatif Nilewski, Lizanne G. Beabout, Kathryn Wang, Tim T. Shamoo, Yousif J Am Chem Soc [Image: see text] The details of the total synthesis of viridicatumtoxin B (1) are described. Initial synthetic strategies toward this intriguing tetracycline antibiotic resulted in the development of key alkylation and Lewis acid-mediated spirocyclization reactions to form the hindered EF spirojunction, as well as Michael–Dieckmann reactions to set the A and C rings. The use of an aromatic A-ring substrate, however, was found to be unsuitable for the introduction of the requisite hydroxyl groups at carbons 4a and 12a. Applying these previous tactics, we developed stepwise approaches to oxidize carbons 12a and 4a based on enol- and enolate-based oxidations, respectively, the latter of which was accomplished after systematic investigations that revealed critical reactivity patterns. The herein described synthetic strategy resulted in the total synthesis of viridicatumtoxin B (1), which, in turn, formed the basis for the revision of its originally assigned structure. The developed chemistry facilitated the synthesis of a series of viridicatumtoxin analogues, which were evaluated against Gram-positive and Gram-negative bacterial strains, including drug-resistant pathogens, revealing the first structure–activity relationships within this structural type. American Chemical Society 2014-08-15 2014-08-27 /pmc/articles/PMC4210137/ /pubmed/25317739 http://dx.doi.org/10.1021/ja506472u Text en Copyright © 2014 American Chemical Society Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html)
spellingShingle Nicolaou, K. C.
Hale, Christopher R. H.
Nilewski, Christian
Ioannidou, Heraklidia A.
ElMarrouni, Abdelatif
Nilewski, Lizanne G.
Beabout, Kathryn
Wang, Tim T.
Shamoo, Yousif
Total Synthesis of Viridicatumtoxin B and Analogues Thereof: Strategy Evolution, Structural Revision, and Biological Evaluation
title Total Synthesis of Viridicatumtoxin B and Analogues Thereof: Strategy Evolution, Structural Revision, and Biological Evaluation
title_full Total Synthesis of Viridicatumtoxin B and Analogues Thereof: Strategy Evolution, Structural Revision, and Biological Evaluation
title_fullStr Total Synthesis of Viridicatumtoxin B and Analogues Thereof: Strategy Evolution, Structural Revision, and Biological Evaluation
title_full_unstemmed Total Synthesis of Viridicatumtoxin B and Analogues Thereof: Strategy Evolution, Structural Revision, and Biological Evaluation
title_short Total Synthesis of Viridicatumtoxin B and Analogues Thereof: Strategy Evolution, Structural Revision, and Biological Evaluation
title_sort total synthesis of viridicatumtoxin b and analogues thereof: strategy evolution, structural revision, and biological evaluation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4210137/
https://www.ncbi.nlm.nih.gov/pubmed/25317739
http://dx.doi.org/10.1021/ja506472u
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