Transition metal catalyzed carbon-carbon bond formation has become incredibly important for the synthesis of pharmaceutical agents, natural products and materials. Indeed, metal-catalyzed cross-coupling reactions and olefin metathesis are now some of the most heavily used reactions in organic synthesis. The importance of these transformations is in large part due to their broad functional group compatibility combined with the large and diverse array of readily available compounds that can serve as starting materials. ? ? Metal-catalyzed C-H bond activation followed by carbon-carbon bond formation also has the potential to become exceptionally powerful in organic synthesis. Several C-H activation processes, particularly those catalyzed by late transition metals, are highly functional group compatible. In addition, because virtually every organic compound contains C-H bonds, the availability of starting materials cannot be surpassed. However, the large majority of organic compounds contain multiple C-H bonds and therefore selective C-H bond activation is essential to the development of useful synthetic methods. In addition, catalysts must be identified that enable not only selective C-H activation, but also subsequent carbon-carbon bond formation. This proposal describes the development and application of powerful catalytic methods designed to achieve these goals. The proposed research can be divided into three specific aims. ? ? Three classes of synthesis methods will be developed: (1) Intramolecular ortho-alkylation of aromatic imines, (2) Alkylation of nitrogen heterocyles, (3) Acylation of nitrogen heterocycles. The substrate scope for each method will be established, and where appropriate enantioselective catalytic methods will be developed. The importance of each method will also be demonstrated by the synthesis of pharmacologically active agents. ? ?

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM069559-03
Application #
6999333
Study Section
Medicinal Chemistry Study Section (MCHA)
Program Officer
Schwab, John M
Project Start
2004-01-05
Project End
2007-12-31
Budget Start
2006-01-01
Budget End
2006-12-31
Support Year
3
Fiscal Year
2006
Total Cost
$312,912
Indirect Cost
Name
University of California Berkeley
Department
Chemistry
Type
Schools of Arts and Sciences
DUNS #
124726725
City
Berkeley
State
CA
Country
United States
Zip Code
94704
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Boerth, Jeffrey A; Hummel, Joshua R; Ellman, Jonathan A (2016) Highly Stereoselective Cobalt(III)-Catalyzed Three-Component C-H Bond Addition Cascade. Angew Chem Int Ed Engl 55:12650-4
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Boerth, Jeffrey A; Ellman, Jonathan A (2016) Rh(III)-Catalyzed Diastereoselective C-H Bond Addition/Cyclization Cascade of Enone Tethered Aldehydes. Chem Sci 7:1474-1479
Weinstein, Adam B; Ellman, Jonathan A (2016) Convergent Synthesis of Diverse Nitrogen Heterocycles via Rh(III)-Catalyzed C-H Conjugate Addition/Cyclization Reactions. Org Lett 18:3294-7
Matsushima, Yuji; Phillips, Eric M; Bergman, Robert G et al. (2015) Rh(I)-Catalyzed Cycloisomerization of 1,6-Enynes. Synlett 26:1533-1536

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