Macmillan Imidazolidinone Organocatalysts
Metal-free Asymmetric Catalysis
Developed by Professor David MacMillan at Caltech, imidazolidinone-based OrganoCatalysts are designed to serve as general catalysts for a variety of asymmetric transformations. The first highly enantioselective organocatalytic Diels-Alder reaction using (5S)-2,2,3-trimethyl-5-phenylmethyl-4-imidazolidinone monohydrochloride was reported by MacMillan in his pioneering work in 2000 (Scheme 1).1 The activated iminium ion, formed through condensation of the imidazolidinone and an α,β-unsaturated aldehyde, underwent reaction with various dienes to yield [4+2]-cycloadducts in excellent yields and enantioselectivities.
![Enantioselective Organocatalytic Diels-Alder Reaction Using (5S)-2,2,3-Trimethyl-5-Phenylmethyl-4-Imidazolidinone Monohydrochloride Reaction of the activated iminium ion, formed through condensation of the imidazolidinone and an α,β-unsaturated aldehyde, with various dienes to yield [4+2]-cycloadducts in excellent yields and enantioselectivities.](/deepweb/assets/sigmaaldrich/marketing/global/images/technical-documents/articles/chemistry-and-synthesis/reaction-design-and-optimization/enantioselective-organocatalytic/enantioselective-organocatalytic.jpg)
Scheme 1
Other organocatalytic transformations such as 1,3-dipolar cycloadditions,2 Friedel-Crafts alkylations,3 α-chlorinations,3 α-fluorinations,4 and intramolecular Michael reactions5 were reported using MacMillan’s Imidazolidinone OrganoCatalysts, all proceeding with high levels of enantioselectivity (Scheme 2).
![Enantioselectivity of Six Other Organocatalytic Transformations Using MacMillan’s Imidazolidinone OrganoCatalysts A flowchart showing the enantioselectivities of six other organocatlytic transformations using MacMillan’s Imidazolidinone OrganoCatalysts. Top-center, is Diels-Alder cycloaddition which results in a compound with a 93% enantiomeric excess (ee). Top-right is 1,3-dipolar cycloaddition with >90% ee; Bottom-right is Friedel-Crafts alkylation with >89% ee; Bottom-center is that is α-chlorination with 91-95% ee; Bottom-left is α-fluorination with 91-99% ee; Top-left is intramolecular Michael addition which results in a compound that has a 97% ee.](/deepweb/assets/sigmaaldrich/marketing/global/images/technical-documents/articles/chemistry-and-synthesis/reaction-design-and-optimization/enantioselectivity-of-6-organocatalytic/enantioselectivity-of-6-organocatalytic.jpg)
Scheme 2
MacMillan found an optimized structure in (2S,5S)-(−)-2-tert-butyl-3-methyl-5-benzyl-4-imidazolidinone for the Friedel-Crafts alkylation of indoles (Scheme 3). 5,6
![Friedel-Crafts Alkylation of Indoles (2S,5S)-(−)-2-tert-butyl-3-methyl-5-benzyl-4-imidazolidinone used in the Friedel-Crafts alkylation of indoles](/deepweb/assets/sigmaaldrich/marketing/global/images/technical-documents/articles/chemistry-and-synthesis/reaction-design-and-optimization/friedel-crafts-alkylation-of-indoles/friedel-crafts-alkylation-of-indoles.jpg)
Scheme 3
The synthetic utility of this concept was later demonstrated in the total synthesis of (–)-flustramine B, a biologically active pyrroloindoline-containing alkaloid (Scheme 4).7
![Synthesis of (–)-flustramine B The synthesis of (–)-flustramine B using (2S,5S)-(−)-2-tert-butyl-3-methyl-5-benzyl-4-imidazolidinone](/deepweb/assets/sigmaaldrich/marketing/global/images/technical-documents/articles/chemistry-and-synthesis/reaction-design-and-optimization/synthesis-flustramine-b/synthesis-flustramine-b.jpg)
Scheme 4
More recently, a photochemical enantioselective α-alkylation protocol has been developed and applied to the total synthesis of (−)-enterolactone and (−)-enterodiol. The reaction proceeds in the presence of visible light and in the absence of a photocatalyst via a light-activated charge-transfer complex. (Scheme 5).8
![Total Synthesis of (−)-Enterodiol Reaction using (5S)-2,2,3-trimethyl-5-phenylmethyl-4-imidazolidinone monohydrochloride and visible light to produce (−)-enterodiol. The reaction proceeds in the presence of visible light and in the absence of a photocatalyst via a light activated charge-transfer complex.](/deepweb/assets/sigmaaldrich/marketing/global/images/technical-documents/articles/chemistry-and-synthesis/reaction-design-and-optimization/total-synthesis-enterodiol/total-synthesis-enterodiol.jpg)
Scheme 5
References
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