TY - JOUR
T1 - Alkylation of lithiated dimethyl tartrate acetonide with unactivated alkyl halides and application to an asymmetric synthesis of the 2,8-dioxabicyclo[3.2.1]octane core of squalestatins/zaragozic acids
AU - Sintim, Herman O.
AU - Al Mamari, Hamad H.
AU - Almohseni, Hasanain A.A.
AU - Fegheh-Hassanpour, Younes
AU - Hodgson, David M.
N1 - Funding Information:
We thank the University of Oxford, the Sultanate of Oman, the Higher Committee for Education Development in Iraq, and the EPSRC for studentship support (to H.O.S., H.H.A.M., H.A.A.A., and Y.F-H., respectively), and Dr. Anne Valade for the butylation result in Scheme 9.
Publisher Copyright:
© 2019 Sintim et al.
PY - 2019
Y1 - 2019
N2 - (R,R)-Dimethyl tartrate acetonide 7 in THF/HMPA undergoes deprotonation with LDA and reaction at -78 °C during 12-72 h with a range of alkyl halides, including non-activated substrates, to give single diastereomers (at the acetonide) of monoalkylated tartrates 17, 24, 33a-f, 38a,b, 41 of R,R-configuration, i.e., a stereoretentive process (13-78% yields). Separable trans-dialkylated tartrates 34a.f can be co-produced in small amounts (9-14%) under these conditions, and likely arise from the achiral dienolate 36 of tartrate 7. Enolate oxidation and acetonide removal from γ-silyloxyalkyl iodide-derived alkylated tartrates 17 and 24 give ketones 21 and 26 and then Bamford-Stevens-derived diazoesters 23 and 27, respectively. Only triethylsilyl-protected diazoester 27 proved viable to deliver a diazoketone 28. The latter underwent stereoselective carbonyl ylide formation-cycloaddition with methyl glyoxylate and acid-catalysed rearrangement of the resulting cycloadduct 29, to give the 3,4,5-tricarboxylate-2,8-dioxabicyclo[3.2.1]octane core 31 of squalestatins/zaragozic acids. Furthermore, monoalkylated tartrates 33a,d,f, and 38a on reaction with NaOMe in MeOH at reflux favour (≈75:25) the cis-diester epimers epi-33a,d,f and epi-38a (54-67% isolated yields), possessing the R,S-configuration found in several monoalkylated tartaric acid motif-containing natural products.
AB - (R,R)-Dimethyl tartrate acetonide 7 in THF/HMPA undergoes deprotonation with LDA and reaction at -78 °C during 12-72 h with a range of alkyl halides, including non-activated substrates, to give single diastereomers (at the acetonide) of monoalkylated tartrates 17, 24, 33a-f, 38a,b, 41 of R,R-configuration, i.e., a stereoretentive process (13-78% yields). Separable trans-dialkylated tartrates 34a.f can be co-produced in small amounts (9-14%) under these conditions, and likely arise from the achiral dienolate 36 of tartrate 7. Enolate oxidation and acetonide removal from γ-silyloxyalkyl iodide-derived alkylated tartrates 17 and 24 give ketones 21 and 26 and then Bamford-Stevens-derived diazoesters 23 and 27, respectively. Only triethylsilyl-protected diazoester 27 proved viable to deliver a diazoketone 28. The latter underwent stereoselective carbonyl ylide formation-cycloaddition with methyl glyoxylate and acid-catalysed rearrangement of the resulting cycloadduct 29, to give the 3,4,5-tricarboxylate-2,8-dioxabicyclo[3.2.1]octane core 31 of squalestatins/zaragozic acids. Furthermore, monoalkylated tartrates 33a,d,f, and 38a on reaction with NaOMe in MeOH at reflux favour (≈75:25) the cis-diester epimers epi-33a,d,f and epi-38a (54-67% isolated yields), possessing the R,S-configuration found in several monoalkylated tartaric acid motif-containing natural products.
KW - Alkylation
KW - Cycloaddition
KW - Diazoester
KW - Epimerisation
KW - Tartaric acid
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U2 - 10.3762/bjoc.15.116
DO - 10.3762/bjoc.15.116
M3 - Article
C2 - 31293666
AN - SCOPUS:85066491491
SN - 1860-5397
VL - 15
SP - 1194
EP - 1202
JO - Beilstein Journal of Organic Chemistry
JF - Beilstein Journal of Organic Chemistry
ER -