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                <term xml:lang="en">VERSATILE BUILDING-BLOCKS</term>
                <term xml:lang="en">carbometalation</term>
                <term xml:lang="en">chelation</term>
                <term xml:lang="en">cyclopropene</term>
                <term xml:lang="en">diastereodivergence</term>
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                <term xml:lang="en">CARBONYL ALLYLATION REACTIONS</term>
                <term xml:lang="en">ORGANOMAGNESIUM HALIDES</term>
                <term xml:lang="en">RING STRAIN ENERGIES</term>
                <term xml:lang="en">INTRAMOLECULAR CARBOLITHIATION</term>
                <term xml:lang="en">GRIGNARD-REAGENTS</term>
                <term xml:lang="en">ALKYLIDENECYCLOPROPANE DERIVATIVES</term>
                <term xml:lang="en">C=C BONDS</term>
                <term xml:lang="en">ACYCLIC SYSTEMS</term>
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              <p>The copper-catalyzed carbomagnesiation reaction of cyclopropenyl esters 1 leads to various substituted cyclopropanes species 3 in good yields with very high diastereoselectivities. The reaction proceeds through a syn-chelated carbomagnesiation reaction and could be extended to various cyclopropenylmethyl ester derivatives 5. The potential of this approach was illustrated by the preparation of two consecutive all-carbon quaternary stereocenters. However, the carbometalation reaction needs to be performed at temperature ranging from -35 to -20 degrees C to avoid subsequent fragmentation reaction into stereodefined ,-nonconjugated unsaturated esters 4. Alternatively, the carbocupration reaction with organocopper species could also be performed to leads to configurationally stable cyclopropyl copper species2[Cu]. Additionally, when the Lewis acid character of the copper center is decreased (i.e., RCuCNLi), the reaction proceed with an anti-selectivity. The diastereodivergent behavior of these organometallic species is of synthetic interest, since both diastereomers syn-3 and anti-3 can be obtained, at will, from the same precursor cyclopropenyl esters 1.</p>
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