A program to investigate the synthesis and biological activity of the following classes of compounds is proposed: 1) Cytochalasins, 2) pyrrolizidine alkaloids, and 3) aziridine- or oxazole-derived antitumor agents. These projects will require the investigation of nitrogen heterocycles containing 3 to 8 members, and will feature different aspects of the interrelated chemistry of aziridines, oxazoles, pyrroles, pyrrolizidines, and azocines. The cytochalasin project will focus on the completion of the cytochalasin D synthesis, and on the preparation of analogues with potentially selective binding capabilities at cell membrane receptors that mediate transport phenomena. The route has reached the stage of 11-membered carbocycles, and further investigations are directed at specific problems of medium ring functionalization and stereochemistry. The pyrrolizidine project will establish access to macrocyclic dilactones derived from otonecine. The 8-membered nitrogen ring (azocine) of the parent alkaloid is related to the larger class of pyrrolizidine antitumor agents by oxidative ring cleavage, and a sulfur-based route to the azocine system has been developed. The largest effort will be devoted to the synthesis of known and potential aziridine antitumor agents. Our first target will be an aziridinomitosene, the mitomycin metabolite that is responsible for biological activity. The route depends on azomethine ylide generation via oxazolium salt reduction. An important part of this project will be the investigation of direct asymmetric synthesis of aziridines via epimination procedures. Routes to optically pure aziridines will be explored in depth due to their importance in synthesis, and as components of several important classes of antitumor agents. Related techniques for oxazole synthesis will be explored as well.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Research Project (R01)
Project #
5R01CA017918-21
Application #
2086635
Study Section
Bio-Organic and Natural Products Chemistry Study Section (BNP)
Project Start
1978-07-01
Project End
1995-12-31
Budget Start
1995-01-01
Budget End
1995-12-31
Support Year
21
Fiscal Year
1995
Total Cost
Indirect Cost
Name
University of Wisconsin Madison
Department
Chemistry
Type
Schools of Arts and Sciences
DUNS #
161202122
City
Madison
State
WI
Country
United States
Zip Code
53715
Peris, Gorka; Vedejs, Edwin (2015) Enantiocontrolled synthesis of a tetracyclic aminal corresponding to the core subunit of diazonamide A. J Org Chem 80:3050-7
Wiedner, Susan D; Vedejs, Edwin (2012) Reactivity of aziridinomitosene derivatives related to FK317 in the presence of protic nucleophiles. J Org Chem 77:1045-55
Wiedner, Susan D; Vedejs, Edwin (2010) Aziridinomitosanes via lactam cyclization. Org Lett 12:4030-3
Nelson, John M; Vedejs, Edwin (2010) Metalated aziridines for cross-coupling with aryl and alkenyl halides via palladium catalysis. Org Lett 12:5085-7
Duffey, Trisha A; Mackay, James A; Vedejs, Edwin (2010) Catalytic parallel kinetic resolution under homogeneous conditions. J Org Chem 75:4674-85
Duffey, Trisha A; Shaw, Scott A; Vedejs, Edwin (2009) AcOLeDMAP and BnOLeDMAP: conformationally restricted nucleophilic catalysts for enantioselective rearrangement of indolyl acetates and carbonates. J Am Chem Soc 131:14-5
Peris, Gorka; Vedejs, Edwin (2008) Diastereoselective carboxyl migrations of 3-arylbenzofuranones. J Org Chem 73:1158-61
Bobeck, Drew R; Warner, Don L; Vedejs, Edwin (2007) Internal azomethine ylide cycloaddition methodology for access to the substitution pattern of aziridinomitosene A. J Org Chem 72:8506-18
Warner, Don L; Hibberd, Amber M; Kalman, Monica et al. (2007) N-silyl protecting groups for labile aziridines: application toward the synthesis of N-H aziridinomitosenes. J Org Chem 72:8519-22
Shaw, Scott A; Aleman, Pedro; Christy, Justin et al. (2006) Enantioselective TADMAP-catalyzed carboxyl migration reactions for the synthesis of stereogenic quaternary carbon. J Am Chem Soc 128:925-34

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