The primary goal of this research project is to develop and exploit pericyclic and related reactions of electron deficient imines and iminium compounds within the general context of natural product synthesis. It is likely that useful new synthetic methodology applicable to the preparation of nitrogen heterocycles and other nitrogen-containing compounds will involve from these studies. This methodology should prove valuable to synthetic chemists in the pharmaceutical industry and others working in health-related fields. ln particular, we plan to develop short and efficient chiral total syntheses of the potent antitumor compounds narciclasine and neplanocin A using this methodology. Narciclasine is a member of the Amaryllidaceae alkaloid group. This compound and its analogs show significant cytostatic activity. Neplanocin A is a nucleoside analog which has a carbocyclic ring in place of ribose. It and its congeners, such as aristeromycin, have strong antitumor and antiviral properties. In addition, we will further explore the scope of our methodology by its application to a diverse and challenging group of heterocyclic structures. Included are the unusual antifungal alkaloids papuamine and/or haliclonadiamine produced by a marine sponge. Other targets include the Ergot alkaloids lysergic acid and paspiclavine which we hope to prepare by short, stereocontrolled routes. Another target which will test our methodology is the morphinan structure. This molecule will be prepared in a chiral synthesis from mandelic acid. Hopefully the approach can eventually be applied to more complex morphine alkaloids. lt is our intention to improve upon existing syntheses in the above cases in terms of both efficiency and stereoselectivity.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Research Project (R01)
Project #
5R01CA034303-09
Application #
3172024
Study Section
Medicinal Chemistry Study Section (MCHA)
Project Start
1983-06-01
Project End
1994-06-30
Budget Start
1991-07-01
Budget End
1992-06-30
Support Year
9
Fiscal Year
1991
Total Cost
Indirect Cost
Name
Pennsylvania State University
Department
Type
Schools of Arts and Sciences
DUNS #
City
University Park
State
PA
Country
United States
Zip Code
16802
Seo, Jae Hong; Liu, Peng; Weinreb, Steven M (2010) Evolution of a strategy for total synthesis of the marine fungal alkaloid (+/-)-communesin F. J Org Chem 75:2667-80
Liu, Peng; Seo, Jae Hong; Weinreb, Steven M (2010) Total synthesis of the polycyclic fungal metabolite (+/-)-communesin F. Angew Chem Int Ed Engl 49:2000-3
Li, Puhui; Majireck, Max M; Korboukh, Ilia et al. (2008) A mild, efficient method for the oxidation of alpha-diazo-beta-hydroxyesters to alpha-diazo-beta-ketoesters. Tetrahedron Lett 49:3162-3164
Korboukh, Ilia; Kumar, Praveen; Weinreb, Steven M (2007) Construction of bridged and fused ring systems via intramolecular Michael reactions of vinylnitroso compounds. J Am Chem Soc 129:10342-3
Jeong, Jeannie H; Weinreb, Steven M (2006) Formal total synthesis of the cytotoxic marine ascidian alkaloid haouamine A. Org Lett 8:2309-12
Kropf, Jeffrey E; Meigh, Ivona C; Bebbington, Magnus W P et al. (2006) Studies on a total synthesis of the microbial immunosuppresive agent FR901483. J Org Chem 71:2046-55
Seo, Jae Hong; Artman 3rd, Gerald D; Weinreb, Steven M (2006) Synthetic studies on perophoramidine and the communesins: construction of the vicinal quaternary stereocenters. J Org Chem 71:8891-900
Weinreb, Steven M (2006) Studies on total synthesis of the cylindricine/fasicularin/lepadiformine family of tricyclic marine alkaloids. Chem Rev 106:2531-49
Majireck, Max M; Weinreb, Steven M (2006) A study of the scope and regioselectivity of the ruthenium-catalyzed [3 + 2]-cycloaddition of azides with internal alkynes. J Org Chem 71:8680-3
Artman 3rd, Gerald D; Weinreb, Steven M (2003) An approach to the total synthesis of the marine ascidian metabolite perophoramidine via a halogen-selective tandem Heck/carbonylation strategy. Org Lett 5:1523-6

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