A Ring Expansion Approach to Roseophilin
Roseophilin is an ansa-bridged potent cytotoxic compound that has generated continual interest from synthetic chemists since its discovery in 1992. As a synthetic target, roseophilin's most difficult challenge is the construction of the eight-carbon ansa chain that bridges the azafulvene unit....
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ndltd-fsu.edu-oai-fsu.digital.flvc.org-fsu_1803472020-06-09T03:08:53Z A Ring Expansion Approach to Roseophilin Salamone, Samuel G. (authoraut) Dudley, Gregory B. (professor directing thesis) Keller, Laura R. (outside committee member) Stiegman, Albert E. (committee member) Krafft, Marie E. (committee member) Department of Chemistry and Biochemistry (degree granting department) Florida State University (degree granting institution) Text text Florida State University Florida State University English eng 1 online resource computer application/pdf Roseophilin is an ansa-bridged potent cytotoxic compound that has generated continual interest from synthetic chemists since its discovery in 1992. As a synthetic target, roseophilin's most difficult challenge is the construction of the eight-carbon ansa chain that bridges the azafulvene unit. Such features traditionally have been installed via some form of macrocyclization reaction. Macrocyclization reactions typically require high dilution conditions that limit their utility on a preparative scale. This is especially true of entropically constrained systems such as roseophilin's core. Herein, we report an efficient and potentially scalable synthesis of a cyclopentenone-fused pyrrolophane, which serves as a model for the tricyclic core of roseophilin. The synthetic scheme features a palladium-catalyzed annulation and oxidative cleavage sequence to provide a macrocyclic keto-ester. Modified Paal-Knorr pyrrole synthesis and Friedel-Crafts acylation complete the pyrrolophane model system. Elaboration of the scheme, which avoids macrocyclization reactions, may facilitate large-scale prodution of roseophilin and analogs in due course. A Thesis Submitted to the Department of Chemistry and Biochemistry in Partial Fulfillment of the Requirements for the Degree of Master of Science. Fall Semester, 2005. August 22, 2005. Oxidative Ring Cleavage, Roseophilin Includes bibliographical references. Gregory B. Dudley, Professor Directing Thesis; Laura R. Keller, Outside Committee Member; Albert E. Stiegman, Committee Member; Marie E. Krafft, Committee Member. Chemistry FSU_migr_etd-2105 http://purl.flvc.org/fsu/fd/FSU_migr_etd-2105 This Item is protected by copyright and/or related rights. You are free to use this Item in any way that is permitted by the copyright and related rights legislation that applies to your use. For other uses you need to obtain permission from the rights-holder(s). The copyright in theses and dissertations completed at Florida State University is held by the students who author them. http://diginole.lib.fsu.edu/islandora/object/fsu%3A180347/datastream/TN/view/Ring%20Expansion%20Approach%20to%20Roseophilin.jpg |
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Roseophilin is an ansa-bridged potent cytotoxic compound that has generated continual interest from synthetic chemists since its discovery in 1992. As a synthetic target, roseophilin's most difficult challenge is the construction of the eight-carbon ansa chain that bridges the azafulvene unit. Such features traditionally have been installed via some form of macrocyclization reaction. Macrocyclization reactions typically require high dilution conditions that limit their utility on a preparative scale. This is especially true of entropically constrained systems such as roseophilin's core. Herein, we report an efficient and potentially scalable synthesis of a cyclopentenone-fused pyrrolophane, which serves as a model for the tricyclic core of roseophilin. The synthetic scheme features a palladium-catalyzed annulation and oxidative cleavage sequence to provide a macrocyclic keto-ester. Modified Paal-Knorr pyrrole synthesis and Friedel-Crafts acylation complete the pyrrolophane model system. Elaboration of the scheme, which avoids macrocyclization reactions, may facilitate large-scale prodution of roseophilin and analogs in due course. === A Thesis Submitted to the Department of Chemistry and Biochemistry in Partial Fulfillment of the Requirements for the Degree of Master of Science. === Fall Semester, 2005. === August 22, 2005. === Oxidative Ring Cleavage, Roseophilin === Includes bibliographical references. === Gregory B. Dudley, Professor Directing Thesis; Laura R. Keller, Outside Committee Member; Albert E. Stiegman, Committee Member; Marie E. Krafft, Committee Member. |
author2 |
Salamone, Samuel G. (authoraut) |
author_facet |
Salamone, Samuel G. (authoraut) |
title |
A Ring Expansion Approach to Roseophilin |
title_short |
A Ring Expansion Approach to Roseophilin |
title_full |
A Ring Expansion Approach to Roseophilin |
title_fullStr |
A Ring Expansion Approach to Roseophilin |
title_full_unstemmed |
A Ring Expansion Approach to Roseophilin |
title_sort |
ring expansion approach to roseophilin |
publisher |
Florida State University |
url |
http://purl.flvc.org/fsu/fd/FSU_migr_etd-2105 |
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1719318292483538944 |