Chiral Proton Donor Reagents: Tin Tetrachloride—Coordinated Optically Active Binaphthol Derivatives
- 1 May 2002
- journal article
- research article
- Published by Wiley in The Chemical Record
- Vol. 2 (3) , 177-188
- https://doi.org/10.1002/tcr.10020
Abstract
The Lewis acid–assisted chiral Brønsted acids (chiral LBAs), which are prepared from tin tetrachloride and optically active binaphthol derivatives, are highly effective chiral proton donor reagents for enantioselective protonation and biomimetic polyene cyclization. These chiral LBAs can directly protonate various silyl enol ethers and ketene disilyl acetals to give the corresponding α-aryl or α-halo ketones and α-arylcarboxylic acids, respectively, with high enantiomeric excess (up to 98% ee). A catalytic version of enantioselective protonation was also achieved using stoichiometric amounts of 2,6-dimethylphenol and catalytic amounts of monomethyl ether of optically active binaphthol in the presence of tin tetrachloride. The biomimetic cyclization of simple isoprenoids to polycyclic isoprenoids using chiral LBA is also described. This is the first example of a chiral Brønsted acid–induced enantioselective ene cyclization in synthetic chemistry. Geranyl phenyl ethers, o-geranylphenols, and homogeranylphenol derivatives were directly cyclized in the presence of (R)-binaphthol derivatives and tin tetrachloride (up to 90% ee). Compounds bearing a farnesyl group could also be cyclized under the same conditions to give the natural products (−)-ambrox® and (−)-chromazonarol, and (−)-tetracyclic polyprenoids of sedimentary origin. These chiral LBAs recognize the prochiral face of a trisubstituted terminal olefin and site selectively generate carbocations on the substrates. © 2002 The Japan Chemical Journal Forum and Wiley Periodicals, Inc. Chem Rec 2: 177–188,2002: Published online in Wiley InterScience (www.interscience.wiley.com) DOI 10.1002/tcr.10020Keywords
This publication has 50 references indexed in Scilit:
- Highly Regio- and Stereoselective Isomerization of Silyl Enol Ethers Catalyzed by LBA. A Remarkable Enantiomer Discrimination of Chiral LBAThe Journal of Organic Chemistry, 1998
- Effects of Lithium Salts on the Enantioselectivity of Protonation of Enolates with Chiral ImideSynlett, 1998
- Chiral aminoborane as a chiral proton source for asymmetric protonation of lithium enolates derived from 2-arylcycloalkanonesChemical Communications, 1998
- A study of asymmetric protonation with chiral β-hydroxy sulfoxides. Asymmetric synthesis of (–)-epibatidineChemical Communications, 1997
- Antibody-Catalyzed Hydrolysis of Enol Ethers. 2. Structure of the Antibody-Transition State Complex and Origin of the EnantioselectivityJournal of the American Chemical Society, 1994
- Deracemization via Highly Enantioselective Enolate Protonation Using a Chiral Aniline as the "Acid"Journal of the American Chemical Society, 1994
- Enantioselective Protonation of Simple Enolates: Chiral Imide as a Chiral Proton SourceAngewandte Chemie International Edition in English, 1994
- The mechanism of tin tetrachloride promoted additions of allylstannanes to aldehydes: a response to Denmark, Wilson, and WillsonJournal of the American Chemical Society, 1989
- The Stereochemistry of Polyene CyclizationJournal of the American Chemical Society, 1955
- THE CYCLIZATION OF SQUALENE IN CHOLESTEROL SYNTHESISJournal of the American Chemical Society, 1953